cysteine and palmitic acid

cysteine has been researched along with palmitic acid in 180 studies

Research

Studies (180)

TimeframeStudies, this research(%)All Research%
pre-199013 (7.22)18.7374
1990's60 (33.33)18.2507
2000's83 (46.11)29.6817
2010's21 (11.67)24.3611
2020's3 (1.67)2.80

Authors

AuthorsStudies
Amarneh, B; Ktistakis, NT; Naim, HY; Roth, MG1
Chapman, ER; Estep, RP; Storm, DR1
Büllesbach, EE; Crouch, RK; Knapp, DR; Papac, DI; Thornburg, KR1
Crise, B; Rose, JK1
Benson, BJ; Griffin, PR; Lesikar, DD; Moffat, B; Naidu, A; Stults, JT1
Kendal, A; Klenk, HD; Rott, R; Veit, M1
Catterall, WA; Schmidt, JW1
Bouvier, M; Caron, MG; Hnatowich, M; Lefkowitz, RJ; O'Dowd, BF1
Skene, JH; Virág, I1
Chen, ZQ; DuBois, G; Shih, TY; Ulsh, LS1
Buss, JE; Sefton, BM1
Adam, M; Johnstone, RM; Turbide, C1
Gallwitz, D; Molenaar, CM; Prange, R1
Rott, R; Schmidt, M; Schmidt, MF1
Abdulaev, NG; Bogachuk, AS1
Hämmerling, GJ; Koch, N2
Kaufman, JF; Krangel, MS; Strominger, JL1
Bizzozero, OA; Fridal, K; Pastuszyn, A1
García-Cardeña, G; Liu, J; Sessa, WC1
Grassie, MA; Guzzi, F; Magee, AI; McCallum, JF; Milligan, G; Parenti, M; Wise, A1
Morrison, DF; O'Brien, PJ; Pepperberg, DR1
Fujimoto, T; Laposata, M; McEver, RP; Muszbek, L; Prescott, SM; Stroud, E; Whatley, RE1
Kornfeld, S; Rohrer, J; Schweizer, A1
Dietzen, DJ; Hastings, WR; Lublin, DM1
Inglese, J; Lefkowitz, RJ; Premont, RT; Randall, RR; Stoffel, RH1
Barbee, G; Barker, PA; Misko, TP; Shooter, EM1
Kawate, N; Menon, KM1
Cadwallader, KA; Hancock, JF; Macdonald, SG; Paterson, H1
Grassie, MA; Magee, AI; McCallum, JF; Milligan, G; Parenti, M1
Degtyarev, MY; Jones, TL; Spiegel, AM1
Koblet, H; Naim, HY; Schärer, CG1
Kennedy, ME; Limbird, LE1
Bhattacharya, S; Karnik, SS; Khorana, HG; Ridge, KD1
Ivanova, L; Schlesinger, MJ1
Clark, D; Luirink, J; Majoor, MJ; Oudega, B; Stegehuis, F1
Sefton, BM; Yurchak, LK1
Michel, T; Robinson, LJ1
Hampson, DR; Pickering, DS; Salter, MW; Taverna, FA1
Kosugi, S; Mori, T1
Rothman, JE; Söllner, TH; Veit, M1
Dietzen, DJ; Hastings, WR; Kurzchalia, TV; Lublin, DM; Monier, S1
Adam, L; Bonin, H; Bouvier, M; Loisel, TP; Moffett, S; Mouillac, B1
Leventis, R; Schroeder, H; Shahinian, S; Silvius, JR; Walton, PA1
Bommeli, C; Hiltpold, A; Köhler, P; Papanastasiou, P1
Reverey, H; Schmidt, MF; Veit, M1
An, S; Blasi, J; Brose, N; Chapman, ER; Jahn, R; Johnston, PA; Südhof, TC1
Lublin, DM; Tao, N; Wagner, SJ1
Derynck, R; Shum, L; Turck, CW1
Dohlman, HG; Song, J1
Weigel, PH; Zeng, FY1
Baron, C; Thorstenson, YR; Zambryski, PC1
Resh, MD; van't Hof, W1
George, SR; Jin, H; O'Dowd, BF; Zastawny, R1
Bijlmakers, MJ; Isobe-Nakamura, M; Marsh, M; Ruddock, LJ1
Grassie, MA; Lee, M; Milligan, G; Parenti, M; Rees, S; Wise, A1
Benovic, JL; Loudon, RP1
Lane, SR; Liu, Y1
Ishisaka, R; Iwata, H; Takemura, D; Tou, E; Utsumi, T; Yabuki, M1
Berliner, LJ; Narayan, M1
Bernstein, LS; Blumer, KJ; Linder, ME; Srinivasa, SP1
Harteneck, C; Ponimaskin, E; Schmidt, MF; Schultz, G1
Chien, AJ; Gao, T; Hosey, MM; Perez-Reyes, E1
Caballero, M; Carabaña, J; Celma, ML; Fernández-Muñoz, R; Ortego, J1
Chien, AJ; Hosey, MM1
Deans, JP; Polyak, MJ; Tailor, SH1
Beck, K; Ferreira, P; Mollner, S; Pfeuffer, T1
Chen, C; Liu-Chen, LY; Shahabi, V; Xu, W1
Baker, TL; Booden, MA; Buss, JE; Der, CJ; Punke, SG; Solski, PA1
Altenbach, C; Cai, K; Hubbell, WL; Khorana, HG; Langen, R1
Altenbach, C; Cai, K; Farrens, D; Hubbell, WL; Khorana, HG; Klein-Seetharaman, J; Zhang, C1
Popov, S; Ross, EM; Slaughter, C; Tu, Y1
Berthiaume, LG; McCabe, JB; Vance, J; Zhao, Y1
Blumer, KJ; Linder, ME; Manahan, CL; Patnana, M1
Patel, TB; Scholich, K; Yigzaw, Y1
Bhattacharyya, R; Wedegaertner, PB1
Jones, TL; Ugur, O1
Pidgeon, C; Post, CB; Wilkinson, TA; Yin, J1
Adarichev, V; Behn, H; Offermanns, S; Ponimaskin, E; Schmidt, MF; Voyno-Yasenetskaya, TA1
Blasey, H; Catsicas, S; Di Paolo, G; Grenningloh, G; Igarashi, M; Lutjens, R; Pellier, V; Pfulg, C; Ruchti, E; Staple, JK1
Creemers, JW; Pauli, I; Plets, E; Teuchert, M; van de Loo, JW; Van de Ven, WJ1
Higuchi, M; Izumi, KM; Kieff, E1
Hongo, S; Li, ZN; Matsuzaki, Y; Nakamura, K; Sugahara, K; Sugawara, K; Tsuchiya, E1
Arenzana-Seisdedos, F; Bachelerie, F; Percherancier, Y; Planchenault, T; Valenzuela-Fernandez, A; Virelizier, JL1
Ansanay, H; Bélanger, C; Bouvier, M; Qanbar, R1
Hawtin, SR; Patel, S; Tobin, AB; Wheatley, M1
Batenburg, JJ; Gadella, BM; Haagsman, HP; ten Brinke, A; Vaandrager, AB; van Golde, LM1
Dunphy, JT; Greentree, WK; Linder, ME1
Ernberg, I; Matskova, L; Pawson, T; Winberg, G1
Bickmeyer, U; Dumuis, A; Heine, M; Joubert, L; Ponimaskin, EG; Richter, DW; Sebben, M1
Bowzard, JB; Courtney, RJ; Loomis, JS; Wills, JW1
Everson, WV; Matveev, SV; Smart, EJ; Uittenbogaard, A1
Batenburg, JJ; Haagsman, HP; ten Brinke, A; Vaandrager, AB; van Golde, LM1
Batenburg, JJ; Haagsman, HP; Ridder, AN; ten Brinke, A; Vaandrager, AB; van Golde, LM1
Cai, S; Exton, JH; Ho, WT; Spellman, R; Xie, Z1
Brothers, SP; Castro-Fernández, C; Conn, PM; Fisher, RA; Janovick, JA; Ji, TH1
Billard, M; Boucheix, C; Charrin, S; Manié, S; Oualid, M; Rubinstein, E1
Krishnakumar, SS; Panda, D1
Berditchevski, F; Gilbert, E; Odintsova, E; Sawada, S1
Weigel, PH; Yik, JH1
Chen, L; Davis, NG; Feng, Y; Roth, AF1
Ferguson, G; Palmer, TM; Watterson, KR1
Kinsella, BT; Lawler, OA; Miggin, SM1
Burakoff, SJ; Fragoso, R; Jin, YJ; Ren, D; Su, MW; Zhang, X1
Nagaraj, R; Pallavi, B1
Nanjundan, M; Sims, PJ; Wiedmer, T; Zhao, J1
Hemler, ME; Kolesnikova, TV; Stipp, CS1
Hegele, RA; Liang, X; Miskie, BA; Resh, MD; Shan, J; Tran, K; Vukmirica, J; Yao, Z; Yuan, J1
Jones, TL; Onaran, HO; Ugur, O1
Davey, PC; Druey, KM; Hiol, A; Jones, TL; Milligan, G; Nini, L; Osterhout, JL; Waheed, AA; Wang, J; Ward, RJ1
Chen, CK; Davey, PC; Druey, KM; Fischer, ER; Hiol, A; Jones, TL; Milligan, G; Osterhout, JL; Waheed, AA1
Baker, TL; Buss, JE; Coloff, JL; Walker, J; Zheng, H1
Fricker, LD; Kalinina, EV1
Heindel, U; Schmidt, MF; Veit, M1
Bouvier, M; Charest, PG1
Davidson, JS; Katz, AA; Lopes, J; Maudsley, SR; Millar, RP; Pawson, AJ; Sun, YM1
ONTKO, JA1
Dumuis, A; Papoucheva, E; Ponimaskin, EG; Richter, DW; Sebben, M1
Clark, KL; Eilert, KD; Johnson, ME; Oelke, A; Simpson, PC; Todd, SC1
Acconcia, F; Ascenzi, P; Fabozzi, G; Marino, M; Visca, P1
Kittler, JT; Moss, SJ; Rathenberg, J1
Braun, V; El Marjou, A; Goud, B; Lallemand-Breitenbach, V; Perez, F; Poüs, C; Quesnoit, M1
Jones, TL1
Bacic, A; Callaghan, JM; Currie, G; Ferguson, K; McConville, MJ; McFadden, GI; Naderer, T; Spurck, T; Tull, D; Vince, JE1
Veit, M1
Barrientos, AA; Berthiaume, LG; Corvi, MM; Gavilanes, F; Navarro-Lérida, I; Rodríguez-Crespo, I1
Clouser, CL; Menon, KM; Munshi, UM; Peegel, H1
Chamberlain, LH; Gould, GW; Salaün, C1
Dai, J; Liu, H; Treber, M; Woldegiorgis, G; Zheng, G1
Sebti, SM; Wang, DA1
Du, D; Gershengorn, MC; Grimberg, H; Lupu-Meiri, M; Oron, Y; Raaka, BM1
Ablonczy, Z; Crouch, RK; Lem, J; Makino, CL; Wang, Z; Wen, XH1
Chuttani, K; Harivardhan Reddy, L; Mishra, AK; Murthy, RS; Sharma, RK1
Anilkumar, N; Couchman, JR; Itoh, Y; Nagase, H; Seiki, M; Uekita, T1
Chan, WE; Chen, SS; Lin, HH1
Berzat, AC; Buss, JE; Chenette, EJ; Cox, AD; Der, CJ; Minden, A; Shutes, A; Weinbaum, CA1
Conrad, JT; Nash, TE; Touz, MC1
Alvarado, D; Buglino, J; Lemmon, MA; Miura, GI; Resh, MD; Treisman, JE1
Puertollano, R; Vergarajauregui, S1
Arstikaitis, P; Cowan, CM; Drisdel, RC; El-Husseini, A; Gan, L; Green, WN; Hayden, MR; Huang, K; Kang, R; Mullard, A; Orban, PC; Ravikumar, B; Raymond, LA; Rubinsztein, DC; Singaraja, RR; Yanai, A1
Dietrich, LE; Hou, H; LaGrassa, TJ; Meiringer, CT; Subramanian, K; Ungermann, C1
Albert, PR; Chidiac, P; Mao, H; Nunn, C1
Heinemann, U; Kümmel, D; Veit, M1
Huang, Y; Ni, J; Qu, L; Wang, M; Yang, H1
Callaway, S; Ceballos, C; Hunter, E; McDonough, PM; Mikic, I; Planey, S; Price, JH; Seron, T; von Massenbach, B; Watson, R; Zacharias, D; Zhang, J1
Chouljenko, VN; Colgrove, R; Farzan, M; Iyer, A; Knipe, DM; Kousoulas, KG; Petit, CM1
Harbour, SN; Jackson, DE; Newman, PJ; Paddock, C; Sardjono, CT; Tridandapani, S; Yip, JC1
Arehart, EJ; Douville, KL; Gleim, SR; Hwa, J; Stitham, J1
Hannun, YA; Tani, M1
Jin, M; Li, S; Travis, GH; Yuan, Q1
Bamberger, M; Bismuth, G; Carmo, AM; Castro, MA; Gonçalves, CM; Nunes, RJ; Pereira, CF1
Fujiyoshi, Y; Hiroaki, Y; Nishikawa, K; Suzuki, H1
Crouch, RK; Filipek, S; Jastrzebska, B; Kono, M; Lem, J; Maeda, A; Maeda, T; Müller, DJ; Palczewski, K; Park, PS; Pulawski, W; Sapra, KT1
Berthiaume, LG; Keller, BO; Kostiuk, MA1
Duval, M; Fromentin, R; Leclerc, D; Majeau, N; Savard, C; Tremblay, MJ1
Gallagher, T; Shulla, A1
Buddelmeijer, N; Young, R1
Kinsella, BT; Mulvaney, EP; Reid, HM; Turner, EC1
Bar, E; Gutman, O; Henis, YI; Hirsch, JA; Jürgens, G; Lewinsohn, E; Poraty, L; Richter, S; Segev, O; Sorek, N; Yalovsky, S1
Chamberlain, LH; Gorleku, OA; Greaves, J; Salaun, C1
Beaino, W; Trifilieff, E1
Chen, D; Deng, J; Gong, W; Hou, J; Wang, X; Xie, Z; Yang, F; Zhao, Z1
Geffard, M; Kubera, M; Leunis, JC; Maes, M; Mihaylova, I1
Adibekian, A; Cravatt, BF; Martin, BR; Tully, SE; Wang, C1
Huang, C; Makino, S; Matsuyama, S; Shirato, K; Taguchi, F; Ujike, M1
Ahrends, R; Banerji, S; Flieger, A; Hermes, B; Lang, C; Rastew, E; Siegbrecht, E1
Geffard, M; Kubera, M; Leunis, JC; Maes, M; Mihaylova, I; Twisk, FN1
Fuller, W; Howie, J; Shattock, MJ; Tulloch, LB1
Bublitz, M; Capy, P; Decottignies, P; le Maire, M; Le Maréchal, P; Montigny, C; Møller, JV; Nissen, P; Olesen, C1
Aguilera, G; Deng, Q; Riquelme, D; Waxse, B; Zhang, J1
Clemmer, DE; Khanal, N; Li, Z; Mukhopadhyay, S; Pejaver, V; Radivojac, P1
Aramsangtienchai, P; Cao, J; Lin, H; Spiegelman, NA1
Dainese, E; Dufrusine, B; Fezza, F; Maccarrone, M; Oddi, S; Scipioni, L; Selent, J; Stepniewski, TM; Totaro, A1
Gottlieb, CD; Linder, ME1
Fernandez, JP; Hang, HC; Molina, H; Thinon, E1
Kumar, M; Kumar, R; Kumari, B1
Albanesi, JP; Angert, I; Barylko, B; Chen, Y; Chen, YJ; Hennen, J; Liou, J; Mueller, JD; Sun, HQ; Taylor, CA; Yin, H1
Delon, J; El Masri, R1
Lin, H1
Brügger, B; Cortizo, FG; Diakonov, EE; Helm, D; Kopp-Schneider, A; Lohbeck, J; Miller, AK; Nůsková, H; Reid, C; Sachsenheimer, T; Schneider, M; Schwenker, LS; Teleman, AA; Tiebe, M1

