nocodazole and transferrin

nocodazole has been researched along with transferrin in 27 studies

Research

Studies (27)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's12 (44.44)18.2507
2000's11 (40.74)29.6817
2010's3 (11.11)24.3611
2020's1 (3.70)2.80

Authors

AuthorsStudies
Racoosin, EL; Swanson, JA1
Ohnishi, S; Sakai, T; Yamashina, S1
Jin, M; Snider, MD1
Hamm-Alvarez, SF; Loran-Goss, K; Shen, WC; Sonee, M1
Azizi, F; Wahl, P1
Dautry-Varsat, A; Subtil, A1
Shurety, W; Stewart, NL; Stow, JL1
Ebneth, A; Godemann, R; Illenberger, S; Mandelkow, E; Stamer, K; Trinczek, B1
Advani, RJ; Klumperman, J; Lee, KC; Prekeris, R; Scheller, RH; Yang, B1
Alonso, MA; Puertollano, R1
Citores, L; Kolpakova, E; Olsnes, S; Wesche, J1
Klumperman, J; Oorschot, V; Prekeris, R; Scheller, RH; Yang, B1
Babià, T; Dotti, CG; Egea, G; Kok, JW; Ledesma, MD; Saffrich, R1
Courtoy, PJ; Leys, K; Mingeot-Leclercq, MP; Tulkens, PM; Tyteca, D; Van Bambeke, F; Van Der Smissen, P1
Gundersen, GG; Lin, SX; Maxfield, FR1
Becker, KP; Hannun, YA1
Burnette, JO; Dorn, MC; Goldenring, JR; Lapierre, LA; Navarre, J; Zimmerman, CF1
Chesik, D; De Keyser, J; Wilczak, N1
Ellis, S; Mitchell, CA; Rowe, T; Sriratana, A; Zhang, XM1
Damm, EM; Helenius, A; Kartenbeck, J; Kurzchalia, T; Mezzacasa, A; Pelkmans, L1
Baravalle, G; Bayer, N; Fuchs, R; Huber, M; Murphy, RF; Schober, D1
Linder, MC; Moriya, M1
Crommelin, DJ; Häfele, SY; Hennink, WE; Huth, US; Koning, GA; Mastrobattista, E; Oosting, RS; Peschka-Süss, R; Schubert, R; van der Aa, MA1
Chen, X; Liu, L; Shi, H; Wang, Z1
Boucrot, E; Kirchhausen, T; Santos, AJ; Tacheva-Grigorova, SK1
Cherry, S; Hackett, BA1
Alfieri, P; Bellacchio, E; Bertini, ES; Cestra, G; Dentici, ML; Nicita, F; Petrini, S; Scibelli, F; Sferra, A; Zanni, G1

Other Studies

27 other study(ies) available for nocodazole and transferrin

ArticleYear
M-CSF-induced macropinocytosis increases solute endocytosis but not receptor-mediated endocytosis in mouse macrophages.
    Journal of cell science, 1992, Volume: 102 ( Pt 4)

    Topics: Animals; Endocytosis; Female; Fluorescent Dyes; Kinetics; Lipoproteins, LDL; Macrophage Colony-Stimulating Factor; Macrophages; Mice; Mice, Inbred C3H; Microscopy, Fluorescence; Nocodazole; Pinocytosis; Receptor, Macrophage Colony-Stimulating Factor; Transferrin

1992
Microtubule-disrupting drugs blocked delivery of endocytosed transferrin to the cytocenter, but did not affect return of transferrin to plasma membrane.
    Journal of biochemistry, 1991, Volume: 109, Issue:4

    Topics: Animals; Biological Transport; Cell Line; Cell Membrane; Endocytosis; Iron; Kinetics; Microscopy, Electron; Microtubules; Nocodazole; Thermodynamics; Transferrin

1991
Role of microtubules in transferrin receptor transport from the cell surface to endosomes and the Golgi complex.
    The Journal of biological chemistry, 1993, Aug-25, Volume: 268, Issue:24

