oleic acid has been researched along with Acute Lung Injury in 91 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 0 (0.00) | 18.7374 |
1990's | 0 (0.00) | 18.2507 |
2000's | 20 (21.98) | 29.6817 |
2010's | 66 (72.53) | 24.3611 |
2020's | 5 (5.49) | 2.80 |
Authors | Studies |
---|---|
Alhilal, M; Çınar, İ; Demirci, B; Erol, HS; Terzi, F | 1 |
Jiang, T; Leng, W; Zhong, S | 1 |
Andrade, CF; Borges, AM; Félix, EA; Ferrari, RS; Silvello, D; Thomaz, LDGR; Ulbrich, JM | 1 |
Chen, YY; Cui, HH; Huang, XH; Li, F; Lin, D; Niu, JY; Tang, MY; Tu, YS; Wang, HY; Zhong, WY; Zhou, H | 1 |
Arnaud, FG; Haque, A; Hubbell, JN; Jefferson, MA; Malone, DL; McCarron, RM; Moon-Massat, P; Scultetus, AH | 1 |
Dakshinamurti, S; Elsayed, YN; Graham, R; Hinton, M | 1 |
Brand, G; Charpentier, D; Clavet-Lanthier, MÉ; Dupuis, J; Mihalache-Avram, T; Neagoe, PE; Nguyen, QT; Rhainds, D; Rhéaume, E; Sirois, MG; Tardif, JC; Théberge-Julien, G | 1 |
Du, G; Li, Z; Liu, J; Wang, S | 1 |
Erdem, A; Fadillioglu, E; Gedikli, E; Karaismailoglu, S; Muftuoglu, S; Tuncer, M; Yersal, N | 1 |
Qin, Z; Xu, H; Yao, M; Ying, Y | 1 |
Niu, F; Sun, D; Wang, A; Wang, W; Wang, Y; Xu, X; Zhang, R; Zhu, Q | 1 |
Li, M; Sun, J; Tan, Z; Wang, H | 1 |
Garcia-Bardon, A; Hartmann, EK; Kamuf, J; Möllmann, C; Rümmler, R; Thomas, R; Ziebart, A | 1 |
Chen, H; Chen, W; Ding, Y; Feng, Y; Shi, G | 1 |
Li, TS; Liu, WL; Liu, ZW; Wang, C; Zhao, B | 1 |
Fan, XM; Li, XF; Ling, F; Liu, AJ; Liu, DH; Liu, YL; Qiao, CH; Zhang, YB; Zhu, YB | 1 |
Bakker, J; Bikker, IG; Blankman, P; Gommers, D; Specht, P | 1 |
DU, J; Han, L; Li, XF; Li, ZQ; Ling, F; Liu, AJ; Liu, YL | 1 |
Dong, HY; Dong, MQ; Ji, ZY; Li, ZC; Liu, ML; Liu, Y; Luo, Y; Niu, W; Wang, YX; Xu, DQ; Xu, M; Ye, J; Zhang, B; Zhao, PT | 1 |
Bai, X; Duan, Y; Huang, Q; Wang, C; Yuan, S; Zhu, X | 1 |
Gavriely, N; Nemergut, ME; Räsänen, J | 1 |
Fan, XM; Liu, AJ; Liu, DH; Liu, YL; Qiao, CH; Wang, Q; Zhang, YB; Zhu, YB | 1 |
Aksoy, M; Celik, T; Dostbil, A; Kaymak, F; Kılıç, M; Onal, O; Salman, AE; Unver, S; Yetişir, F; Zeybek, D | 1 |
Choi, H; Hong, S; Jeong, S; Lee, SM; Park, KC; Yang, G | 1 |
Chen, YQ; Qiao, JO; Rong, L | 1 |
Derosa, S; Fiore, T; Hedenstierna, G; Pellegrini, M; Perchiazzi, G; Pitagora, L; Polieri, D; Rylander, C; Tannoia, A; Vena, A | 1 |
Kobayashi, M; Mizuno, S; Muraki, Y; Nakagawa, K; Oikawa, T; Osanai, K; Toga, H; Zhou, M | 1 |