Reviews

8 review(s) available for cysteine and palmitic acid

ArticleYear
Post-translational modifications of beta subunits of voltage-dependent calcium channels.
    Journal of bioenergetics and biomembranes, 1998, Volume: 30, Issue:4

    Topics: Animals; Calcium Channels; Calcium Channels, L-Type; Cysteine; Humans; Muscle Proteins; Mutagenesis, Site-Directed; Myocardium; Palmitic Acid; Phosphorylation; Protein Conformation; Protein Folding; Protein Isoforms; Protein Processing, Post-Translational; Protein-Tyrosine Kinases; Recombinant Fusion Proteins; Structure-Activity Relationship

1998
Functional domains in tetraspanin proteins.
    Trends in biochemical sciences, 2003, Volume: 28, Issue:2

    Topics: Amino Acid Sequence; Animals; Binding Sites; Cysteine; Dimerization; Humans; Membrane Proteins; Models, Molecular; Molecular Sequence Data; Palmitic Acid; Protein Structure, Quaternary; Protein Structure, Tertiary

2003
Role of palmitoylation in RGS protein function.
    Methods in enzymology, 2004, Volume: 389

    Topics: Amino Acid Sequence; Animals; Cell Membrane; Conserved Sequence; Cysteine; GTP Phosphohydrolases; GTP-Binding Protein alpha Subunits, Gi-Go; GTPase-Activating Proteins; Guanosine Triphosphate; Humans; Models, Molecular; Palmitic Acid; Protein Processing, Post-Translational; Protein Structure, Secondary; RGS Proteins; Signal Transduction

2004
RGS17/RGSZ2 and the RZ/A family of regulators of G-protein signaling.
    Seminars in cell & developmental biology, 2006, Volume: 17, Issue:3

    Topics: Animals; Calcium; Cysteine; GTP-Binding Proteins; GTPase-Activating Proteins; Humans; Models, Biological; Palmitic Acid; Protein Binding; Protein Structure, Tertiary; RGS Proteins; Signal Transduction; Subcellular Fractions; Tissue Distribution; Ubiquitin

2006
Human prostacyclin receptor structure and function from naturally-occurring and synthetic mutations.
    Prostaglandins & other lipid mediators, 2007, Volume: 82, Issue:1-4

    Topics: Amino Acid Sequence; Asparagine; Binding Sites; Cysteine; Models, Molecular; Molecular Sequence Data; Mutation; Nuclear Magnetic Resonance, Biomolecular; Palmitic Acid; Polymorphism, Genetic; Polymorphism, Single Nucleotide; Proline; Protein Structure, Secondary; Protein Structure, Tertiary; Receptors, Epoprostenol; Serine

2007
Regulation of the cardiac Na(+) pump by palmitoylation of its catalytic and regulatory subunits.
    Biochemical Society transactions, 2013, Feb-01, Volume: 41, Issue:1

    Topics: Amino Acid Sequence; Animals; Catalytic Domain; Cysteine; Humans; Lipoylation; Models, Molecular; Molecular Sequence Data; Myocardium; Palmitic Acid; Protein Processing, Post-Translational; Protein Structure, Quaternary; Sequence Homology, Amino Acid; Sodium-Potassium-Exchanging ATPase

2013
Structure and function of DHHC protein S-acyltransferases.
    Biochemical Society transactions, 2017, 08-15, Volume: 45, Issue:4

    Topics: Acyltransferases; Animals; Cysteine; Humans; Isoenzymes; Lipoylation; Mutation; Palmitic Acid; Protein Conformation; Protein Interaction Domains and Motifs; Protein Processing, Post-Translational; Species Specificity; Substrate Specificity

2017
Protein cysteine palmitoylation in immunity and inflammation.
    The FEBS journal, 2021, Volume: 288, Issue:24

    Topics: Animals; Cysteine; Cytokines; Humans; Inflammation; Palmitic Acid; Signal Transduction

2021

Other Studies

172 other study(ies) available for cysteine and palmitic acid

ArticleYear
Effects of altering palmitylation sites on biosynthesis and function of the influenza virus hemagglutinin.
    Journal of virology, 1992, Volume: 66, Issue:12

    Topics: Amino Acid Sequence; Animals; Cell Fusion; Cell Line; Cysteine; Hemagglutinin Glycoproteins, Influenza Virus; Hemagglutinins, Viral; Influenza A virus; Kinetics; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Palmitic Acids; Trypsin; Viral Envelope Proteins

1992
Palmitylation of neuromodulin (GAP-43) is not required for phosphorylation by protein kinase C.
    The Journal of biological chemistry, 1992, Dec-15, Volume: 267, Issue:35

    Topics: Amino Acid Sequence; Animals; Base Sequence; CHO Cells; Cricetinae; Cysteine; GAP-43 Protein; Genetic Vectors; Kinetics; Membrane Glycoproteins; Molecular Sequence Data; Mutagenesis, Site-Directed; Nerve Tissue Proteins; Neurofilament Proteins; Oligodeoxyribonucleotides; Palmitic Acid; Palmitic Acids; Phosphorylation; Protein Kinase C; Restriction Mapping; Substrate Specificity; Time Factors; Transfection

1992
Palmitylation of a G-protein coupled receptor. Direct analysis by tandem mass spectrometry.
    The Journal of biological chemistry, 1992, Aug-25, Volume: 267, Issue:24

    Topics: Amino Acid Sequence; Animals; Cattle; Chromatography, High Pressure Liquid; Cyanogen Bromide; Cysteine; GTP-Binding Proteins; Mass Spectrometry; Models, Structural; Molecular Sequence Data; Palmitic Acid; Palmitic Acids; Peptide Fragments; Protein Conformation; Rhodopsin; Rod Cell Outer Segment; Thermolysin

1992
Identification of palmitoylation sites on CD4, the human immunodeficiency virus receptor.
    The Journal of biological chemistry, 1992, Jul-05, Volume: 267, Issue:19

    Topics: Amino Acid Sequence; Base Sequence; CD4 Antigens; Chromatography, Liquid; Cysteine; HeLa Cells; HIV; Humans; Methionine; Molecular Sequence Data; Mutagenesis; Palmitic Acid; Palmitic Acids; Plasmids; Precipitin Tests; Protein Processing, Post-Translational

1992
Lung surfactant protein SP-C from human, bovine, and canine sources contains palmityl cysteine thioester linkages.
    The American journal of physiology, 1991, Volume: 261, Issue:2 Pt 1

    Topics: Acylation; Amino Acid Sequence; Animals; Cattle; Chromatography, Gas; Chromatography, High Pressure Liquid; Cysteine; Dithiothreitol; Dogs; Humans; Molecular Sequence Data; Palmitic Acid; Palmitic Acids; Proteolipids; Pulmonary Surfactants; Spectrum Analysis; Sulfhydryl Compounds

1991
The M2 protein of influenza A virus is acylated.
    The Journal of general virology, 1991, Volume: 72 ( Pt 6)

    Topics: Acylation; Animals; Autoradiography; Cell Line; Cysteine; Influenza A virus; Myristic Acid; Myristic Acids; Palmitic Acid; Palmitic Acids; Protein Processing, Post-Translational; Sulfur Radioisotopes; Tritium; Viral Matrix Proteins

1991
Palmitylation, sulfation, and glycosylation of the alpha subunit of the sodium channel. Role of post-translational modifications in channel assembly.
    The Journal of biological chemistry, 1987, Oct-05, Volume: 262, Issue:28

    Topics: Alkaloids; Animals; Brain; Cells, Cultured; Cysteine; Embryo, Mammalian; Glycoproteins; Indolizines; Ion Channels; Macromolecular Substances; Membrane Proteins; Methionine; Neurons; Palmitic Acid; Palmitic Acids; Protein Processing, Post-Translational; Rats; Sodium; Sodium Channels; Swainsonine; Tunicamycin

1987
Palmitoylation of the human beta 2-adrenergic receptor. Mutation of Cys341 in the carboxyl tail leads to an uncoupled nonpalmitoylated form of the receptor.
    The Journal of biological chemistry, 1989, May-05, Volume: 264, Issue:13

    Topics: Acylation; Adenylyl Cyclases; Cell Membrane; Cysteine; Humans; Membrane Glycoproteins; Mutation; Palmitic Acid; Palmitic Acids; Protein Processing, Post-Translational; Radioligand Assay; Receptors, Adrenergic, beta; Structure-Activity Relationship

1989
Posttranslational membrane attachment and dynamic fatty acylation of a neuronal growth cone protein, GAP-43.
    The Journal of cell biology, 1989, Volume: 108, Issue:2

    Topics: Acylation; Animals; Axons; Brain; Calcium; Cations, Divalent; Cell Membrane; Cerebral Cortex; Cysteine; Fatty Acids; GAP-43 Protein; Growth Substances; Membrane Proteins; Nerve Tissue Proteins; Neurons; Palmitic Acid; Palmitic Acids; Phosphoproteins; Protein Processing, Post-Translational; Rats; Rats, Inbred Strains; Solubility; Zinc

1989
Posttranslational processing of p21 ras proteins involves palmitylation of the C-terminal tetrapeptide containing cysteine-186.
    Journal of virology, 1985, Volume: 56, Issue:2

    Topics: Animals; Cells, Cultured; Cysteine; Molecular Weight; Oncogene Proteins, Viral; Palmitic Acid; Palmitic Acids; Protein Processing, Post-Translational; Rats; Sarcoma Viruses, Murine

1985
Direct identification of palmitic acid as the lipid attached to p21ras.
    Molecular and cellular biology, 1986, Volume: 6, Issue:1

    Topics: Animals; Cell Transformation, Neoplastic; Cells, Cultured; Cysteine; Harvey murine sarcoma virus; Mice; Myristic Acid; Myristic Acids; Oncogene Protein p21(ras); Oncogene Proteins, Viral; Palmitic Acid; Palmitic Acids; Sarcoma Viruses, Murine

1986
Incorporation of myristate and palmitate into the sheep reticulocyte transferrin receptor: evidence for identical sites of labeling.
    Archives of biochemistry and biophysics, 1988, Aug-01, Volume: 264, Issue:2

    Topics: Acylation; Animals; Cell Fractionation; Centrifugation, Density Gradient; Chymotrypsin; Cysteine; Erythrocyte Membrane; Hydroxylamine; Hydroxylamines; Immunosorbent Techniques; Myristic Acid; Myristic Acids; Palmitic Acid; Palmitic Acids; Protein Biosynthesis; Receptors, Transferrin; Reticulocytes; Serine Endopeptidases; Sheep; Sulfhydryl Compounds; Tritium

1988
A carboxyl-terminal cysteine residue is required for palmitic acid binding and biological activity of the ras-related yeast YPT1 protein.
    The EMBO journal, 1988, Volume: 7, Issue:4

    Topics: Amino Acid Sequence; Animals; Base Sequence; Codon; Cysteine; Fungal Proteins; Genes; Genes, Fungal; Humans; Molecular Sequence Data; Mutation; Palmitic Acid; Palmitic Acids; Protein Binding; ras Proteins; Saccharomyces cerevisiae; Sequence Homology, Nucleic Acid

1988
Chemical identification of cysteine as palmitoylation site in a transmembrane protein (Semliki Forest virus E1).
    The Journal of biological chemistry, 1988, Dec-15, Volume: 263, Issue:35

    Topics: Amino Acid Sequence; Animals; Chromatography, High Pressure Liquid; Cricetinae; Cysteine; Electrophoresis, Polyacrylamide Gel; Isothiocyanates; Membrane Proteins; Molecular Sequence Data; Molecular Weight; p-Dimethylaminoazobenzene; Palmitic Acid; Palmitic Acids; Semliki forest virus; Thiocyanates

1988
Two adjacent cysteine residues in the C-terminal cytoplasmic fragment of bovine rhodopsin are palmitylated.
    FEBS letters, 1988, Mar-28, Volume: 230, Issue:1-2

    Topics: Acylation; Animals; Cattle; Cell Membrane; Chromatography, Gas; Chromatography, High Pressure Liquid; Cysteine; Cytoplasm; Mass Spectrometry; Palmitic Acid; Palmitic Acids; Peptide Fragments; Protein Conformation; Retinal Pigments; Rhodopsin; Rod Cell Outer Segment

1988
The HLA-D-associated invariant chain binds palmitic acid at the cysteine adjacent to the membrane segment.
    The Journal of biological chemistry, 1986, Mar-05, Volume: 261, Issue:7

    Topics: Antibodies, Monoclonal; Cell Line; Cerulenin; Cysteine; Fatty Acids; Histocompatibility Antigens Class II; Humans; Hydroxylamine; Hydroxylamines; Immunosorbent Techniques; Palmitic Acid; Palmitic Acids; Polymorphism, Genetic; Tunicamycin

1986
Ia-associated invariant chain is fatty acylated before addition of sialic acid.
    Biochemistry, 1985, Oct-22, Volume: 24, Issue:22

    Topics: Acylation; Animals; Antibodies, Monoclonal; Antigens, Differentiation, B-Lymphocyte; Cerulenin; Cysteine; Disulfides; Histocompatibility Antigens Class II; Lymphoma; Mice; Mice, Inbred BALB C; N-Acetylneuraminic Acid; Neuraminidase; Palmitic Acid; Palmitic Acids; Plasmacytoma; Protein Binding; Sialic Acids; Tunicamycin

1985
Cysteines in the transmembrane region of major histocompatibility complex antigens are fatty acylated via thioester bonds.
    The Journal of biological chemistry, 1984, Jun-10, Volume: 259, Issue:11

    Topics: Cysteine; Histocompatibility Antigens Class II; HLA Antigens; HLA-A Antigens; HLA-B Antigens; HLA-DR Antigens; Humans; Hydrogen-Ion Concentration; Hydroxylamine; Hydroxylamines; Major Histocompatibility Complex; Palmitic Acid; Palmitic Acids; Palmitoyl Coenzyme A; Peptide Hydrolases; Tromethamine

1984
Identification of the palmitoylation site in rat myelin P0 glycoprotein.
    Journal of neurochemistry, 1994, Volume: 62, Issue:3

    Topics: Acylation; Amino Acid Sequence; Animals; Binding Sites; Borohydrides; Cysteine; Esters; Fatty Acids; Hydroxylamine; Hydroxylamines; In Vitro Techniques; Molecular Sequence Data; Myelin P0 Protein; Myelin Proteins; Oxidation-Reduction; Palmitic Acid; Palmitic Acids; Rats; Sciatic Nerve; Sulfhydryl Compounds

1994
Biosynthesis and palmitoylation of endothelial nitric oxide synthase: mutagenesis of palmitoylation sites, cysteines-15 and/or -26, argues against depalmitoylation-induced translocation of the enzyme.
    Biochemistry, 1995, Sep-26, Volume: 34, Issue:38

    Topics: Animals; Base Sequence; Biological Transport; Blotting, Western; Bradykinin; Calcium; Cattle; Cell Fractionation; Cysteine; Cytosol; Endothelium, Vascular; Ionomycin; Membranes; Molecular Sequence Data; Mutagenesis, Site-Directed; Myristic Acid; Myristic Acids; Nitric Oxide Synthase; Palmitic Acid; Palmitic Acids; Protein Binding; Protein Processing, Post-Translational; Recombinant Proteins; Signal Transduction; Structure-Activity Relationship; Transfection

1995
The role of palmitoylation of the guanine nucleotide binding protein G11 alpha in defining interaction with the plasma membrane.
    The Biochemical journal, 1995, Sep-15, Volume: 310 ( Pt 3)

    Topics: Amino Acid Sequence; Animals; Base Sequence; Cell Line; Cell Membrane; Chlorocebus aethiops; Chromatography, Gel; Cysteine; Cytosol; DNA Primers; DNA, Complementary; Electrophoresis, Polyacrylamide Gel; Genetic Variation; GTP-Binding Proteins; Mice; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Palmitic Acids; Point Mutation; Polymerase Chain Reaction; Protein Processing, Post-Translational; Recombinant Proteins; Sequence Homology, Amino Acid; Serine; Transfection