    Topics: Exocytosis; Fluorescent Antibody Technique; Golgi Apparatus; Horseradish Peroxidase; Humans; Iodine Radioisotopes; Kinetics; Leukemia, Myelogenous, Chronic, BCR-ABL Positive; Lysosomes; Microtubules; Nocodazole; Organelles; Receptors, Transferrin; Sialic Acids; Transferrin; Tumor Cells, Cultured

1993
Paclitaxel and nocodazole differentially alter endocytosis in cultured cells.
    Pharmaceutical research, 1996, Volume: 13, Issue:11

    Topics: Animals; Antineoplastic Agents; Antineoplastic Agents, Phytogenic; Cell Membrane; Cells, Cultured; Chlorocebus aethiops; Endocytosis; Fluorescein-5-isothiocyanate; Horseradish Peroxidase; Iodine Radioisotopes; Kidney; Lysosomes; Microtubules; Nocodazole; Paclitaxel; Receptors, Transferrin; Serum Albumin, Bovine; Transferrin

1996
Fluorescence recovery after photobleaching (FRAP) of a fluorescent transferrin internalized in the late transferrin endocytic compartment of living A431 cells: experiments.
    Biochimica et biophysica acta, 1997, Jul-05, Volume: 1327, Issue:1

    Topics: Aluminum Compounds; Biological Transport, Active; Brefeldin A; Cell Membrane; Cyclopentanes; Endocytosis; Fluorescent Dyes; Fluorides; Humans; Nocodazole; Rhodamines; Transferrin; Tumor Cells, Cultured

1997
Microtubule depolymerization inhibits clathrin coated-pit internalization in non-adherent cell lines while interleukin 2 endocytosis is not affected.
    Journal of cell science, 1997, Volume: 110 ( Pt 19)

    Topics: Amino Acid Sequence; Animals; Cell Adhesion; Cell Line; Coated Pits, Cell-Membrane; Cricetinae; Cytoskeleton; Endocytosis; Humans; Interleukin-2; Microtubules; Molecular Sequence Data; Nocodazole; Polymers; Receptors, Interleukin-2; Receptors, Transferrin; Recombinant Fusion Proteins; Transferrin; Tumor Cells, Cultured

1997
Fluid-phase markers in the basolateral endocytic pathway accumulate in response to the actin assembly-promoting drug Jasplakinolide.
    Molecular biology of the cell, 1998, Volume: 9, Issue:4

    Topics: Actins; Animals; Biomarkers; Cell Line; Cell Membrane; Cell Polarity; Depsipeptides; Dextrans; Dogs; Endocytosis; Fluorescein-5-isothiocyanate; Horseradish Peroxidase; Kidney; Nocodazole; Peptides, Cyclic; Polymers; Transferrin

1998
Overexpression of tau protein inhibits kinesin-dependent trafficking of vesicles, mitochondria, and endoplasmic reticulum: implications for Alzheimer's disease.
    The Journal of cell biology, 1998, Nov-02, Volume: 143, Issue:3

    Topics: Alzheimer Disease; Animals; Biological Transport; Cell Size; Centrosome; CHO Cells; Cricetinae; Docetaxel; Dyneins; Endoplasmic Reticulum; Gene Expression; Intermediate Filament Proteins; Kinesins; Microinjections; Mitochondria; Nocodazole; Paclitaxel; tau Proteins; Taxoids; Transferrin; Tumor Cells, Cultured

1998
VAMP-7 mediates vesicular transport from endosomes to lysosomes.
    The Journal of cell biology, 1999, Aug-23, Volume: 146, Issue:4

    Topics: Animals; Antigens, CD; Biological Transport; Brefeldin A; Cell Line; Cell Membrane Permeability; Endosomes; Epidermal Growth Factor; Gene Expression; Golgi Apparatus; Humans; Intracellular Membranes; Lysosomal Membrane Proteins; Lysosomal-Associated Membrane Protein 1; Lysosomes; Membrane Glycoproteins; Membrane Proteins; Mice; Microscopy, Immunoelectron; Nocodazole; R-SNARE Proteins; Rats; Recombinant Fusion Proteins; SNARE Proteins; Transferrin; Vesicular Transport Proteins

1999
MAL, an integral element of the apical sorting machinery, is an itinerant protein that cycles between the trans-Golgi network and the plasma membrane.
    Molecular biology of the cell, 1999, Volume: 10, Issue:10