Liang, J; Liu, X; Qiao, L; Wang, L; Yan, H; Zhang, L; Zhang, Y; Zhao, K | 1 |
Abd-Allah, SH; Abd-Elbary, E; El-Magd, MA; Saleh, AA; Shalaby, SM | 1 |
Chen, S; Du, J; Jin, H; Liu, Z; Tang, C; Zhao, B; Zheng, S | 1 |
Deng, J; Deng, W; He, J; Luo, L; Wang, DX | 1 |
Hengstschläger, M; Lassnig, C; Mikula, M; Müller, M; Preitschopf, A; Üstün, S; Weichhart, T | 1 |
Chai, J; Guo, W; Li, Z; Qin, T; Tan, T; Wang, S; Wu, Y; Xie, X; Yi, F; Zhu, H | 1 |
Chen, Y; Guo, L; Huang, D; Huang, X; Li, W; Ma, H; Ma, S; Mao, S; Zhang, M | 1 |
Adler, A; Böhm, SH; Haas, SA; Phillips, CR; Rapin, M; Reuter, DA; Solà, J; Trepte, CJ | 1 |
Gembardt, F; Kohse, F; Kuebler, WM; Supé, S; Walther, T | 1 |
Derosa, S; Fiore, T; Hedenstierna, G; Larsson, A; Pellegrini, M; Perchiazzi, G; Rylander, C; Tannoia, A | 1 |
Graham, R; Kolb, M; Moodley, Y; Shaw, K; Shimbori, C; Sturm, M; Tan, DB | 1 |
Albuquerque, AA; Arcencio, L; Bottura, C; Evora, PR; Jordão, A; Rodrigues, AJ; Silveira, AP; Vento, DA | 1 |
Gaikwad, RV; Hagawane, TN; Kshirsagar, NA | 1 |
Horikami, D; Kobayashi, K; Maeda, S; Murata, T; Nakamura, T; Omori, K; Yamazaki, A | 1 |
Erdogan, S; Kucukgul, A | 1 |
Bahk, JH; Im, JG; Lee, HJ; Ryu, HG | 1 |
Bao, S; Davis, IC; Knoell, DL; Lai, JP | 1 |
Golbidi, S; Irie, T; Irikura, M; Ishitsuka, Y; Moriuchi, H; Yang, C | 1 |
Li, X; Liu, J; Liu, Y; Lv, X; Wang, Q; Zhu, Y | 1 |
He, L; Huang, DX; Li, TP | 1 |
Huang, Y; Li, Z; Liu, J; Luo, N; Wang, S | 1 |
Chen, CL; He, L; Li, TP; Zhou, WM; Zhu, LH | 1 |
Golbidi, S; Irie, T; Irikura, M; Ishitsuka, Y; Jin, ZJ; Moriuchi, H; Yang, CQ | 1 |
Koizumi, T; Nakagawa, R; Obata, T; Ono, K; Tsushima, K; Yokoyama, T; Yoshikawa, S | 1 |
Chen, CL; Li, TP; Zhu, LH | 1 |
Brito, F; Firmino, MA; Freitas, E; Gaio, E; Melo e Silva, CA; Storck, R | 1 |
Hatamoto, K; Irie, T; Irikura, M; Ishitsuka, Y; Isohama, Y; Iyama, K; Kurita, S; Moriuchi, H; Tokunaga, H | 1 |
Bao, Z; Gong, W; Wan, H; Xiang, Y; Ye, Q | 1 |
Berg, A; Hering, R; Kreyer, S; Muders, T; Putensen, C; Soehle, M; Wrigge, H; Zinserling, J | 1 |
Courbon, C; Garcia, S; Leone, M; Lesur, I; Loriod, B; Nguyen, C; Textoris, J | 1 |
Bjertnaes, LJ; Kirov, MY; Kuklin, VN; Kuzkov, VV; Mortensen, R; Nordhus, KC; Suborov, EV; Waerhaug, K | 1 |
Jin, K; Li, C; Liu, B; Pan, AJ; Shen, JJ; Zhou, SS | 1 |
Bleyl, JU; Friedrich, S; Gama de Abreu, M; Koch, T; Ragaller, M; Rasche, S | 1 |