1995
Depalmitoylation of rhodopsin with hydroxylamine.
    Methods in enzymology, 1995, Volume: 250

    Topics: Acylation; Animals; Cattle; Cell Line; Chlorocebus aethiops; Chromatography, Affinity; Cysteine; Guanosine Triphosphate; Hydrogen-Ion Concentration; Hydrolysis; Hydroxylamine; Hydroxylamines; Isotope Labeling; Kinetics; Membrane Proteins; Mutagenesis, Site-Directed; Palmitic Acid; Palmitic Acids; Phosphates; Phosphorus Radioisotopes; Protein Processing, Post-Translational; Radioisotope Dilution Technique; Rats; Rats, Sprague-Dawley; Recombinant Proteins; Rhodopsin; Rod Cell Outer Segment; Transfection; Tritium

1995
P-selectin is acylated with palmitic acid and stearic acid at cysteine 766 through a thioester linkage.
    The Journal of biological chemistry, 1993, May-25, Volume: 268, Issue:15

    Topics: Acylation; Amino Acid Sequence; Antigens, CD; Base Sequence; Blood Platelets; Cloning, Molecular; Cysteine; DNA; Electrophoresis, Polyacrylamide Gel; Gas Chromatography-Mass Spectrometry; Humans; Molecular Sequence Data; Oligodeoxyribonucleotides; P-Selectin; Palmitic Acid; Palmitic Acids; Platelet Membrane Glycoproteins; Polymerase Chain Reaction; Protein Processing, Post-Translational; Stearic Acids; Tritium

1993
Determination of the structural requirements for palmitoylation of p63.
    The Journal of biological chemistry, 1995, Apr-21, Volume: 270, Issue:16

    Topics: Amino Acid Sequence; Animals; Base Sequence; Brefeldin A; Cell Line; Chlorocebus aethiops; Cyclopentanes; Cysteine; Membrane Proteins; Molecular Sequence Data; Palmitic Acid; Palmitic Acids

1995
Caveolin is palmitoylated on multiple cysteine residues. Palmitoylation is not necessary for localization of caveolin to caveolae.
    The Journal of biological chemistry, 1995, Mar-24, Volume: 270, Issue:12

    Topics: Amino Acid Sequence; Animals; Caveolin 1; Caveolins; Cell Line; Cell Membrane; Cysteine; Dogs; Humans; Membrane Proteins; Molecular Sequence Data; Palmitic Acid; Palmitic Acids; Proto-Oncogene Proteins; Proto-Oncogene Proteins c-fyn; Structure-Activity Relationship

1995
Palmitoylation of G protein-coupled receptor kinase, GRK6. Lipid modification diversity in the GRK family.
    The Journal of biological chemistry, 1994, Nov-11, Volume: 269, Issue:45

    Topics: Acylation; Amino Acid Sequence; Animals; Baculoviridae; Cell Line; Cell Membrane; Chlorocebus aethiops; Cysteine; Cytosol; Delayed Rectifier Potassium Channels; Electrophoresis, Polyacrylamide Gel; G-Protein-Coupled Receptor Kinases; GTP-Binding Proteins; Kidney; Molecular Sequence Data; Palmitic Acid; Palmitic Acids; Plasmids; Potassium Channels; Potassium Channels, Voltage-Gated; Protein Prenylation; Protein Processing, Post-Translational; Protein Serine-Threonine Kinases; Receptor Protein-Tyrosine Kinases; Spodoptera; Transfection

1994
The low affinity neurotrophin receptor, p75LNTR, is palmitoylated by thioester formation through cysteine 279.
    The Journal of biological chemistry, 1994, Dec-02, Volume: 269, Issue:48

    Topics: Acylation; Amino Acid Sequence; Animals; Cell Line; Cell Membrane; Chlorocebus aethiops; Cysteine; Esters; Mice; Mice, Inbred BALB C; Molecular Sequence Data; Palmitic Acid; Palmitic Acids; PC12 Cells; Protein Processing, Post-Translational; Rats; Receptor, Nerve Growth Factor; Receptors, Neuropeptide; Transfection

1994
Palmitoylation of luteinizing hormone/human choriogonadotropin receptors in transfected cells. Abolition of palmitoylation by mutation of Cys-621 and Cys-622 residues in the cytoplasmic tail increases ligand-induced internalization of the receptor.
    The Journal of biological chemistry, 1994, Dec-02, Volume: 269, Issue:48

    Topics: Amino Acid Sequence; Animals; Base Sequence; Cell Line; Cell Membrane; Chorionic Gonadotropin; Cysteine; Humans; Kidney; Kinetics; Models, Structural; Molecular Sequence Data; Mutagenesis, Site-Directed; Oligodeoxyribonucleotides; Palmitic Acid; Palmitic Acids; Protein Processing, Post-Translational; Protein Structure, Secondary; Rats; Receptors, LH; Recombinant Proteins; Transfection

1994
N-terminally myristoylated Ras proteins require palmitoylation or a polybasic domain for plasma membrane localization.
    Molecular and cellular biology, 1994, Volume: 14, Issue:7

    Topics: Amino Acid Sequence; Animals; Base Sequence; Calcium-Calmodulin-Dependent Protein Kinases; Cell Line; Cell Membrane; Chlorocebus aethiops; Cysteine; DNA Primers; Mitogen-Activated Protein Kinase Kinases; Molecular Sequence Data; Mutagenesis, Site-Directed; Myristic Acid; Myristic Acids; Palmitic Acid; Palmitic Acids; Point Mutation; Polymerase Chain Reaction; Protein Biosynthesis; Protein Kinases; Protein Processing, Post-Translational; Proto-Oncogene Proteins p21(ras); Recombinant Proteins; Restriction Mapping; Sequence Homology, Amino Acid; Serine; Transfection

1994
Lack of N terminal palmitoylation of G protein alpha subunits reduces membrane association.
    Biochemical Society transactions, 1993, Volume: 21, Issue:4

    Topics: Amino Acid Sequence; Animals; Cell Line; Cysteine; Cytosol; DNA, Complementary; GTP-Binding Proteins; Hydroxylamine; Hydroxylamines; Immunoblotting; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Palmitic Acids; Protein Processing, Post-Translational; Rats; Serine; Transfection

1993
The G protein alpha s subunit incorporates [3H]palmitic acid and mutation of cysteine-3 prevents this modification.
    Biochemistry, 1993, Aug-17, Volume: 32, Issue:32

    Topics: Animals; Base Sequence; Cell Line; Cycloheximide; Cysteine; Gene Expression; GTP-Binding Proteins; Immunoblotting; Immunosorbent Techniques; Methionine; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Palmitic Acids; Rats; Transfection; Tritium

1993
Palmitoylation of Semliki Forest virus glycoproteins in insect cells (C6/36) occurs in an early compartment and is coupled to the cleavage of the precursor p62.
    Archives of virology, 1993, Volume: 132, Issue:3-4

    Topics: Acylation; Aedes; Animals; Cell Compartmentation; Cysteine; Palmitic Acid; Palmitic Acids; Protein Precursors; Protein Processing, Post-Translational; Semliki forest virus; Vero Cells; Viral Envelope Proteins

1993
Mutations of the alpha 2A-adrenergic receptor that eliminate detectable palmitoylation do not perturb receptor-G-protein coupling.
    The Journal of biological chemistry, 1993, Apr-15, Volume: 268, Issue:11

    Topics: Acylation; Alanine; Allosteric Regulation; Amino Acid Sequence; Animals; Cell Line; Chromatography, Affinity; Cysteine; Dogs; Electrophoresis, Polyacrylamide Gel; Genetic Vectors; GTP-Binding Proteins; Guanosine 5'-O-(3-Thiotriphosphate); Guanylyl Imidodiphosphate; Kidney; Kinetics; Mutagenesis, Site-Directed; Palmitic Acid; Palmitic Acids; Receptors, Adrenergic, beta; Recombinant Proteins; Serine; Swine; Transfection; Yohimbine

1993
Palmitoylation of bovine opsin and its cysteine mutants in COS cells.
    Proceedings of the National Academy of Sciences of the United States of America, 1993, Jan-01, Volume: 90, Issue:1

    Topics: Amino Acid Sequence; Animals; Cattle; Cell Line; Cell Membrane; Cysteine; Electrophoresis, Polyacrylamide Gel; Eye Proteins; G-Protein-Coupled Receptor Kinase 1; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Palmitic Acids; Phosphorylation; Protein Kinases; Protein Processing, Post-Translational; Protein Structure, Secondary; Recombinant Proteins; Rhodopsin; Rod Opsins; Serine; Spectrophotometry; Transfection

1993
Site-directed mutations in the Sindbis virus E2 glycoprotein identify palmitoylation sites and affect virus budding.
    Journal of virology, 1993, Volume: 67, Issue:5

    Topics: Amino Acid Sequence; Animals; Cell Line; Cysteine; DNA Mutational Analysis; Models, Biological; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Palmitic Acids; Phenotype; Protein Processing, Post-Translational; RNA, Viral; Sindbis Virus; Viral Envelope Proteins; Virus Replication

1993
A lipoprotein signal peptide plus a cysteine residue at the amino-terminal end of the periplasmic protein beta-lactamase is sufficient for its lipid modification, processing and membrane localization in Escherichia coli.
    FEMS microbiology letters, 1993, Apr-15, Volume: 108, Issue:3

    Topics: Amino Acid Sequence; Anti-Bacterial Agents; Bacterial Outer Membrane Proteins; Bacterial Proteins; Base Sequence; beta-Lactamases; Biological Transport; Cysteine; Cytoplasm; Endopeptidases; Escherichia coli; Escherichia coli Proteins; Lipoproteins; Membrane Proteins; Molecular Sequence Data; Palmitic Acid; Palmitic Acids; Peptides; Protein Processing, Post-Translational; Protein Sorting Signals; Recombinant Fusion Proteins; Serine Endopeptidases; Substrate Specificity

1993
Palmitoylation of either Cys-3 or Cys-5 is required for the biological activity of the Lck tyrosine protein kinase.
    Molecular and cellular biology, 1995, Volume: 15, Issue:12

    Topics: Amino Acid Sequence; Animals; Base Sequence; Cell Line; Chlorocebus aethiops; Cysteine; DNA Primers; Interleukin-3; Kinetics; Lymphocyte Activation; Lymphocyte Specific Protein Tyrosine Kinase p56(lck); Mice; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Palmitic Acids; Point Mutation; Polymerase Chain Reaction; Protein Processing, Post-Translational; Rats; Recombinant Proteins; Restriction Mapping; src-Family Kinases; T-Lymphocytes; Transfection

1995
Mutagenesis of palmitoylation sites in endothelial nitric oxide synthase identifies a novel motif for dual acylation and subcellular targeting.
    Proceedings of the National Academy of Sciences of the United States of America, 1995, Dec-05, Volume: 92, Issue:25

    Topics: Acylation; Amino Acid Sequence; Base Sequence; Cell Compartmentation; Cell Membrane; Cells, Cultured; Cysteine; Endothelium, Vascular; Fatty Acids; Isoenzymes; Molecular Sequence Data; Mutagenesis; Myristic Acid; Myristic Acids; Nitric Oxide Synthase; Palmitic Acid; Palmitic Acids; Protein Processing, Post-Translational; Recombinant Proteins; Sequence Deletion; Structure-Activity Relationship

1995
Palmitoylation of the GluR6 kainate receptor.
    Proceedings of the National Academy of Sciences of the United States of America, 1995, Dec-19, Volume: 92, Issue:26

    Topics: Alanine; Animals; Autoradiography; Base Sequence; Cell Line; Cysteine; DNA, Complementary; Embryo, Mammalian; Embryo, Nonmammalian; GluK2 Kainate Receptor; Humans; Kidney; Molecular Sequence Data; Mutagenesis, Site-Directed; Oligodeoxyribonucleotides; Open Reading Frames; Palmitic Acid; Palmitic Acids; Phosphorylation; Point Mutation; Protein Kinase C; Protein Processing, Post-Translational; Receptors, Kainic Acid; Receptors, Metabotropic Glutamate; Recombinant Proteins; Spodoptera; Transfection; Tritium

1995
Cysteine-699, a possible palmitoylation site of the thyrotropin receptor, is not crucial for cAMP or phosphoinositide signaling but is necessary for full surface expression.
    Biochemical and biophysical research communications, 1996, Apr-25, Volume: 221, Issue:3

    Topics: Amino Acid Sequence; Animals; Cell Line; Cell Membrane; Cyclic AMP; Cysteine; Molecular Sequence Data; Palmitic Acid; Palmitic Acids; Phosphatidylinositols; Protein Binding; Receptors, Thyrotropin; Signal Transduction; Thyrotropin

1996
Multiple palmitoylation of synaptotagmin and the t-SNARE SNAP-25.
    FEBS letters, 1996, Apr-29, Volume: 385, Issue:1-2

    Topics: Acylation; Amino Acid Sequence; Calcium-Binding Proteins; Cell Fractionation; Cell Membrane; Cysteine; Cytosol; Membrane Glycoproteins; Membrane Proteins; Molecular Sequence Data; Mutation; Nerve Tissue Proteins; Palmitic Acid; Palmitic Acids; Qa-SNARE Proteins; Synaptosomal-Associated Protein 25; Synaptotagmins

1996
Oligomerization of VIP21-caveolin in vitro is stabilized by long chain fatty acylation or cholesterol.
    FEBS letters, 1996, Jun-17, Volume: 388, Issue:2-3

    Topics: Acyl Coenzyme A; Acylation; Animals; Carrier Proteins; Caveolin 1; Caveolins; Cell Line; Cysteine; Dogs; Humans; Hydroxycholesterols; Membrane Proteins; Palmitic Acid; Palmitic Acids

1996
Palmitoylated cysteine 341 modulates phosphorylation of the beta2-adrenergic receptor by the cAMP-dependent protein kinase.
    The Journal of biological chemistry, 1996, Aug-30, Volume: 271, Issue:35

    Topics: Adrenergic beta-Agonists; Amino Acid Sequence; Animals; Cell Line; Cyclic AMP-Dependent Protein Kinases; Cysteine; Humans; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Palmitic Acids; Phosphorylation; Receptors, Adrenergic, beta-2; Recombinant Proteins; Spodoptera

1996
Lipid-modified, cysteinyl-containing peptides of diverse structures are efficiently S-acylated at the plasma membrane of mammalian cells.
    The Journal of cell biology, 1996, Volume: 134, Issue:3

    Topics: Acylation; Acyltransferases; Amino Acid Sequence; Animals; Cell Line; Cell Membrane; Cysteine; Enzyme Inhibitors; Golgi Apparatus; Intracellular Membranes; Lipoproteins; Mammals; Molecular Sequence Data; Palmitic Acid; Palmitic Acids; Peptides; Substrate Specificity; Tunicamycin

1996
The release of the variant surface protein of Giardia to its soluble isoform is mediated by the selective cleavage of the conserved carboxy-terminal domain.
    Biochemistry, 1996, Aug-06, Volume: 35, Issue:31

    Topics: Amino Acid Sequence; Animals; Antigens, Protozoan; Antigens, Surface; Cell Membrane; Conserved Sequence; Cysteine; Giardia; Hydrolases; Kinetics; Membrane Proteins; Molecular Sequence Data; Palmitic Acid; Palmitic Acids; Protozoan Proteins; Sequence Homology, Amino Acid; Sheep; Spectrometry, Mass, Matrix-Assisted Laser Desorption-Ionization

1996
Cytoplasmic tail length influences fatty acid selection for acylation of viral glycoproteins.
    The Biochemical journal, 1996, Aug-15, Volume: 318 ( Pt 1)

    Topics: Acylation; Amino Acid Sequence; Animals; Cell Line; Cells, Cultured; Cysteine; Cytoplasm; Electrophoresis, Polyacrylamide Gel; Fatty Acids; Gammainfluenzavirus; Hemagglutinin Glycoproteins, Influenza Virus; Hemagglutinins, Viral; Membrane Proteins; Microscopy, Fluorescence; Molecular Sequence Data; Myristic Acid; Myristic Acids; Palmitic Acid; Palmitic Acids; Precipitin Tests; Recombinant Fusion Proteins; Stearic Acids; Viral Envelope Proteins