    Topics: Ammonium Chloride; Animals; Biological Transport; Biotinylation; Brefeldin A; Cell Line; Cell Membrane; Chloroquine; COS Cells; Dogs; Endosomes; Flow Cytometry; Fluorescent Antibody Technique; Glycosylation; Golgi Apparatus; Membrane Transport Proteins; Monensin; Myelin and Lymphocyte-Associated Proteolipid Proteins; Myelin Proteins; Neuraminidase; Nocodazole; Oligopeptides; Peptides; Proteolipids; Recombinant Proteins; Transfection; Transferrin

1999
Uptake and intracellular transport of acidic fibroblast growth factor: evidence for free and cytoskeleton-anchored fibroblast growth factor receptors.
    Molecular biology of the cell, 1999, Volume: 10, Issue:11

    Topics: Animals; Biological Transport; Caveolin 1; Caveolins; Cell Line; Cross-Linking Reagents; Cytoskeleton; Fibroblast Growth Factor 1; Fluorescent Antibody Technique; Humans; Iodine Radioisotopes; Membrane Proteins; Nocodazole; Phosphotyrosine; Protein-Tyrosine Kinases; Receptor, Fibroblast Growth Factor, Type 4; Receptors, Fibroblast Growth Factor; Succinimides; Transfection; Transferrin

1999
Differential roles of syntaxin 7 and syntaxin 8 in endosomal trafficking.
    Molecular biology of the cell, 1999, Volume: 10, Issue:11

    Topics: Animals; Biological Transport; Brefeldin A; Carrier Proteins; Cell Line; Cell Membrane; Endosomes; Epidermal Growth Factor; Fluorescent Antibody Technique; Golgi Apparatus; Green Fluorescent Proteins; Humans; Immunohistochemistry; Luminescent Proteins; Lysosomes; Membrane Proteins; Microscopy, Electron; Nocodazole; Qa-SNARE Proteins; SNARE Proteins; Soluble N-Ethylmaleimide-Sensitive Factor Attachment Proteins; Transferrin; Vesicular Transport Proteins

1999
Endocytosis of NBD-sphingolipids in neurons: exclusion from degradative compartments and transport to the Golgi complex.
    Traffic (Copenhagen, Denmark), 2001, Volume: 2, Issue:6

    Topics: Animals; Antineoplastic Agents; Brefeldin A; Cell Differentiation; Cell Line; Cell Membrane; Cells, Cultured; Chromatography, Thin Layer; Cytoplasm; Endocytosis; Endosomes; Glucosylceramides; Golgi Apparatus; Hippocampus; Lysosomes; Microscopy, Phase-Contrast; Neurons; Nocodazole; Protein Synthesis Inhibitors; Rats; Sphingolipids; Sphingomyelins; Temperature; Time Factors; Transferrin

2001
Azithromycin, a lysosomotropic antibiotic, impairs fluid-phase pinocytosis in cultured fibroblasts.
    European journal of cell biology, 2001, Volume: 80, Issue:7

    Topics: Adenosine Triphosphate; Animals; Anti-Bacterial Agents; Antineoplastic Agents; Azithromycin; Cell Membrane; Cells, Cultured; Coloring Agents; DNA; Erythromycin; Fetus; Fibroblasts; Horseradish Peroxidase; Humans; Ionophores; Lysosomes; Microscopy, Electron; Monensin; Nocodazole; Phospholipids; Pinocytosis; Protein Binding; Rats; Rats, Wistar; Tolonium Chloride; Transferrin; Transport Vesicles; Vacuoles

2001
Export from pericentriolar endocytic recycling compartment to cell surface depends on stable, detyrosinated (glu) microtubules and kinesin.
    Molecular biology of the cell, 2002, Volume: 13, Issue:1

    Topics: Animals; Antibodies; Cell Compartmentation; Cell Line; Cell Membrane; Centrioles; CHO Cells; Cricetinae; Endocytosis; Fluorescent Antibody Technique; Glutamic Acid; HeLa Cells; Humans; Kinesins; Microscopy, Fluorescence; Microtubules; Nocodazole; Paclitaxel; Protein Transport; Transferrin; Transport Vesicles; Tyrosine