Gao, M; Huang, H; Luo, L; Pan, Y; Ye, Y; Yin, Z | 1 |
Bodenstein, M; Boehme, S; Duenges, B; Ganatti, S; Markstaller, K; Ning, Y; Roehrig, B; Wang, HM | 1 |
Jin, M; Li, JR; Tong, J; Wang, XF; Wu, W; Zang, BX | 1 |
Dysart, K; Frizzola, M; Hesek, A; Miller, TL; Rodriguez, ME; Rojas, J; Shaffer, TH; Stump, A; Zhu, Y | 1 |
Belenkie, I; Doig, CJ; Mitchell, JR; Tyberg, JV; Whitelaw, WA | 1 |
Dai, SS; Fu, XH; He, FT; Hu, JL; Li, G; Li, J; Xiong, G; Yang, N; Zeng, YJ; Zhou, YG | 1 |
Altintas, ND; Atilla, P; Iskit, AB; Topeli, A | 1 |
Guardiola, J; Li, H; Lin, S; Moldoveanu, B; Xu, L; Yu, J | 1 |
Girling, LG; Goertzen, A; Graham, MR; Gulati, H; Kha, L; Mutch, WA | 1 |
Ling, F; Liu, AJ; Liu, YL; Wang, D; Wang, Q | 1 |
Chen, J; Guo, Q; Huang, J; Jin, J; Shen, B; Yuan, JX; Zeifman, A | 1 |
Bao-ming, G; Bin, Z; Hong-fang, J; Jun-bao, D; Li, N; Qiang, X; Tian-shui, L; Tong, W; Wei, T; Wen-ping, S; Xiao-hui, D; Zhi-fang, C | 1 |
Cui, QQ; Feng, XB; Wang, YS; Zhao, L | 1 |
Miao, QB; Shu, YS; Tao, W; Zhu, YB | 1 |
Ding, CH; Gao, L; Gu, WW; Ma, WZ; Ma, YL; Zhang, Z | 1 |
Fu, Y; Liu, ZW; Wang, C; Wang, HY; Zhao, B | 1 |
Ling, F; Liu, AJ; Liu, DH; Liu, YL; Qiao, CH; Wang, Q; Zhang, YB; Zhu, YB | 1 |
Fan, XM; Li, XF; Li, ZQ; Liu, YL; Sun, LZ; Wang, Q; Zhu, YB | 1 |
Bozza, PT; Burth, P; Castro Faria Neto, HC; Castro Faria, MV; Garcia, DG; Gonçalves de Albuquerque, CF; Younes Ibrahim, M | 1 |
Gürsu, F; Kırkıl, G; Muz, MH; Ozercan, R; Türkoğlu, S | 1 |
Ikemura, M; Inoue, H; Nakagawa, Y; Nata, M; Usugi, E | 1 |
Kong, B; Li, G; Liu, YL; Lü, XD; Wang, Q; Xu, YL | 1 |
Guo, H; Li, RS; Liang, XB; Wang, C; Wu, RP; Zhao, L; Zhou, XS | 1 |
Huang, JX; Lu, J; Sun, Y; Wang, YQ; Zhong, JG | 1 |
Liu, XM; Qi, YF; Tang, CS; Yu, XM; Zhang, ZG | 1 |
Chai, XP; He, ZB; Jin, LY; Ruan, WY; Xu, JM | 1 |
Lu, J; Sun, Y; Wang, YQ; Zhong, JG | 1 |
Fan, HM; Guo, JH; Kong, X; Liu, ZM; Wang, JY; Zhao, SG | 1 |
Fu, JH; Guo, Q; Huang, JA; Jin, J; Wang, J; Yang, XJ | 1 |
He, L; Li, TP; Zhu, LH | 1 |
Chen, XY; Li, P; Liu, P; Xiong, RP; Zhang, M; Zhao, Y; Zhou, YG | 1 |
91 other study(ies) available for oleic acid and Acute Lung Injury
Article | Year |
---|---|
Effects of tocilizumab and dexamethasone on the downregulation of proinflammatory cytokines and upregulation of antioxidants in the lungs in oleic acid-induced ARDS.