1996
Fatty acylation of synaptotagmin in PC12 cells and synaptosomes.
    Biochemical and biophysical research communications, 1996, Aug-05, Volume: 225, Issue:1

    Topics: Acylation; Amino Acid Sequence; Animals; Aplysia; Brain; Caenorhabditis elegans; Calcium-Binding Proteins; Cysteine; Decapodiformes; Drosophila; Humans; Hydroxylamine; Hydroxylamines; Membrane Glycoproteins; Molecular Sequence Data; Nerve Tissue Proteins; Palmitic Acid; Palmitic Acids; PC12 Cells; Rats; Sequence Homology, Amino Acid; Synaptosomes; Synaptotagmin I; Synaptotagmins

1996
CD36 is palmitoylated on both N- and C-terminal cytoplasmic tails.
    The Journal of biological chemistry, 1996, Sep-13, Volume: 271, Issue:37

    Topics: Animals; CD36 Antigens; Cell Line; Cysteine; Cytoplasm; DNA, Complementary; Electrophoresis, Polyacrylamide Gel; Flow Cytometry; Humans; Palmitic Acid; Rats; Transfection

1996
Cysteines 153 and 154 of transmembrane transforming growth factor-alpha are palmitoylated and mediate cytoplasmic protein association.
    The Journal of biological chemistry, 1996, Nov-08, Volume: 271, Issue:45

    Topics: Animals; CHO Cells; Cricetinae; Cysteine; Cytoplasm; Membrane Proteins; Mutagenesis, Site-Directed; Palmitic Acid; Plasmids; Transforming Growth Factor alpha

1996
Partial constitutive activation of pheromone responses by a palmitoylation-site mutant of a G protein alpha subunit in yeast.
    Biochemistry, 1996, Nov-26, Volume: 35, Issue:47

    Topics: Cell Membrane; Cysteine; Esters; Fungal Proteins; GTP-Binding Protein alpha Subunits; GTP-Binding Protein alpha Subunits, Gq-G11; GTP-Binding Proteins; Guanosine Diphosphate; Heterotrimeric GTP-Binding Proteins; Membrane Proteins; Mutagenesis; Palmitic Acid; Pheromones; Saccharomyces cerevisiae; Saccharomyces cerevisiae Proteins; Signal Transduction; Sulfhydryl Compounds

1996
Fatty acylation of the rat and human asialoglycoprotein receptors. A conserved cytoplasmic cysteine residue is acylated in all receptor subunits.
    The Journal of biological chemistry, 1996, Dec-13, Volume: 271, Issue:50

    Topics: Acylation; Animals; Asialoglycoprotein Receptor; Chromatography, High Pressure Liquid; Cysteine; Fatty Acids; Humans; Hydroxylamine; Hydroxylamines; Iodoacetamide; Molecular Weight; Palmitic Acid; Protein Conformation; Rats; Rats, Sprague-Dawley; Receptors, Cell Surface; Subtilisins

1996
The lipoprotein VirB7 interacts with VirB9 in the membranes of Agrobacterium tumefaciens.
    Journal of bacteriology, 1997, Volume: 179, Issue:4

    Topics: Agrobacterium tumefaciens; Bacterial Proteins; Cell Membrane; Cysteine; Dimerization; Electrophoresis, Polyacrylamide Gel; Lipoproteins; Membrane Proteins; Oxidation-Reduction; Palmitic Acid; Precipitin Tests; Virulence Factors

1997
Rapid plasma membrane anchoring of newly synthesized p59fyn: selective requirement for NH2-terminal myristoylation and palmitoylation at cysteine-3.
    The Journal of cell biology, 1997, Mar-10, Volume: 136, Issue:5

    Topics: 3T3 Cells; Acylation; Animals; Cell Membrane; COS Cells; Cysteine; Detergents; GAP-43 Protein; GTP-Binding Proteins; Humans; Membrane Glycoproteins; Mice; Mutation; Myristic Acid; Myristic Acids; Nerve Tissue Proteins; Octoxynol; Oncogene Protein pp60(v-src); Palmitic Acid; Polyribosomes; Protein Processing, Post-Translational; Proto-Oncogene Proteins; Proto-Oncogene Proteins c-fyn; Proto-Oncogene Proteins pp60(c-src); Recombinant Fusion Proteins; RNA, Messenger

1997
Elimination of palmitoylation sites in the human dopamine D1 receptor does not affect receptor-G protein interaction.
    European journal of pharmacology, 1997, Apr-11, Volume: 324, Issue:1

    Topics: 2,3,4,5-Tetrahydro-7,8-dihydroxy-1-phenyl-1H-3-benzazepine; Acylation; Adenylyl Cyclases; Alanine; Amino Acid Sequence; Animals; Cells, Cultured; Cloning, Molecular; Cricetinae; Cysteine; Dopamine; Dopamine Agonists; GTP-Binding Proteins; Humans; Kidney; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Radioligand Assay; Receptors, Adrenergic, beta-2; Receptors, Dopamine D1; Sequence Alignment; Software; Transfection

1997
Intrinsic signals in the unique domain target p56(lck) to the plasma membrane independently of CD4.
    The Journal of cell biology, 1997, Jun-02, Volume: 137, Issue:5

    Topics: 3T3 Cells; Animals; Biological Transport; CD4 Antigens; CD8 Antigens; Cell Membrane; Cysteine; Fluorescent Antibody Technique, Indirect; Golgi Apparatus; HeLa Cells; Humans; Lymphocyte Specific Protein Tyrosine Kinase p56(lck); Mice; Microscopy, Electron; Palmitic Acid; Protein Sorting Signals; Protein Structure, Tertiary; src-Family Kinases; T-Lymphocytes; Transfection

1997
A cysteine-3 to serine mutation of the G-protein Gi1 alpha abrogates functional activation by the alpha 2A-adrenoceptor but not interactions with the beta gamma complex.
    Biochemistry, 1997, Sep-02, Volume: 36, Issue:35

    Topics: Adenylate Cyclase Toxin; Adenylyl Cyclases; Animals; Chlorocebus aethiops; COS Cells; Cysteine; GTP-Binding Protein alpha Subunits, Gi-Go; Mutagenesis, Site-Directed; Palmitic Acid; Pertussis Toxin; Receptors, Adrenergic, alpha-2; Serine; Virulence Factors, Bordetella

1997
Altered activity of palmitoylation-deficient and isoprenylated forms of the G protein-coupled receptor kinase GRK6.
    The Journal of biological chemistry, 1997, Oct-24, Volume: 272, Issue:43

    Topics: Amino Acid Sequence; Amino Acid Substitution; Animals; Base Sequence; Cattle; COS Cells; Cysteine; DNA Primers; Eye Proteins; G-Protein-Coupled Receptor Kinase 1; G-Protein-Coupled Receptor Kinases; GTP-Binding Proteins; Isoproterenol; Kinetics; Liposomes; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Phosphatidylcholines; Phosphorylation; Polymerase Chain Reaction; Protein Kinases; Protein Prenylation; Protein Serine-Threonine Kinases; Receptor Protein-Tyrosine Kinases; Receptors, Adrenergic, beta-2; Recombinant Proteins; Retina; Rhodopsin; Sequence Deletion; Serine; Transfection

1997
Characterization of the palmitoylation domain of SNAP-25.
    Journal of neurochemistry, 1997, Volume: 69, Issue:5

    Topics: Amino Acid Sequence; Amino Acid Substitution; Animals; Base Sequence; Cell Membrane; COS Cells; Cysteine; DNA Primers; Membrane Proteins; Mice; Molecular Sequence Data; Mutagenesis, Site-Directed; Nerve Tissue Proteins; Neurons; Palmitic Acid; Polymerase Chain Reaction; Protein Processing, Post-Translational; Recombinant Proteins; Synaptosomal-Associated Protein 25; Transfection

1997
Met-Gly-Cys motif from G-protein alpha subunit cannot direct palmitoylation when fused to heterologous protein.
    Archives of biochemistry and biophysics, 1998, Jan-15, Volume: 349, Issue:2

    Topics: Amino Acid Sequence; Animals; Base Sequence; Cell Line; Cysteine; Glycine; GTP-Binding Protein alpha Subunits, Gs; Macromolecular Substances; Methionine; Myristic Acid; Palmitic Acid; Protein Biosynthesis; Protein Processing, Post-Translational; Recombinant Fusion Proteins; Spodoptera; Transcription, Genetic; Transfection; Tumor Necrosis Factor-alpha

1998
Mapping fatty acid binding to beta-lactoglobulin: Ligand binding is restricted by modification of Cys 121.
    Protein science : a publication of the Protein Society, 1998, Volume: 7, Issue:1

    Topics: Anilino Naphthalenesulfonates; Animals; Binding Sites; Cattle; Cyclic N-Oxides; Cysteine; Electron Spin Resonance Spectroscopy; Fluorescence; Fluorescent Dyes; Hydrogen-Ion Concentration; Lactoglobulins; Ligands; Methyl Methanesulfonate; Methylation; Models, Molecular; Molecular Structure; Palmitic Acid; Protein Binding; Spin Labels; Vitamin A

1998
Plasma membrane localization is required for RGS4 function in Saccharomyces cerevisiae.
    Proceedings of the National Academy of Sciences of the United States of America, 1998, May-12, Volume: 95, Issue:10

    Topics: Amino Acid Sequence; Calcium-Calmodulin-Dependent Protein Kinases; Cell Membrane; Cysteine; Fungal Proteins; Green Fluorescent Proteins; Luminescent Proteins; Molecular Sequence Data; Palmitic Acid; Pheromones; Proteins; RGS Proteins; Saccharomyces cerevisiae; Signal Transduction; Structure-Activity Relationship

1998
A cysteine-11 to serine mutant of G alpha12 impairs activation through the thrombin receptor.
    FEBS letters, 1998, Jun-16, Volume: 429, Issue:3

    Topics: Acylation; Amino Acid Sequence; Cysteine; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Protein Binding; Protein Processing, Post-Translational; Receptors, Thrombin; Serine; Signal Transduction

1998
Membrane targeting of L-type calcium channels. Role of palmitoylation in the subcellular localization of the beta2a subunit.
    The Journal of biological chemistry, 1998, Sep-04, Volume: 273, Issue:36

    Topics: Amino Acid Sequence; Animals; Anti-Bacterial Agents; Biological Transport; Brefeldin A; Calcium Channels; Calcium Channels, L-Type; Cell Compartmentation; Cyclopentanes; Cysteine; Macrolides; Molecular Sequence Data; Mutation; Palmitic Acid; Protein Processing, Post-Translational; Protein Synthesis Inhibitors; Rabbits; Rats; Recombinant Fusion Proteins; Species Specificity; src Homology Domains

1998
Measles virus fusion protein is palmitoylated on transmembrane-intracytoplasmic cysteine residues which participate in cell fusion.
    Journal of virology, 1998, Volume: 72, Issue:10

    Topics: Acylation; Amino Acid Sequence; Animals; Base Sequence; Cell Fusion; Cell Line; Cell Membrane; Chlorocebus aethiops; Cysteine; Cytoplasm; DNA Primers; Dogs; Giant Cells; Humans; Measles virus; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Vero Cells; Viral Fusion Proteins

1998
Identification of a cytoplasmic region of CD20 required for its redistribution to a detergent-insoluble membrane compartment.
    Journal of immunology (Baltimore, Md. : 1950), 1998, Oct-01, Volume: 161, Issue:7

    Topics: Antibody Specificity; Antigens, CD20; Cell Compartmentation; Cell Membrane; Cysteine; Cytoplasm; Humans; Immune Sera; Membrane Proteins; Octoxynol; Palmitic Acid; Peptide Fragments; Protein Structure, Tertiary; Sequence Deletion; Solubility

1998
Nonenzymatic palmitoylation at Cys 3 causes extra-activation of the alpha-subunit of the stimulatory GTP-binding protein Gs.
    European journal of biochemistry, 1998, Oct-01, Volume: 257, Issue:1

    Topics: Acylation; Animals; Cell Line; Cysteine; GTP-Binding Protein alpha Subunits, Gs; Humans; Hydrolysis; Palmitic Acid; Recombinant Proteins; Tritium; Turkeys

1998
Palmitoylation of the rat mu opioid receptor.
    FEBS letters, 1998, Dec-11, Volume: 441, Issue:1

    Topics: Amino Acid Sequence; Animals; Binding Sites; CHO Cells; Cricetinae; Cysteine; Dithiothreitol; Hydroxylamine; Kinetics; Molecular Sequence Data; Morphine; Mutagenesis, Site-Directed; Palmitic Acid; Peptide Fragments; Protein Processing, Post-Translational; Rats; Receptors, Opioid, mu; Recombinant Proteins; Transfection

1998
A non-farnesylated Ha-Ras protein can be palmitoylated and trigger potent differentiation and transformation.
    The Journal of biological chemistry, 1999, Jan-15, Volume: 274, Issue:3

    Topics: 3T3 Cells; Animals; Cell Differentiation; Cell Membrane; Cysteine; DNA, Complementary; Guanosine Diphosphate; Guanosine Triphosphate; Mice; Palmitic Acid; PC12 Cells; Protein Prenylation; ras Proteins; Rats; Structure-Activity Relationship; Transfection

1999
Structural features of the C-terminal domain of bovine rhodopsin: a site-directed spin-labeling study.
    Biochemistry, 1999, Jun-22, Volume: 38, Issue:25

    Topics: Amino Acid Sequence; Animals; Antibodies, Monoclonal; Binding Sites; Binding Sites, Antibody; Cattle; Cysteine; Electron Spin Resonance Spectroscopy; Light; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Peptide Fragments; Rhodopsin; Spin Labels

1999
Single-cysteine substitution mutants at amino acid positions 306-321 in rhodopsin, the sequence between the cytoplasmic end of helix VII and the palmitoylation sites: sulfhydryl reactivity and transducin activation reveal a tertiary structure.
    Biochemistry, 1999, Jun-22, Volume: 38, Issue:25

    Topics: Amino Acid Sequence; Amino Acid Substitution; Animals; Binding Sites; Cattle; COS Cells; Cysteine; Cytoplasm; Disulfides; Leucine; Light; Molecular Sequence Data; Palmitic Acid; Peptide Fragments; Protein Structure, Secondary; Protein Structure, Tertiary; Pyridines; Rhodopsin; Spectrometry, Fluorescence; Sulfhydryl Reagents; Transducin; Tyrosine

1999
Palmitoylation of a conserved cysteine in the regulator of G protein signaling (RGS) domain modulates the GTPase-activating activity of RGS4 and RGS10.
    The Journal of biological chemistry, 1999, Dec-31, Volume: 274, Issue:53

    Topics: Animals; Base Sequence; Cysteine; DNA Primers; DNA, Complementary; GTP-Binding Proteins; GTPase-Activating Proteins; Mutagenesis, Site-Directed; Palmitic Acid; RGS Proteins; Spodoptera

1999
Palmitoylation of apolipoprotein B is required for proper intracellular sorting and transport of cholesteroyl esters and triglycerides.
    Molecular biology of the cell, 2000, Volume: 11, Issue:2

    Topics: Animals; Apolipoproteins B; Biological Transport; Cholesterol Esters; Chromatography, Thin Layer; Cysteine; Endoplasmic Reticulum; Fluorescent Antibody Technique, Indirect; Golgi Apparatus; Humans; Hydroxylamine; Lipids; Lipoproteins, LDL; Mutagenesis, Site-Directed; Palmitic Acid; Protein Processing, Post-Translational; Rats; Sequence Deletion; Structure-Activity Relationship; Transfection; Triglycerides; Tumor Cells, Cultured

2000
Dual lipid modification motifs in G(alpha) and G(gamma) subunits are required for full activity of the pheromone response pathway in Saccharomyces cerevisiae.
    Molecular biology of the cell, 2000, Volume: 11, Issue:3