2002
cPKC-dependent sequestration of membrane-recycling components in a subset of recycling endosomes.
    The Journal of biological chemistry, 2003, Dec-26, Volume: 278, Issue:52

    Topics: Active Transport, Cell Nucleus; Animals; Brefeldin A; Cell Line; Cell Line, Tumor; Cell Membrane; Cell Nucleus; COS Cells; Endosomes; Enzyme Activation; Fluorescent Antibody Technique, Indirect; Golgi Apparatus; Green Fluorescent Proteins; HeLa Cells; Humans; Luminescent Proteins; Microscopy, Confocal; Microtubules; Models, Biological; Nocodazole; Protein Isoforms; Protein Kinase C; Protein Kinase C beta; Protein Kinase C-alpha; Protein Structure, Tertiary; Protein Transport; rab GTP-Binding Proteins; Transfection; Transferrin

2003
Rab11b resides in a vesicular compartment distinct from Rab11a in parietal cells and other epithelial cells.
    Experimental cell research, 2003, Nov-01, Volume: 290, Issue:2

    Topics: Animals; Antineoplastic Agents; Cell Compartmentation; Cell Line; Cell Membrane; Cell Polarity; Dogs; Epithelial Cells; Green Fluorescent Proteins; H(+)-K(+)-Exchanging ATPase; Humans; Immunoglobulin A; Kidney; Luminescent Proteins; Mice; Nocodazole; Paclitaxel; Parietal Cells, Gastric; Protein Transport; rab GTP-Binding Proteins; Rabbits; Receptors, Fc; Receptors, Transferrin; Transferrin

2003
Insulin-like growth factor binding protein-4 interacts with centrosomes and microtubules in primary astrocytes.
    Neuroscience, 2004, Volume: 125, Issue:2

    Topics: Animals; Animals, Newborn; Astrocytes; Blotting, Western; Centrosome; Cerebral Cortex; Fluorescein-5-isothiocyanate; Fluorescent Antibody Technique; Insulin-Like Growth Factor Binding Protein 4; Microscopy, Electron; Microtubules; Nocodazole; Rats; Rats, Wistar; Reverse Transcriptase Polymerase Chain Reaction; RNA, Messenger; Transferrin; Tubulin

2004
Sec15 is an effector for the Rab11 GTPase in mammalian cells.
    The Journal of biological chemistry, 2004, Oct-08, Volume: 279, Issue:41

    Topics: Animals; Biological Transport; Cell Line; Cell Membrane; Cell Nucleus; CHO Cells; COS Cells; Cricetinae; Cytoplasm; Endocytosis; Endosomes; GTP-Binding Proteins; Humans; Microscopy, Electron; Microtubules; Nocodazole; Peptides; Plasmids; Protein Binding; rab GTP-Binding Proteins; rab4 GTP-Binding Proteins; rab7 GTP-Binding Proteins; Temperature; Transfection; Transferrin; Two-Hybrid System Techniques

2004
Clathrin- and caveolin-1-independent endocytosis: entry of simian virus 40 into cells devoid of caveolae.
    The Journal of cell biology, 2005, Jan-31, Volume: 168, Issue:3

    Topics: Actin Cytoskeleton; Adaptor Proteins, Signal Transducing; ADP-Ribosylation Factor 6; ADP-Ribosylation Factors; Animals; Antigens, Viral, Tumor; Brefeldin A; Bridged Bicyclo Compounds, Heterocyclic; Calcium-Binding Proteins; Caveolae; Caveolin 1; Caveolin 2; Caveolins; Cell Line; Cell Line, Tumor; Cholesterol; Clathrin; Detergents; Dynamin II; Embryo, Mammalian; Endocytosis; Endoplasmic Reticulum, Smooth; Fibroblasts; Gene Expression; Genistein; Humans; Intracellular Signaling Peptides and Proteins; Membrane Microdomains; Membrane Proteins; Mice; Mice, Knockout; Microscopy, Electron, Transmission; Microscopy, Fluorescence; Microtubules; Nocodazole; Phosphoproteins; Semliki forest virus; Simian virus 40; Thiazoles; Thiazolidines; Transferrin; Transport Vesicles; Tubulin; Vesicular Transport Proteins