    Topics: Amino Acid Motifs; Animals; Cell Membrane; Cells, Cultured; Cysteine; Green Fluorescent Proteins; GTP-Binding Protein alpha Subunits; GTP-Binding Protein alpha Subunits, Gq-G11; GTP-Binding Protein gamma Subunits; Heterotrimeric GTP-Binding Proteins; Insecta; Luminescent Proteins; Palmitic Acid; Pheromones; Saccharomyces cerevisiae; Saccharomyces cerevisiae Proteins

2000
Cysteine 3 is not the site of in vitro palmitoylation on G(salpha).
    Biochemical and biophysical research communications, 2000, Apr-02, Volume: 270, Issue:1

    Topics: Acylation; Cell-Free System; Cysteine; GTP-Binding Protein alpha Subunits, Gs; Guanosine 5'-O-(3-Thiotriphosphate); Guanosine Diphosphate; Mutation; Palmitic Acid; Palmitoyl Coenzyme A; Protein Conformation; Protein Processing, Post-Translational

2000
Galpha 13 requires palmitoylation for plasma membrane localization, Rho-dependent signaling, and promotion of p115-RhoGEF membrane binding.
    The Journal of biological chemistry, 2000, May-19, Volume: 275, Issue:20

    Topics: Amino Acid Sequence; Amino Acid Substitution; Animals; Cell Line; Cell Membrane; COS Cells; Cysteine; DNA-Binding Proteins; GTP-Binding Protein alpha Subunits, G12-G13; Guanine Nucleotide Exchange Factors; Heterotrimeric GTP-Binding Proteins; Humans; Luciferases; Molecular Sequence Data; Mutagenesis, Site-Directed; Nuclear Proteins; Palmitic Acid; Protein Processing, Post-Translational; Rats; Recombinant Proteins; rho GTP-Binding Proteins; Rho Guanine Nucleotide Exchange Factors; Sequence Alignment; Serum Response Factor; Signal Transduction; Transcription Factors; Transcription, Genetic; Transfection

2000
A proline-rich region and nearby cysteine residues target XLalphas to the Golgi complex region.
    Molecular biology of the cell, 2000, Volume: 11, Issue:4

    Topics: Alternative Splicing; Amino Acid Motifs; Amino Acid Sequence; Animals; Cell Line; Chromogranins; COS Cells; Cysteine; Golgi Apparatus; Green Fluorescent Proteins; GTP-Binding Protein alpha Subunits, Gs; Heterotrimeric GTP-Binding Proteins; Humans; Immunoblotting; Intracellular Membranes; Luminescent Proteins; Membrane Proteins; Microscopy, Confocal; Microscopy, Fluorescence; Molecular Sequence Data; Nerve Tissue Proteins; Palmitic Acid; PC12 Cells; Proline; Rats; Recombinant Fusion Proteins

2000
Alkylation of cysteine-containing peptides to mimic palmitoylation.
    The journal of peptide research : official journal of the American Peptide Society, 2000, Volume: 55, Issue:2

    Topics: Alkylation; Amino Acid Sequence; Cysteine; Molecular Mimicry; Molecular Sequence Data; Palmitic Acid; Peptides; Protein Processing, Post-Translational

2000
Acylation of Galpha(13) is important for its interaction with thrombin receptor, transforming activity and actin stress fiber formation.
    FEBS letters, 2000, Jul-28, Volume: 478, Issue:1-2

    Topics: Actins; Acylation; Amino Acid Sequence; Amino Acid Substitution; Animals; Binding Sites; Cell Line; Cell Membrane; Cell Transformation, Neoplastic; Cysteine; Cytoskeleton; Guanosine 5'-O-(3-Thiotriphosphate); Heterotrimeric GTP-Binding Proteins; Mice; Molecular Sequence Data; Mutation; Palmitic Acid; Protein Binding; Rats; Receptor, PAR-1; Receptors, Thrombin; rho GTP-Binding Proteins; Signal Transduction; Transfection; Tumor Stem Cell Assay

2000
Localization and targeting of SCG10 to the trans-Golgi apparatus and growth cone vesicles.
    The European journal of neuroscience, 2000, Volume: 12, Issue:7

    Topics: Animals; Calcium-Binding Proteins; Carrier Proteins; Cysteine; Fluorescent Antibody Technique; Gene Deletion; Golgi Apparatus; Growth Cones; Intracellular Membranes; Intracellular Signaling Peptides and Proteins; Membrane Proteins; Mice; Mice, Inbred Strains; Microscopy, Immunoelectron; Microtubule Proteins; Mutagenesis; Nerve Growth Factors; Nerve Tissue Proteins; Palmitic Acid; PC12 Cells; Protein Sorting Signals; Protein Structure, Tertiary; Rats; Stathmin; Subcellular Fractions; Synaptophysin; Synaptosomal-Associated Protein 25; Transfection

2000
Dynamic palmitoylation of lymphoma proprotein convertase prolongs its half-life, but is not essential for trans-Golgi network localization.
    The Biochemical journal, 2000, Dec-15, Volume: 352 Pt 3

    Topics: Amino Acid Substitution; Brefeldin A; Cerulenin; Cycloheximide; Cysteine; Cytosol; Enzyme Stability; Exocytosis; Fluorescent Antibody Technique, Indirect; Half-Life; Lymphoma; Membrane Microdomains; Monensin; Mutation; Palmitic Acid; Protein Processing, Post-Translational; Protein Sorting Signals; Protein Structure, Tertiary; Protein Transport; Serine Endopeptidases; Subtilisins; trans-Golgi Network; Tunicamycin

2000
Epstein-Barr virus latent-infection membrane proteins are palmitoylated and raft-associated: protein 1 binds to the cytoskeleton through TNF receptor cytoplasmic factors.
    Proceedings of the National Academy of Sciences of the United States of America, 2001, Apr-10, Volume: 98, Issue:8

    Topics: Cell Line, Transformed; Cysteine; Cytoskeleton; Enzyme Activation; Herpesvirus 4, Human; Humans; JNK Mitogen-Activated Protein Kinases; Lipid Metabolism; Mitogen-Activated Protein Kinases; NF-kappa B; Palmitic Acid; Protein Binding; Protein Isoforms; Receptors, Tumor Necrosis Factor; Signal Transduction; Viral Matrix Proteins

2001
The sites for fatty acylation, phosphorylation and intermolecular disulphide bond formation of influenza C virus CM2 protein.
    The Journal of general virology, 2001, Volume: 82, Issue:Pt 5

    Topics: Animals; Binding Sites; Biological Transport; Cell Membrane; Centrifugation, Density Gradient; Chlorocebus aethiops; COS Cells; Cross-Linking Reagents; Cysteine; Disulfides; Gammainfluenzavirus; Humans; Palmitic Acid; Phosphorylation; Sucrose; Viral Matrix Proteins

2001
Palmitoylation-dependent control of degradation, life span, and membrane expression of the CCR5 receptor.
    The Journal of biological chemistry, 2001, Aug-24, Volume: 276, Issue:34

    Topics: Amino Acid Sequence; Cell Line; Cysteine; Flow Cytometry; Half-Life; Humans; Hydrolysis; Membrane Proteins; Molecular Sequence Data; Palmitic Acid; Receptors, CCR5; Sequence Homology, Amino Acid

2001
Primary sequence requirements for S-acylation of beta(2)-adrenergic receptor peptides.
    FEBS letters, 2001, Jun-15, Volume: 499, Issue:1-2

    Topics: Acylation; Amino Acid Sequence; Amino Acids; Cysteine; Hydrogen-Ion Concentration; Kinetics; Palmitic Acid; Peptide Fragments; Protein Processing, Post-Translational; Receptors, Adrenergic, beta-2

2001
Palmitoylation of the vasopressin V1a receptor reveals different conformational requirements for signaling, agonist-induced receptor phosphorylation, and sequestration.
    The Journal of biological chemistry, 2001, Oct-12, Volume: 276, Issue:41

    Topics: Amino Acid Sequence; Animals; Base Sequence; Cell Line; CHO Cells; Cricetinae; Cysteine; DNA Primers; Humans; Molecular Sequence Data; Palmitic Acid; Phosphorylation; Protein Conformation; Receptors, Vasopressin; Sequence Homology, Amino Acid; Signal Transduction

2001
The juxtamembrane lysine and arginine residues of surfactant protein C precursor influence palmitoylation via effects on trafficking.
    American journal of respiratory cell and molecular biology, 2001, Volume: 25, Issue:2

    Topics: Amino Acid Sequence; Amino Acid Substitution; Animals; Arginine; Base Sequence; Biological Transport, Active; Brefeldin A; CHO Cells; Cricetinae; Cysteine; DNA Primers; Endoplasmic Reticulum; Golgi Apparatus; Humans; Lysine; Molecular Sequence Data; Mutation; Palmitic Acid; Peptides; Pulmonary Surfactant-Associated Protein C; Pulmonary Surfactants; Recombinant Proteins; Subcellular Fractions

2001
Enrichment of G-protein palmitoyltransferase activity in low density membranes: in vitro reconstitution of Galphai to these domains requires palmitoyltransferase activity.
    The Journal of biological chemistry, 2001, Nov-16, Volume: 276, Issue:46

    Topics: Acyltransferases; Blotting, Western; Caveolin 1; Caveolins; Cell Line; Cell Membrane; Cyclodextrins; Cysteine; Detergents; Humans; Immunoblotting; Membrane Microdomains; Mutation; Palmitic Acid; Protein Binding; Protein Structure, Tertiary; Recombinant Proteins; Signal Transduction; Tumor Cells, Cultured

2001
C-terminal domain of the Epstein-Barr virus LMP2A membrane protein contains a clustering signal.
    Journal of virology, 2001, Volume: 75, Issue:22

    Topics: Amino Acid Sequence; Cysteine; Membrane Microdomains; Membrane Proteins; Molecular Sequence Data; Octoxynol; Palmitic Acid; Viral Matrix Proteins

2001
The 5-hydroxytryptamine(4a) receptor is palmitoylated at two different sites, and acylation is critically involved in regulation of receptor constitutive activity.
    The Journal of biological chemistry, 2002, Jan-25, Volume: 277, Issue:4

    Topics: Acylation; Amino Acid Sequence; Animals; Binding Sites; Binding, Competitive; Cell Line; Cell Membrane; COS Cells; Cyclic AMP; Cysteine; DNA; Dose-Response Relationship, Drug; Guanosine 5'-O-(3-Thiotriphosphate); Immunohistochemistry; Insecta; Models, Biological; Molecular Sequence Data; Mutagenesis, Site-Directed; Mutation; Palmitic Acid; Palmitic Acids; Precipitin Tests; Protein Binding; Protein Structure, Tertiary; Receptors, Serotonin; Receptors, Serotonin, 5-HT4; Recombinant Proteins; Sequence Homology, Amino Acid; Serine; Signal Transduction; Time Factors; Transfection

2002
Intracellular trafficking of the UL11 tegument protein of herpes simplex virus type 1.
    Journal of virology, 2001, Volume: 75, Issue:24

    Topics: Biological Transport; Cell Membrane; Cysteine; Golgi Apparatus; Humans; Membrane Proteins; Palmitic Acid; Phosphorylation; Simplexvirus; Viral Structural Proteins

2001
Cholesteryl ester is transported from caveolae to internal membranes as part of a caveolin-annexin II lipid-protein complex.
    The Journal of biological chemistry, 2002, Feb-15, Volume: 277, Issue:7

    Topics: Animals; Annexin A2; Biological Transport; Caveolae; Caveolin 1; Caveolins; Cell Line; Cell Membrane; CHO Cells; Cholesterol Esters; Cricetinae; Cysteine; Cytosol; Electrophoresis, Polyacrylamide Gel; Gas Chromatography-Mass Spectrometry; Humans; Immunoblotting; Immunoglobulin G; Lipid Metabolism; Lipoproteins, LDL; Mice; Mutation; Palmitic Acid; Precipitin Tests; Protein Binding; Silver Staining; Temperature; Time Factors; Transfection

2002
Differential effect of brefeldin A on the palmitoylation of surfactant protein C proprotein mutants.
    Biochemical and biophysical research communications, 2002, Jan-11, Volume: 290, Issue:1

    Topics: Alanine; Animals; Antioxidants; Brefeldin A; Cell Membrane; Cell Nucleus; CHO Cells; Cricetinae; Cysteine; Immunohistochemistry; Kinetics; Leucine; Masoprocol; Monensin; Mutation; Nocodazole; Palmitic Acid; Palmitic Acids; Peptides; Proline; Protein Processing, Post-Translational; Protein Structure, Tertiary; Protein Synthesis Inhibitors; Pulmonary Surfactants; Recombinant Proteins; Transfection

2002
Structural requirements for palmitoylation of surfactant protein C precursor.
    The Biochemical journal, 2002, Feb-01, Volume: 361, Issue:Pt 3

    Topics: Amino Acid Sequence; Animals; Cell Membrane; CHO Cells; Cricetinae; Cysteine; Cystine; Humans; Hydroxylamine; Immunohistochemistry; Molecular Sequence Data; Mutagenesis, Site-Directed; Mutation; Palmitic Acid; Peptides; Protein Structure, Tertiary; Pulmonary Surfactant-Associated Protein C; Pulmonary Surfactants; Transfection

2002
Mechanisms of regulation of phospholipase D1 and D2 by the heterotrimeric G proteins G13 and Gq.
    The Journal of biological chemistry, 2002, Apr-05, Volume: 277, Issue:14

    Topics: Animals; Brain; Clostridium botulinum; COS Cells; Cysteine; DNA-Binding Proteins; Enzyme Activation; Genes, Dominant; GTP-Binding Protein alpha Subunits, G12-G13; GTP-Binding Protein alpha Subunits, Gq-G11; Heterotrimeric GTP-Binding Proteins; Mutation; Palmitic Acid; Phorbol Esters; Phospholipase D; Phosphorylation; Plasmids; Protein Binding; Protein Kinase C; Protein Processing, Post-Translational; Rats; rhoA GTP-Binding Protein; Serine; Threonine; Transfection

2002
Regulation of RGS3 and RGS10 palmitoylation by GnRH.
    Endocrinology, 2002, Volume: 143, Issue:4

    Topics: Animals; Antineoplastic Agents, Hormonal; Blotting, Western; Buserelin; Cysteine; Electrophoresis, Polyacrylamide Gel; Gene Expression Regulation; GTP-Binding Proteins; GTPase-Activating Proteins; Humans; Kinetics; Mutagenesis, Site-Directed; Palmitic Acid; Rats; Receptors, LHRH; Repressor Proteins; Reverse Transcriptase Polymerase Chain Reaction; RGS Proteins; Signal Transduction; Sodium Fluoride

2002
Differential stability of tetraspanin/tetraspanin interactions: role of palmitoylation.
    FEBS letters, 2002, Apr-10, Volume: 516, Issue:1-3

    Topics: Animals; Antigens, CD; Antigens, Differentiation, T-Lymphocyte; Cell Line; CHO Cells; Cricetinae; Cysteine; Detergents; Drug Stability; Humans; In Vitro Techniques; Macromolecular Substances; Membrane Glycoproteins; Membrane Proteins; Mutagenesis, Site-Directed; Palmitic Acid; Recombinant Proteins; Tetraspanin 25; Tetraspanin 28; Tetraspanin 29

2002
Spatial relationship between the prodan site, Trp-214, and Cys-34 residues in human serum albumin and loss of structure through incremental unfolding.
    Biochemistry, 2002, Jun-11, Volume: 41, Issue:23

    Topics: 2-Naphthylamine; Binding Sites; Binding, Competitive; Cysteine; Energy Transfer; Fluorescent Dyes; Hot Temperature; Humans; Palmitic Acid; Protein Conformation; Protein Denaturation; Protein Folding; Serum Albumin; Spectrometry, Fluorescence; Tryptophan; Warfarin

2002
Expression of the palmitoylation-deficient CD151 weakens the association of alpha 3 beta 1 integrin with the tetraspanin-enriched microdomains and affects integrin-dependent signaling.
    The Journal of biological chemistry, 2002, Oct-04, Volume: 277, Issue:40