2005
Transferrin recycling and dextran transport to lysosomes is differentially affected by bafilomycin, nocodazole, and low temperature.
    Cell and tissue research, 2005, Volume: 320, Issue:1

    Topics: Cold Temperature; Dextrans; Endosomes; Enzyme Inhibitors; Fluorescein-5-isothiocyanate; Fluorescent Dyes; HeLa Cells; Humans; Hydrogen-Ion Concentration; Indoles; Lysosomes; Macrolides; Microscopy, Confocal; Nocodazole; Transferrin

2005
Vesicular transport and apotransferrin in intestinal iron absorption, as shown in the Caco-2 cell model.
    American journal of physiology. Gastrointestinal and liver physiology, 2006, Volume: 290, Issue:2

    Topics: Apoproteins; Biological Transport, Active; Brefeldin A; Caco-2 Cells; Energy Metabolism; Enterocytes; Humans; Intestinal Absorption; Iron; Iron Radioisotopes; Nocodazole; Protein Synthesis Inhibitors; Protein Transport; Transferrin; Tyrphostins

2006
Cellular uptake of cationic polymer-DNA complexes via caveolae plays a pivotal role in gene transfection in COS-7 cells.
    Pharmaceutical research, 2007, Volume: 24, Issue:8

    Topics: Androstadienes; Animals; beta-Cyclodextrins; Biological Transport; Caveolae; Chlorocebus aethiops; Chlorpromazine; Cholera Toxin; Clathrin-Coated Vesicles; COS Cells; DNA; Endocytosis; Enzyme Inhibitors; Flow Cytometry; Fluorescent Dyes; Genistein; Luciferases; Macromolecular Substances; Methacrylates; Microscopy, Fluorescence; Nocodazole; Nylons; Polyamines; Polyelectrolytes; Polyethyleneimine; Transfection; Transferrin; Wortmannin

2007
Regulation of EGF-stimulated EGF receptor endocytosis during M phase.
    Traffic (Copenhagen, Denmark), 2011, Volume: 12, Issue:2

    Topics: Actins; Animals; Cell Division; Cell Line, Tumor; Chlorocebus aethiops; CHO Cells; Clathrin; COS Cells; Cricetinae; Cricetulus; Endocytosis; Epidermal Growth Factor; ErbB Receptors; HeLa Cells; Humans; Ligands; Nocodazole; Phosphorylation; Protein Binding; Protein Kinases; Protein Transport; Signal Transduction; Transferrin

2011
Clathrin-mediated endocytosis persists during unperturbed mitosis.
    Cell reports, 2013, Aug-29, Volume: 4, Issue:4

    Topics: Animals; Chlorocebus aethiops; Clathrin; Clathrin-Coated Vesicles; Cysteine; Endocytosis; HEK293 Cells; HeLa Cells; Hot Temperature; Humans; Mitosis; Nocodazole; Quinolines; Thiazoles; Transferrin

2013
Flavivirus internalization is regulated by a size-dependent endocytic pathway.
    Proceedings of the National Academy of Sciences of the United States of America, 2018, 04-17, Volume: 115, Issue:16

    Topics: Antigens, Surface; Cell Line, Tumor; Dengue Virus; Endocytosis; Endoribonucleases; Ethers; Flavivirus; Gene Knockdown Techniques; GPI-Linked Proteins; Humans; Microspheres; Microtubule-Associated Proteins; Microtubules; Nocodazole; Spiro Compounds; Transferrin; Virus Internalization; West Nile virus; Zika Virus

2018
TUBB Variants Underlying Different Phenotypes Result in Altered Vesicle Trafficking and Microtubule Dynamics.
    International journal of molecular sciences, 2020, Feb-18, Volume: 21, Issue:4

    Topics: Amino Acid Sequence; Cell Movement; Child; DNA Mutational Analysis; Epidermal Growth Factor; Fibroblasts; Humans; Magnetic Resonance Imaging; Microtubules; Models, Molecular; Mutation; Nocodazole; Phenotype; Protein Transport; Transferrin; Transport Vesicles; Tubulin

2020