    Topics: Animals; Antigens, CD; Binding Sites; Cell Adhesion; Cell Line; Cysteine; Extracellular Matrix; Integrin alpha3beta1; Membrane Microdomains; Membrane Proteins; Mutagenesis, Site-Directed; Palmitic Acid; Phosphorylation; Protein Serine-Threonine Kinases; Proto-Oncogene Proteins; Proto-Oncogene Proteins c-akt; Rats; Recombinant Proteins; Sequence Deletion; Signal Transduction; Tetraspanin 24; Transfection

2002
The position of cysteine relative to the transmembrane domain is critical for palmitoylation of H1, the major subunit of the human asialoglycoprotein receptor.
    The Journal of biological chemistry, 2002, Dec-06, Volume: 277, Issue:49

    Topics: Alanine; Amino Acid Motifs; Amino Acid Sequence; Animals; Asialoglycoprotein Receptor; Cell Membrane; COS Cells; Cysteine; Cytoplasm; DNA, Complementary; Humans; Molecular Sequence Data; Mutation; Palmitic Acid; Palmitic Acids; Plasmids; Protein Binding; Protein Structure, Tertiary; Sequence Homology, Amino Acid; Transfection

2002
The yeast DHHC cysteine-rich domain protein Akr1p is a palmitoyl transferase.
    The Journal of cell biology, 2002, Oct-14, Volume: 159, Issue:1

    Topics: Acyltransferases; Animals; Ankyrin Repeat; Cysteine; Humans; Palmitic Acid; Palmitoyl Coenzyme A; Protein Structure, Tertiary; Saccharomyces cerevisiae; Saccharomyces cerevisiae Proteins; Transferases

2002
Subtype-specific regulation of receptor internalization and recycling by the carboxyl-terminal domains of the human A1 and rat A3 adenosine receptors: consequences for agonist-stimulated translocation of arrestin3.
    Biochemistry, 2002, Dec-17, Volume: 41, Issue:50

    Topics: Alanine; Animals; Arrestins; beta-Adrenergic Receptor Kinases; Cell Line; CHO Cells; Cricetinae; Cyclic AMP-Dependent Protein Kinases; Cysteine; Endosomes; Green Fluorescent Proteins; Humans; Kinetics; Luminescent Proteins; Mutagenesis, Site-Directed; Palmitic Acid; Phosphorylation; Protein Structure, Tertiary; Protein Transport; Purinergic P1 Receptor Agonists; Rats; Receptor, Adenosine A3; Receptors, Purinergic P1; Recombinant Fusion Proteins; Transfection

2002
Palmitoylation of the human prostacyclin receptor. Functional implications of palmitoylation and isoprenylation.
    The Journal of biological chemistry, 2003, Feb-28, Volume: 278, Issue:9

    Topics: Amino Acid Motifs; Amino Acid Sequence; Blotting, Western; Calcium; Cell Line; Cyclic AMP; Cysteine; Dose-Response Relationship, Drug; Enzyme Inhibitors; Gene Deletion; Humans; Ligands; Lipids; Models, Biological; Molecular Sequence Data; Mutagenesis, Site-Directed; Mutation; Palmitic Acid; Protein Binding; Protein Kinase C; Protein Prenylation; Protein Structure, Tertiary; Radioligand Assay; Receptors, Epoprostenol; Receptors, Prostaglandin; Serine; Signal Transduction; Time Factors; Transfection

2003
Lipid raft distribution of CD4 depends on its palmitoylation and association with Lck, and evidence for CD4-induced lipid raft aggregation as an additional mechanism to enhance CD3 signaling.
    Journal of immunology (Baltimore, Md. : 1950), 2003, Jan-15, Volume: 170, Issue:2

    Topics: Amino Acid Motifs; Antibodies, Monoclonal; Binding Sites; CD3 Complex; CD4 Antigens; CD8 Antigens; Cell Membrane; Cross-Linking Reagents; Cysteine; Gene Targeting; Humans; Jurkat Cells; Lymphocyte Specific Protein Tyrosine Kinase p56(lck); Membrane Microdomains; Muromonab-CD3; Mutagenesis, Site-Directed; Palmitic Acid; Phosphorylation; Plasmids; Sequence Deletion; Signal Transduction; T-Lymphocytes; Tyrosine

2003
Palmitoylated peptides from the cysteine-rich domain of SNAP-23 cause membrane fusion depending on peptide length, position of cysteines, and extent of palmitoylation.
    The Journal of biological chemistry, 2003, Apr-11, Volume: 278, Issue:15

    Topics: Amino Acid Sequence; Animals; Carrier Proteins; Conserved Sequence; Cysteine; Exocytosis; Humans; Kinetics; Membrane Fusion; Mice; Molecular Sequence Data; Palmitic Acid; Peptide Fragments; Qb-SNARE Proteins; Qc-SNARE Proteins; Sequence Alignment; Sequence Homology, Amino Acid; Structure-Activity Relationship

2003
Palmitoylation of phospholipid scramblase 1 controls its distribution between nucleus and plasma membrane.
    Biochemistry, 2003, Feb-11, Volume: 42, Issue:5

    Topics: Active Transport, Cell Nucleus; Animals; Antigens; Carrier Proteins; Cell Line; Cell Membrane; Cell Nucleus; Cysteine; Cytokines; Humans; Membrane Proteins; Mice; Mutagenesis, Site-Directed; Palmitates; Palmitic Acid; Phospholipid Transfer Proteins; Phospholipids; Transfection; Tumor Cells, Cultured

2003
Assembly and secretion of very low density lipoproteins containing apolipoprotein B48 in transfected McA-RH7777 cells. Lack of evidence that palmitoylation of apolipoprotein B48 is required for lipoprotein secretion.
    The Journal of biological chemistry, 2003, Apr-18, Volume: 278, Issue:16

    Topics: Animals; Antibodies, Monoclonal; Apolipoprotein B-48; Apolipoproteins B; Cell Line; Cysteine; Dose-Response Relationship, Drug; Endoplasmic Reticulum; Golgi Apparatus; Humans; Immunohistochemistry; Lipoproteins; Lipoproteins, VLDL; Microscopy, Fluorescence; Mutagenesis, Site-Directed; Mutation; Palmitates; Palmitic Acid; Plasmids; Protein Biosynthesis; Protein Structure, Tertiary; Protein Transport; Rats; Serine; Time Factors; Transfection; Ultracentrifugation

2003
Partial rescue of functional interactions of a nonpalmitoylated mutant of the G-protein G alpha s by fusion to the beta-adrenergic receptor.
    Biochemistry, 2003, Mar-11, Volume: 42, Issue:9

    Topics: Adenylyl Cyclases; Alanine; Animals; Cell Membrane; Cysteine; Gene Expression Regulation; GTP-Binding Protein alpha Subunits, Gs; Humans; Hydroxylamine; Intracellular Fluid; Mice; Mutagenesis, Site-Directed; Palmitic Acid; Protein Binding; Protein Subunits; Protein Transport; Rats; Receptors, Adrenergic, beta-2; Recombinant Fusion Proteins; Transfection; Tumor Cells, Cultured

2003
Palmitoylation regulates regulator of G-protein signaling (RGS) 16 function. II. Palmitoylation of a cysteine residue in the RGS box is critical for RGS16 GTPase accelerating activity and regulation of Gi-coupled signalling.
    The Journal of biological chemistry, 2003, May-23, Volume: 278, Issue:21

    Topics: Adenylyl Cyclase Inhibitors; Animals; Binding Sites; Caveolin 1; Caveolins; Cell Line; Cell Membrane; COS Cells; Cysteine; Escherichia coli; GTP Phosphohydrolases; GTP-Binding Protein alpha Subunits, Gi-Go; GTPase-Activating Proteins; Humans; Membrane Lipids; Mice; Models, Molecular; Mutagenesis; Palmitic Acid; Pertussis Toxin; Proteins; Rats; Recombinant Fusion Proteins; RGS Proteins; Signal Transduction; Somatostatin; Structure-Activity Relationship; Transfection

2003
Palmitoylation regulates regulators of G-protein signaling (RGS) 16 function. I. Mutation of amino-terminal cysteine residues on RGS16 prevents its targeting to lipid rafts and palmitoylation of an internal cysteine residue.
    The Journal of biological chemistry, 2003, May-23, Volume: 278, Issue:21

    Topics: Animals; beta-Cyclodextrins; Caveolin 1; Caveolins; Cell Line; Cell Membrane; COS Cells; Cyclodextrins; Cysteine; Electrophoresis, Polyacrylamide Gel; Enzyme Activation; Glutathione Transferase; GTP Phosphohydrolases; GTP-Binding Protein alpha Subunits, Gi-Go; Guanosine Triphosphate; Heterotrimeric GTP-Binding Proteins; Humans; Immunoblotting; Liver; Male; Membrane Lipids; Mice; Microscopy, Immunoelectron; Models, Molecular; Molecular Structure; Mutagenesis; Palmitic Acid; Proteins; Rats; Receptors, Serotonin; Receptors, Serotonin, 5-HT1; Recombinant Fusion Proteins; RGS Proteins; Serotonin; Transfection

2003
Distinct rates of palmitate turnover on membrane-bound cellular and oncogenic H-ras.
    The Journal of biological chemistry, 2003, May-23, Volume: 278, Issue:21

    Topics: 3T3 Cells; Acylation; Animals; Caveolin 1; Caveolins; Cell Membrane; Cysteine; Fibroblasts; Fluorescent Antibody Technique; Genes, ras; Guanosine Diphosphate; Guanosine Triphosphate; Half-Life; Hydrogen-Ion Concentration; Kinetics; Mice; Palmitic Acid; Palmitoyl-CoA Hydrolase; Proto-Oncogene Proteins p21(ras); Sonication; Transfection; Tritium

2003
Palmitoylation of carboxypeptidase D. Implications for intracellular trafficking.
    The Journal of biological chemistry, 2003, Mar-14, Volume: 278, Issue:11

    Topics: 3T3 Cells; Amino Acid Sequence; Animals; Biological Transport; Carboxypeptidases; Cloning, Molecular; Cysteine; Cystine; Golgi Apparatus; Humans; Mice; Microscopy, Fluorescence; Molecular Sequence Data; Mutation; Octoxynol; Palmitic Acid; Protein Binding; Protein Structure, Tertiary; Sequence Homology, Amino Acid; Time Factors; Transfection

2003
Palmitoylation sites and processing of synaptotagmin I, the putative calcium sensor for neurosecretion.
    FEBS letters, 2003, Jun-05, Volume: 544, Issue:1-3

    Topics: Amino Acid Sequence; Animals; Biological Transport; Calcium; Calcium-Binding Proteins; Cell Line; Cysteine; DNA; Electrophoresis, Polyacrylamide Gel; Fatty Acids; Fluorescent Antibody Technique, Indirect; Glycosylation; Golgi Apparatus; Membrane Glycoproteins; Membrane Proteins; Molecular Sequence Data; Mutation; Nerve Tissue Proteins; Palmitic Acid; PC12 Cells; Precipitin Tests; Protein Binding; Rats; Sequence Homology, Amino Acid; Synaptosomal-Associated Protein 25; Synaptotagmin I; Synaptotagmins; Time Factors; Tumor Cells, Cultured

2003
Palmitoylation of the V2 vasopressin receptor carboxyl tail enhances beta-arrestin recruitment leading to efficient receptor endocytosis and ERK1/2 activation.
    The Journal of biological chemistry, 2003, Oct-17, Volume: 278, Issue:42

    Topics: Animals; Arrestins; beta-Arrestins; Cell Line; Cyclic AMP; Cysteine; Dose-Response Relationship, Drug; Endocytosis; Genes, Dominant; Genetic Vectors; Green Fluorescent Proteins; Humans; Immunoblotting; Luminescent Proteins; MAP Kinase Signaling System; Mitogen-Activated Protein Kinase 1; Mitogen-Activated Protein Kinase 3; Mitogen-Activated Protein Kinases; Mutagenesis, Site-Directed; Mutation; Palmitic Acid; Phosphorylation; Plasmids; Precipitin Tests; Protein Structure, Tertiary; Rats; Receptors, Vasopressin; Time Factors

2003
Multiple determinants for rapid agonist-induced internalization of a nonmammalian gonadotropin-releasing hormone receptor: a putative palmitoylation site and threonine doublet within the carboxyl-terminal tail Are critical.
    Endocrinology, 2003, Volume: 144, Issue:9

    Topics: Amino Acid Sequence; Animals; Arrestins; beta-Arrestins; Caveolae; Caveolin 1; Caveolins; Chickens; Clathrin-Coated Vesicles; COS Cells; Cysteine; Dynamins; Endocytosis; Gonadotropin-Releasing Hormone; Humans; Inositol Phosphates; Kidney; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Protein Structure, Tertiary; Receptors, LHRH; Threonine; Transfection

2003
COENZYME A-INDUCED INHIBITION OF CONVERSION OF PALMITIC ACID TO KETONE BODIES IN RAT LIVER HOMOGENATES.
    Proceedings of the Society for Experimental Biology and Medicine. Society for Experimental Biology and Medicine (New York, N.Y.), 1964, Volume: 115

    Topics: Adenosine Triphosphate; Antimetabolites; Caprylates; Coenzyme A; Cysteine; Cytochromes; Ergothioneine; Glutathione; Ketone Bodies; Lipid Metabolism; Liver; Mercaptoethylamines; Palmitic Acid; Pharmacology; Rats; Research

1964
The 5-hydroxytryptamine(1A) receptor is stably palmitoylated, and acylation is critical for communication of receptor with Gi protein.
    The Journal of biological chemistry, 2004, Jan-30, Volume: 279, Issue:5

    Topics: Amino Acid Sequence; Animals; Baculoviridae; Cell Line; CHO Cells; Cricetinae; Cyclic AMP; Cycloheximide; Cysteine; Cytoplasm; DNA; Dose-Response Relationship, Drug; Epitopes; Esters; Fatty Acids; Fluorescent Antibody Technique, Indirect; GTP-Binding Protein alpha Subunits, Gi-Go; Guanosine 5'-O-(3-Thiotriphosphate); Hydroxylamine; Insecta; Mice; Mitogen-Activated Protein Kinases; Models, Biological; Molecular Sequence Data; Mutagenesis, Site-Directed; Mutation; NIH 3T3 Cells; Palmitic Acid; Palmitic Acids; Protein Structure, Tertiary; Protein Synthesis Inhibitors; Receptor, Serotonin, 5-HT1A; Sequence Homology, Amino Acid; Signal Transduction

2004
CD81 associates with 14-3-3 in a redox-regulated palmitoylation-dependent manner.
    The Journal of biological chemistry, 2004, May-07, Volume: 279, Issue:19

    Topics: 14-3-3 Proteins; Amino Acid Motifs; Amino Acid Sequence; Animals; Antigens, CD; Blotting, Western; Cell Division; Cloning, Molecular; COS Cells; Cysteine; Cytoplasm; Electrophoresis, Polyacrylamide Gel; Hepatocytes; Humans; Hydrogen Peroxide; Jurkat Cells; Mice; Molecular Sequence Data; NIH 3T3 Cells; Oxidation-Reduction; Oxidative Stress; Oxygen; Palmitic Acid; Plasmids; Precipitin Tests; Protein Binding; Protein Isoforms; Protein Structure, Tertiary; Sequence Homology, Amino Acid; Signal Transduction; Tetraspanin 28; Transfection; Tyrosine 3-Monooxygenase

2004
S-palmitoylation modulates human estrogen receptor-alpha functions.
    Biochemical and biophysical research communications, 2004, Apr-09, Volume: 316, Issue:3

    Topics: Alanine; Blotting, Western; Cell Membrane; Cysteine; Enzyme Activation; Estrogen Receptor alpha; Gene Deletion; HeLa Cells; Humans; Hypoglycemic Agents; Immunoblotting; Luciferases; Mitogen-Activated Protein Kinases; Mutagenesis, Site-Directed; Mutation; Palmitic Acid; Plasmids; Precipitin Tests; Protein Structure, Tertiary; Receptors, Estrogen; Signal Transduction; Time Factors; Transcriptional Activation; Transfection

2004
Palmitoylation regulates the clustering and cell surface stability of GABAA receptors.
    Molecular and cellular neurosciences, 2004, Volume: 26, Issue:2

    Topics: Animals; COS Cells; Cysteine; gamma-Aminobutyric Acid; Hippocampus; Neural Inhibition; Neurons; Palmitic Acid; Protein Structure, Tertiary; Protein Subunits; Rats; Receptor Aggregation; Receptors, GABA-A; Synaptic Membranes; Synaptic Transmission

2004
CLIPR-59 is a lipid raft-associated protein containing a cytoskeleton-associated protein glycine-rich domain (CAP-Gly) that perturbs microtubule dynamics.
    The Journal of biological chemistry, 2004, Sep-24, Volume: 279, Issue:39

    Topics: Amino Acid Sequence; Animals; Antibodies, Monoclonal; Blotting, Western; Cell Membrane; Cells, Cultured; Cysteine; Cytoskeleton; Detergents; Dose-Response Relationship, Drug; Glycine; Golgi Apparatus; Green Fluorescent Proteins; HeLa Cells; Humans; Luminescent Proteins; Membrane Microdomains; Mice; Microscopy, Confocal; Microscopy, Fluorescence; Microtubule-Associated Proteins; Microtubules; Molecular Sequence Data; Mutation; Nocodazole; Palmitic Acid; Plasmids; Point Mutation; Protein Structure, Tertiary; Subcellular Fractions; Transfection

2004
SMP-1, a member of a new family of small myristoylated proteins in kinetoplastid parasites, is targeted to the flagellum membrane in Leishmania.
    Molecular biology of the cell, 2004, Volume: 15, Issue:11

    Topics: Amino Acid Sequence; Animals; Cell Membrane; Cloning, Molecular; Cysteine; Cytoskeleton; Detergents; Epitopes; Fatty Acids; Fatty Acids, Monounsaturated; Flagella; Glycine; Immunoblotting; Ketoconazole; Kinetoplastida; Leishmania major; Lipid Metabolism; Membrane Proteins; Microscopy, Electron; Microscopy, Fluorescence; Molecular Sequence Data; Myristic Acid; Octoxynol; Palmitic Acid; Phylogeny; Polyethylene Glycols; Protein Structure, Tertiary; Sequence Homology, Amino Acid; Sphingolipids; Temperature; Tubulin

2004
The human SNARE protein Ykt6 mediates its own palmitoylation at C-terminal cysteine residues.
    The Biochemical journal, 2004, Dec-01, Volume: 384, Issue:Pt 2

    Topics: Amino Acid Sequence; Cell Line; Cysteine; Humans; Membrane Proteins; Molecular Sequence Data; Palmitic Acid; Peptides; Protein Structure, Tertiary; R-SNARE Proteins

2004
Palmitoylation of inducible nitric-oxide synthase at Cys-3 is required for proper intracellular traffic and nitric oxide synthesis.
    The Journal of biological chemistry, 2004, Dec-31, Volume: 279, Issue:53

    Topics: Amino Acid Sequence; Animals; Anti-Bacterial Agents; Antifungal Agents; Biological Transport; Boron Compounds; Brefeldin A; Cell Line; Cells, Cultured; Cloning, Molecular; COS Cells; Cysteine; Escherichia coli; Fluorescent Dyes; Golgi Apparatus; Green Fluorescent Proteins; Hydroxylamine; Lysine; Mice; Molecular Sequence Data; Monensin; Mutagenesis, Site-Directed; Mutation; Nitric Oxide; Nitric Oxide Synthase; Nitric Oxide Synthase Type II; Palmitic Acid; Proline; Protein Processing, Post-Translational; Recombinant Fusion Proteins; Recombinant Proteins; Serine; Time Factors; Transfection

2004
Evidence that palmitoylation of carboxyl terminus cysteine residues of the human luteinizing hormone receptor regulates postendocytic processing.
    Molecular endocrinology (Baltimore, Md.), 2005, Volume: 19, Issue:3

    Topics: Blotting, Western; Cell Line; Cell Membrane; Cysteine; Dose-Response Relationship, Drug; Endocytosis; Glycine; GTP-Binding Proteins; Humans; Immunoprecipitation; Kinetics; Ligands; Models, Biological; Mutagenesis, Site-Directed; Mutation; Palmitic Acid; Palmitic Acids; Plasmids; Protein Binding; Protein Structure, Tertiary; Receptors, LH; Time Factors; Transfection

2005
The SNARE proteins SNAP-25 and SNAP-23 display different affinities for lipid rafts in PC12 cells. Regulation by distinct cysteine-rich domains.
    The Journal of biological chemistry, 2005, Jan-14, Volume: 280, Issue:2

    Topics: Amino Acid Sequence; Animals; Binding Sites; Carrier Proteins; Cysteine; Green Fluorescent Proteins; Membrane Microdomains; Membrane Proteins; Mice; Molecular Sequence Data; Mutation; Nerve Tissue Proteins; Palmitic Acid; PC12 Cells; Phenylalanine; Protein Structure, Tertiary; Protein Transport; Qb-SNARE Proteins; Qc-SNARE Proteins; Rats; SNARE Proteins; Synaptosomal-Associated Protein 25; Vesicular Transport Proteins

2005
Cysteine-scanning mutagenesis of muscle carnitine palmitoyltransferase I reveals a single cysteine residue (Cys-305) is important for catalysis.
    The Journal of biological chemistry, 2005, Feb-11, Volume: 280, Issue:6

    Topics: Alanine; Amino Acid Sequence; Animals; Binding Sites; Blotting, Western; Carnitine; Carnitine O-Palmitoyltransferase; Catalysis; Cysteine; DNA Primers; Humans; Kinetics; Malonyl Coenzyme A; Models, Chemical; Molecular Sequence Data; Mutagenesis; Mutation; Myocardium; Palmitic Acid; Palmitoylcarnitine; Pichia; Protein Structure, Tertiary; Sequence Homology, Amino Acid; Serine

2005
Palmitoylated cysteine 192 is required for RhoB tumor-suppressive and apoptotic activities.
    The Journal of biological chemistry, 2005, May-13, Volume: 280, Issue:19

    Topics: Alanine; Amino Acid Sequence; Apoptosis; Blotting, Western; Cell Cycle Proteins; Cell Line; Cell Line, Tumor; Cell Proliferation; Coloring Agents; Cyclin-Dependent Kinase Inhibitor p21; Cysteine; DNA Primers; Genes, Tumor Suppressor; Glycine; Humans; In Situ Nick-End Labeling; Molecular Sequence Data; Mutagenesis, Site-Directed; Mutation; Palmitic Acid; Promoter Regions, Genetic; Protein Biosynthesis; Protein Prenylation; rhoA GTP-Binding Protein; rhoB GTP-Binding Protein; Sequence Homology, Amino Acid; Serine; Tetrazolium Salts; Thiazoles; Transcription Factor AP-1; Transcription, Genetic; Transfection; Transforming Growth Factor beta

2005
Carboxyl tail cysteine mutants of the thyrotropin-releasing hormone receptor type 1 exhibit constitutive signaling: role of palmitoylation.
    Molecular pharmacology, 2005, Volume: 68, Issue:1

    Topics: Animals; Cell Line; CHO Cells; Cricetinae; Cysteine; Female; Humans; Mutagenesis, Site-Directed; Palmitic Acid; Peptide Fragments; Receptors, Thyrotropin-Releasing Hormone; Signal Transduction; Xenopus laevis

2005
Enhanced shutoff of phototransduction in transgenic mice expressing palmitoylation-deficient rhodopsin.
    The Journal of biological chemistry, 2005, Jul-01, Volume: 280, Issue:26

    Topics: Amino Acid Sequence; Animals; Blotting, Western; Cysteine; Electrodes; Gene Library; Immunohistochemistry; Light; Mass Spectrometry; Mice; Mice, Transgenic; Models, Genetic; Models, Statistical; Molecular Sequence Data; Mutation; Palmitic Acid; Phosphorylation; Protein Processing, Post-Translational; Reactive Oxygen Species; Receptors, G-Protein-Coupled; Retina; Reverse Transcriptase Polymerase Chain Reaction; Rhodopsin; RNA; Time Factors

2005
Influence of administration route on tumor uptake and biodistribution of etoposide loaded solid lipid nanoparticles in Dalton's lymphoma tumor bearing mice.
    Journal of controlled release : official journal of the Controlled Release Society, 2005, Jul-20, Volume: 105, Issue:3

    Topics: Animals; Antineoplastic Agents, Phytogenic; Chelating Agents; Cysteine; Drug Carriers; Etoposide; Humans; Injections, Intraperitoneal; Injections, Intravenous; Injections, Subcutaneous; Liposomes; Lymphoma; Mice; Mice, Inbred BALB C; Microscopy, Electron, Scanning; Palmitic Acid; Particle Size; Pentetic Acid; Radionuclide Imaging; Radiopharmaceuticals; Tin Compounds; Tissue Distribution

2005
Palmitoylation at Cys574 is essential for MT1-MMP to promote cell migration.
    FASEB journal : official publication of the Federation of American Societies for Experimental Biology, 2005, Volume: 19, Issue:10

    Topics: Amino Acid Motifs; Animals; Caveolae; Cell Movement; Chlorocebus aethiops; CHO Cells; Clathrin; COS Cells; Cricetinae; Cysteine; Matrix Metalloproteinase 14; Matrix Metalloproteinases; Matrix Metalloproteinases, Membrane-Associated; Mice; Palmitic Acid; Protein Processing, Post-Translational

2005
Wild-type-like viral replication potential of human immunodeficiency virus type 1 envelope mutants lacking palmitoylation signals.
    Journal of virology, 2005, Volume: 79, Issue:13

    Topics: Amino Acid Sequence; Amino Acid Substitution; Base Sequence; Binding Sites; Cysteine; DNA Primers; Gene Products, env; HIV-1; Humans; Palmitic Acid; Plasmids; Reference Values; Sequence Deletion; Serine; Virus Replication

2005
Transforming activity of the Rho family GTPase, Wrch-1, a Wnt-regulated Cdc42 homolog, is dependent on a novel carboxyl-terminal palmitoylation motif.
    The Journal of biological chemistry, 2005, Sep-23, Volume: 280, Issue:38

    Topics: Amino Acid Motifs; Amino Acid Sequence; Animals; Biotin; Blotting, Western; cdc42 GTP-Binding Protein; Cell Adhesion; Cell Membrane; Cell Proliferation; Cysteine; Cytosol; Endosomes; Esters; Green Fluorescent Proteins; Mice; Microscopy, Fluorescence; Molecular Sequence Data; Mutagenesis, Site-Directed; Mutation; NIH 3T3 Cells; Palmitic Acid; Protein Binding; Protein Structure, Tertiary; Recombinant Proteins; rho GTP-Binding Proteins; Sequence Homology, Amino Acid; Signal Transduction; Transfection

2005
A novel palmitoyl acyl transferase controls surface protein palmitoylation and cytotoxicity in Giardia lamblia.
    Molecular microbiology, 2005, Volume: 58, Issue:4

    Topics: Acyltransferases; Amino Acid Motifs; Amino Acid Sequence; Animals; Antibodies, Protozoan; Antigens, Protozoan; Cell Membrane; Computational Biology; Conserved Sequence; Cysteine; Genome, Protozoan; Giardia lamblia; Molecular Sequence Data; Molecular Weight; Open Reading Frames; Palmitic Acid; Protein Processing, Post-Translational; Protozoan Proteins; RNA, Antisense

2005
Palmitoylation of the EGFR ligand Spitz by Rasp increases Spitz activity by restricting its diffusion.
    Developmental cell, 2006, Volume: 10, Issue:2

    Topics: Acyltransferases; Animals; Base Sequence; Biological Transport, Active; Cell Line; Cell Membrane; Cysteine; DNA; Drosophila; Drosophila Proteins; Epidermal Growth Factor; ErbB Receptors; Female; Genes, Insect; In Vitro Techniques; Ligands; Male; Membrane Proteins; Models, Biological; Mutagenesis, Site-Directed; Mutation; Ovary; Palmitic Acid; Recombinant Proteins; Transfection; Wings, Animal

2006
Two di-leucine motifs regulate trafficking of mucolipin-1 to lysosomes.
    Traffic (Copenhagen, Denmark), 2006, Volume: 7, Issue:3

    Topics: Alanine; Amino Acid Motifs; Amino Acid Sequence; Amino Acid Substitution; Cysteine; Cytosol; Endocytosis; Fluorescent Antibody Technique, Indirect; Green Fluorescent Proteins; HeLa Cells; Humans; Leucine; Lysosomes; Microscopy, Confocal; Models, Chemical; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Protein Structure, Tertiary; Protein Transport; Recombinant Proteins; Transient Receptor Potential Channels; TRPM Cation Channels

2006
Palmitoylation of huntingtin by HIP14 is essential for its trafficking and function.
    Nature neuroscience, 2006, Volume: 9, Issue:6

    Topics: Acyltransferases; Adaptor Proteins, Signal Transducing; Amino Acid Sequence; Animals; Animals, Newborn; Carrier Proteins; Cells, Cultured; Cerebral Cortex; Chlorocebus aethiops; COS Cells; Cysteine; Down-Regulation; Humans; Huntingtin Protein; Inclusion Bodies; Mice; Mice, Transgenic; Mutation; Nerve Tissue Proteins; Neurons; Nuclear Proteins; Palmitic Acid; Peptides; Protein Processing, Post-Translational; Protein Transport; Rats; Trinucleotide Repeat Expansion

2006
Palmitoylation determines the function of Vac8 at the yeast vacuole.
    Journal of cell science, 2006, Jun-15, Volume: 119, Issue:Pt 12

    Topics: Cell Membrane; Cysteine; Lipoproteins; Membrane Proteins; Mutation; Palmitic Acid; Protein Processing, Post-Translational; Saccharomyces cerevisiae; Saccharomyces cerevisiae Proteins; src Homology Domains; Vacuoles; Vesicular Transport Proteins

2006
Unique self-palmitoylation activity of the transport protein particle component Bet3: a mechanism required for protein stability.
    Proceedings of the National Academy of Sciences of the United States of America, 2006, Aug-22, Volume: 103, Issue:34

    Topics: Animals; Arginine; Cell Line; Cricetinae; Cysteine; Humans; Models, Molecular; Palmitic Acid; Palmitoyl Coenzyme A; Protein Binding; Protein Denaturation; Protein Structure, Tertiary; Temperature; Vesicular Transport Proteins

2006
Palmitoylation and its effect on the GTPase-activating activity and conformation of RGS2.
    The international journal of biochemistry & cell biology, 2006, Volume: 38, Issue:12

    Topics: Circular Dichroism; Cysteine; Fluorescence; GTP-Binding Protein alpha Subunits, Gq-G11; GTPase-Activating Proteins; Mutagenesis, Site-Directed; Mutant Proteins; Palmitic Acid; Protein Processing, Post-Translational; Protein Structure, Secondary; RGS Proteins; Solutions; Tryptophan

2006
A live cell, image-based approach to understanding the enzymology and pharmacology of 2-bromopalmitate and palmitoylation.
    Methods in enzymology, 2006, Volume: 414

    Topics: Amino Acid Motifs; Amino Acid Sequence; Bacterial Proteins; Cysteine; Cytoplasm; Green Fluorescent Proteins; Humans; Image Processing, Computer-Assisted; Inhibitory Concentration 50; Lipids; Luminescent Proteins; Microscopy, Fluorescence; Models, Chemical; Molecular Sequence Data; Palmitates; Palmitic Acid; Signal Transduction

2006
Palmitoylation of the cysteine-rich endodomain of the SARS-coronavirus spike glycoprotein is important for spike-mediated cell fusion.
    Virology, 2007, Apr-10, Volume: 360, Issue:2

    Topics: Amino Acid Sequence; Animals; Cell Fusion; Cell Membrane; Chlorocebus aethiops; Cysteine; Immunohistochemistry; Isotope Labeling; Membrane Fusion; Membrane Glycoproteins; Molecular Sequence Data; Mutagenesis, Site-Directed; Palmitic Acid; Protein Processing, Post-Translational; Severe acute respiratory syndrome-related coronavirus; Spike Glycoprotein, Coronavirus; Tritium; Vero Cells; Viral Envelope Proteins

2007
Palmitoylation at Cys595 is essential for PECAM-1 localisation into membrane microdomains and for efficient PECAM-1-mediated cytoprotection.
    Thrombosis and haemostasis, 2006, Volume: 96, Issue:6

    Topics: Actin Cytoskeleton; Animals; Antigens, CD; Apoptosis; Blood Platelets; Cell Line; Cholesterol; Cysteine; Cytoplasm; Endothelial Cells; Etoposide; Genes, Reporter; Green Fluorescent Proteins; Humans; In Vitro Techniques; Membrane Microdomains; Mutation; Palmitic Acid; Platelet Activation; Platelet Endothelial Cell Adhesion Molecule-1; Platelet Membrane Glycoproteins; Protein Binding; Protein Processing, Post-Translational; Protein Structure, Tertiary; Protein Transport; Receptors, IgG; Recombinant Fusion Proteins; Signal Transduction; Transfection

2006
Neutral sphingomyelinase 2 is palmitoylated on multiple cysteine residues. Role of palmitoylation in subcellular localization.
    The Journal of biological chemistry, 2007, Mar-30, Volume: 282, Issue:13

    Topics: Catalytic Domain; Cell Line, Tumor; Cell Membrane; Cysteine; Humans; Palmitic Acid; Protein Transport; Sphingomyelin Phosphodiesterase; Subcellular Fractions

2007
Role of LRAT on the retinoid isomerase activity and membrane association of Rpe65.
    The Journal of biological chemistry, 2007, Jul-20, Volume: 282, Issue:29

    Topics: Absorption; Acyltransferases; Animals; Carrier Proteins; Cattle; Cell Membrane; cis-trans-Isomerases; Cysteine; Eye Proteins; Humans; Light; Mass Spectrometry; Mice; Palmitates; Palmitic Acid; Pigment Epithelium of Eye

2007
Protein interactions between CD2 and Lck are required for the lipid raft distribution of CD2.
    Journal of immunology (Baltimore, Md. : 1950), 2008, Jan-15, Volume: 180, Issue:2

    Topics: Animals; CD2 Antigens; Cell Line, Tumor; Cell Membrane; Cysteine; Humans; Jurkat Cells; Lymphocyte Specific Protein Tyrosine Kinase p56(lck); Membrane Microdomains; Mice; Palmitic Acid; Rats; Rats, Wistar; T-Lymphocytes; Thymoma

2008
Formation of aquaporin-4 arrays is inhibited by palmitoylation of N-terminal cysteine residues.
    Biochimica et biophysica acta, 2008, Volume: 1778, Issue:4

    Topics: Amino Acid Sequence; Amino Acid Substitution; Animals; Aquaporin 4; Cell Membrane; CHO Cells; Cricetinae; Cricetulus; Cysteine; Freeze Fracturing; Molecular Sequence Data; Mutant Proteins; Palmitic Acid; Protein Isoforms; Protein Structure, Quaternary; Rats; Sequence Deletion; Sodium Dodecyl Sulfate; Structure-Activity Relationship; Transfection

2008
Modulation of molecular interactions and function by rhodopsin palmitylation.
    Biochemistry, 2009, May-26, Volume: 48, Issue:20

    Topics: Animals; Chlorocebus aethiops; COS Cells; Cysteine; Light; Mice; Mice, Inbred C57BL; Models, Molecular; Molecular Conformation; Palmitic Acid; Protein Binding; Protein Structure, Tertiary; Rhodopsin; Rod Cell Outer Segment; Transducin

2009
Non-radioactive detection of palmitoylated mitochondrial proteins using an azido-palmitate analogue.
    Methods in enzymology, 2009, Volume: 457

    Topics: Acyl Coenzyme A; Acylation; Animals; Azides; Chromatography; Cysteine; Lipoylation; Mass Spectrometry; Mitochondria, Liver; Mitochondrial Proteins; Palmitic Acid; Phosphines; Rats; Rats, Sprague-Dawley

2009
Palmitoylation of hepatitis C virus core protein is important for virion production.
    The Journal of biological chemistry, 2009, Dec-04, Volume: 284, Issue:49

    Topics: Cell Line; Cell Membrane; Cysteine; Endoplasmic Reticulum; Genome, Viral; Genotype; Hepacivirus; Humans; Microscopy, Fluorescence; Mutagenesis, Site-Directed; Mutation; Palmitic Acid; Protein Sorting Signals; Viral Core Proteins; Virion

2009
Role of spike protein endodomains in regulating coronavirus entry.
    The Journal of biological chemistry, 2009, Nov-20, Volume: 284, Issue:47

    Topics: Amino Acid Sequence; Animals; Coronavirus; Cysteine; Fibroblasts; HeLa Cells; Humans; Lipids; Membrane Glycoproteins; Mice; Molecular Sequence Data; Palmitic Acid; Protein Binding; Protein Structure, Tertiary; Spike Glycoprotein, Coronavirus; Viral Envelope Proteins

2009
The essential Escherichia coli apolipoprotein N-acyltransferase (Lnt) exists as an extracytoplasmic thioester acyl-enzyme intermediate.
    Biochemistry, 2010, Jan-19, Volume: 49, Issue:2

    Topics: Acylation; Acyltransferases; Apolipoproteins; Cysteine; DNA, Bacterial; Escherichia coli; Escherichia coli Proteins; Glycerophospholipids; Immunoblotting; Kinetics; Palmitic Acid; Plasmids; Sulfhydryl Compounds

2010
Interaction of the human prostacyclin receptor with Rab11: characterization of a novel Rab11 binding domain within alpha-helix 8 that is regulated by palmitoylation.
    The Journal of biological chemistry, 2010, Jun-11, Volume: 285, Issue:24

    Topics: Computational Biology; Cysteine; Humans; Leucine; Palmitic Acid; Palmitic Acids; Prostaglandins; Protein Binding; Protein Structure, Secondary; Protein Structure, Tertiary; Protein Transport; rab GTP-Binding Proteins; Receptors, Epoprostenol; Receptors, G-Protein-Coupled; Valine

2010
An S-acylation switch of conserved G domain cysteines is required for polarity signaling by ROP GTPases.
    Current biology : CB, 2010, May-25, Volume: 20, Issue:10

    Topics: Acylation; Arabidopsis; Arabidopsis Proteins; Cell Membrane; Cell Polarity; Cysteine; Lipid Metabolism; Membrane Microdomains; Models, Molecular; Monomeric GTP-Binding Proteins; Palmitic Acid; Protein Structure, Tertiary; Recombinant Fusion Proteins; Signal Transduction; Stearic Acids

2010
Palmitoylation of the SNAP25 protein family: specificity and regulation by DHHC palmitoyl transferases.
    The Journal of biological chemistry, 2010, Aug-06, Volume: 285, Issue:32

    Topics: Amino Acid Sequence; Animals; Cell Membrane; Cysteine; Gene Expression Regulation, Enzymologic; Golgi Apparatus; Humans; Molecular Sequence Data; Palmitic Acid; PC12 Cells; Protein Isoforms; Qb-SNARE Proteins; Qc-SNARE Proteins; Rats; Sequence Homology, Amino Acid; Synaptosomal-Associated Protein 25; Vesicular Transport Proteins

2010
Thiopalmitoylated peptides from the peripheral nervous system myelin p0 protein: synthesis, characterization, and neuritogenic properties.
    Bioconjugate chemistry, 2010, Aug-18, Volume: 21, Issue:8

    Topics: Animals; Circular Dichroism; Cysteine; Male; Myelin P0 Protein; Neurons; Palmitic Acid; Peptides; Peripheral Nervous System; Rats; Rats, Inbred Lew; Sulfhydryl Compounds

2010
Acyl-biotinyl exchange chemistry and mass spectrometry-based analysis of palmitoylation sites of in vitro palmitoylated rat brain tubulin.
    The protein journal, 2010, Volume: 29, Issue:8

    Topics: Amino Acid Sequence; Animals; Bacterial Proteins; Binding Sites; Biotin; Brain; Cysteine; Lipoylation; Mass Spectrometry; Molecular Sequence Data; Palmitic Acid; Protein Engineering; Proteomics; Rats; Sequence Analysis; Signal Transduction; Tubulin

2010
IgM-mediated autoimmune responses directed against multiple neoepitopes in depression: new pathways that underpin the inflammatory and neuroprogressive pathophysiology.
    Journal of affective disorders, 2011, Volume: 135, Issue:1-3

    Topics: Acetylcholine; Adult; Aged; Antibody Formation; Autoimmunity; Case-Control Studies; Cysteine; Depression; Depressive Disorder; DNA Damage; Epitopes; Fatigue; Fatty Acids; Female; Humans; Immunoglobulin M; Inflammation; Lipid Peroxidation; Male; Middle Aged; Myristic Acid; Negotiating; Nitric Oxide; Oxidative Stress; Palmitic Acid; Severity of Illness Index

2011
Global profiling of dynamic protein palmitoylation.
    Nature methods, 2011, Nov-06, Volume: 9, Issue:1

    Topics: Animals; Cysteine; Fatty Acids, Unsaturated; Lipase; Lipoylation; Mass Spectrometry; Mice; Organophosphonates; Palmitic Acid; Protein Processing, Post-Translational; Serine Endopeptidases; Thiolester Hydrolases

2011
Two palmitylated cysteine residues of the severe acute respiratory syndrome coronavirus spike (S) protein are critical for S incorporation into virus-like particles, but not for M-S co-localization.
    The Journal of general virology, 2012, Volume: 93, Issue:Pt 4

    Topics: Animals; Chlorocebus aethiops; Coronavirus M Proteins; COS Cells; Cysteine; Membrane Glycoproteins; Mice; Palmitic Acid; Severe Acute Respiratory Syndrome; Severe acute respiratory syndrome-related coronavirus; Spike Glycoprotein, Coronavirus; Viral Envelope Proteins; Viral Matrix Proteins; Virion; Virus Assembly

2012
Zinc metalloproteinase ProA directly activates Legionella pneumophila PlaC glycerophospholipid:cholesterol acyltransferase.
    The Journal of biological chemistry, 2012, Jul-06, Volume: 287, Issue:28

    Topics: Acyltransferases; Amino Acid Sequence; Bacterial Proteins; Binding Sites; Blotting, Western; Catalytic Domain; Cholesterol; Cysteine; Enzyme Activation; Gene Knockout Techniques; Legionella pneumophila; Metalloproteases; Molecular Sequence Data; Mutation; Palmitic Acid; Propionates; Sequence Homology, Amino Acid; Sterols; Substrate Specificity; Zinc

2012
IgM-mediated autoimmune responses directed against anchorage epitopes are greater in Myalgic Encephalomyelitis/Chronic Fatigue Syndrome (ME/CFS) than in major depression.
    Metabolic brain disease, 2012, Volume: 27, Issue:4

    Topics: Adult; Amino Acids; Analysis of Variance; Autoimmune Diseases; Cysteine; Depressive Disorder, Major; Enzyme-Linked Immunosorbent Assay; Epitopes; Fatigue Syndrome, Chronic; Female; Humans; Immunoglobulin M; Least-Squares Analysis; Male; Middle Aged; Myristic Acid; Nitric Oxide; Palmitic Acid; Phenylalanine

2012
S-palmitoylation and s-oleoylation of rabbit and pig sarcolipin.
    The Journal of biological chemistry, 2014, Dec-05, Volume: 289, Issue:49

    Topics: Amino Acid Sequence; Animals; Biological Evolution; Crystallography, X-Ray; Cysteine; Gene Expression; Hydroxylamine; Kinetics; Lipoylation; Models, Molecular; Molecular Sequence Data; Muscle Proteins; Muscle, Skeletal; Oleic Acid; Palmitic Acid; Phenylalanine; Phylogeny; Protein Processing, Post-Translational; Proteolipids; Rabbits; Sarcoplasmic Reticulum; Sarcoplasmic Reticulum Calcium-Transporting ATPases; Sequence Alignment; Species Specificity; Swine; Thermodynamics

2014
Helix 8 of the ligand binding domain of the glucocorticoid receptor (GR) is essential for ligand binding.
    Molecular and cellular endocrinology, 2015, Jun-15, Volume: 408

    Topics: Amino Acid Sequence; Animals; Cell Membrane; Conserved Sequence; Corticosterone; Cysteine; Dexamethasone; Dose-Response Relationship, Drug; HSP90 Heat-Shock Proteins; Humans; Ligands; Lipoylation; Luciferases; Molecular Sequence Data; Mutant Proteins; Mutation; Palmitic Acid; Protein Binding; Protein Structure, Secondary; Protein Structure, Tertiary; Protein Transport; Rats; Receptors, Glucocorticoid; Repetitive Sequences, Amino Acid; Sequence Alignment; Structure-Activity Relationship; Transcription, Genetic; Tritium

2015
Position of Proline Mediates the Reactivity of S-Palmitoylation.
    ACS chemical biology, 2015, Nov-20, Volume: 10, Issue:11

    Topics: Cysteine; Lipoylation; Models, Molecular; Molecular Dynamics Simulation; Palmitic Acid; Peptides; Proline; Protein Processing, Post-Translational

2015
    The Journal of biological chemistry, 2017, 03-31, Volume: 292, Issue:13

    Topics: A549 Cells; Acetyltransferases; Acyltransferases; Cell Movement; Cysteine; Human Umbilical Vein Endothelial Cells; Humans; Intracellular Signaling Peptides and Proteins; Junctional Adhesion Molecule C; Jurkat Cells; Lipoylation; Palmitic Acid; Protein Processing, Post-Translational; Tight Junctions

2017
Palmitoylation of cysteine 415 of CB
    Biochimica et biophysica acta. Molecular and cell biology of lipids, 2017, Volume: 1862, Issue:5

    Topics: Caveolin 1; Cell Line; Cholesterol; Cysteine; HEK293 Cells; Humans; Ligands; Lipoylation; Membrane Microdomains; Molecular Dynamics Simulation; Mutation; Palmitic Acid; Protein Binding; Protein Conformation; Protein Interaction Maps; Receptor, Cannabinoid, CB1

2017
Selective Enrichment and Direct Analysis of Protein S-Palmitoylation Sites.
    Journal of proteome research, 2018, 05-04, Volume: 17, Issue:5

    Topics: Acylation; Animals; Binding Sites; Cysteine; Fatty Acids; Humans; Hydroxylamine; Lipoylation; Mass Spectrometry; Membrane Proteins; Palmitic Acid; Protein Processing, Post-Translational; Proteomics; RNA-Binding Proteins; Staining and Labeling

2018
Prediction of Rare Palmitoylation Events in Proteins.
    Journal of computational biology : a journal of computational molecular cell biology, 2018, Volume: 25, Issue:9

    Topics: Algorithms; Cysteine; Glycine; Humans; Lipoylation; Palmitic Acid; Position-Specific Scoring Matrices; Protein Processing, Post-Translational; Proteins; Proteome; Serine; Support Vector Machine

2018
Myristoylation-Dependent Palmitoylation of the Receptor Tyrosine Kinase Adaptor FRS2α.
    Biochemistry, 2019, 06-25, Volume: 58, Issue:25

    Topics: Adaptor Proteins, Signal Transducing; Cell Line, Tumor; Cysteine; Golgi Apparatus; Green Fluorescent Proteins; HEK293 Cells; Humans; Lipoylation; Membrane Microdomains; Membrane Proteins; Mutation; Myristic Acid; Palmitic Acid; Spectrometry, Fluorescence

2019
[An abnormal palmitoylation arising from a mutation of CDC42 results in a severe autoinflammatory syndrome].
    Medecine sciences : M/S, 2020, Volume: 36, Issue:11

    Topics: Amino Acid Substitution; Arginine; Autoimmune Diseases; cdc42 GTP-Binding Protein; Cysteine; Humans; Inflammation; Lipoylation; Mutation, Missense; Palmitic Acid; Syndrome

2020
Competition for cysteine acylation by C16:0 and C18:0 derived lipids is a global phenomenon in the proteome.
    The Journal of biological chemistry, 2023, Volume: 299, Issue:9

    Topics: Acylation; Cysteine; HEK293 Cells; HeLa Cells; Humans; Palmitic Acid; Proteome; Stearic Acids

2023