Topics: Acute Lung Injury; Animals; Antibodies, Monoclonal, Humanized; Antioxidants; Cytokine Release Syndrome; Cytokines; Dexamethasone; Down-Regulation; Interleukin-6; Interleukin-8; Lung; Male; Oleic Acid; Rats; Respiratory Distress Syndrome; Superoxide Dismutase; Tumor Necrosis Factor-alpha; Up-Regulation | 2022 |
Angiopoietin-Like Protein 2 Is Increased in Obese Mouse Models of Lung Injury.
Topics: Acute Lung Injury; Angiopoietin-Like Protein 2; Animals; Lung; Male; Mice; Mice, Obese; Oleic Acid; Respiratory Distress Syndrome; RNA, Messenger; Saline Solution | 2022 |
Challenges and perspectives in porcine model of acute lung injury using oleic acid.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Female; Hemodynamics; Male; Oleic Acid; Pulmonary Edema; Reproducibility of Results; Respiratory Distress Syndrome; Respiratory Mechanics; Swine | 2019 |
Ferroptosis was involved in the oleic acid-induced acute lung injury in mice.
Topics: Acute Lung Injury; Animals; Apoptosis; Bronchoalveolar Lavage Fluid; Cyclooxygenase 2; Ferritins; Glutathione; Glutathione Peroxidase; Iron; Iron Overload; Lung; Malondialdehyde; Mice; Microscopy, Electron, Transmission; Mitochondrial Membranes; Oleic Acid; Phospholipid Hydroperoxide Glutathione Peroxidase | 2019 |
Histopathological Evidence of Multiple Organ Damage After Simulated Aeromedical Evacuation in a Swine Acute Lung Injury Model.
Topics: Acute Lung Injury; Aerospace Medicine; Animals; Disease Models, Animal; Multiple Organ Failure; Oleic Acid; Swine | 2020 |
Lung ultrasound predicts histological lung injury in a neonatal model of acute respiratory distress syndrome.
Topics: Acute Lung Injury; Animals; Animals, Newborn; Blood Gas Analysis; Female; Hemodynamics; Lung; Male; Oleic Acid; Pulmonary Edema; Respiratory Distress Syndrome; Swine; Ultrasonography | 2020 |
Colchicine reduces lung injury in experimental acute respiratory distress syndrome.
Topics: Acute Lung Injury; Animals; Colchicine; Disease Models, Animal; Humans; Lung; Neutrophil Infiltration; Neutrophils; Oleic Acid; Rats; Respiratory Distress Syndrome | 2020 |
Sevoflurane Posttreatment Attenuates Lung Injury Induced by Oleic Acid in Dogs.
Topics: Acute Lung Injury; Anesthetics, Inhalation; Animals; Arterial Pressure; Cytoprotection; Disease Models, Animal; Dogs; Female; Hypnotics and Sedatives; Inflammation Mediators; Lung; Male; Methyl Ethers; Oleic Acid; Propofol; Pulmonary Artery; Pulmonary Edema; Respiratory Mechanics; Sevoflurane; Time Factors; Tumor Necrosis Factor-alpha; Vascular Resistance | 2017 |
Protective role of erdosteine pretreatment on oleic acid-induced acute lung injury.
Topics: Acute Lung Injury; Administration, Oral; Animals; Antioxidants; Biomarkers; Drug Administration Schedule; Expectorants; Macrophages, Alveolar; Male; Neutrophils; Oleic Acid; Protective Agents; Random Allocation; Rats; Rats, Wistar; Thioglycolates; Thiophenes | 2017 |
Protective effect of hydrogen-saturated saline on acute lung injury induced by oleic acid in rats.
Topics: Acute Lung Injury; Animals; Bicarbonates; Carbon Dioxide; Hydrogen; Inflammation Mediators; Infusions, Intravenous; Infusions, Parenteral; Lung; Male; Oleic Acid; Oxidative Stress; Oxygen; Partial Pressure; Rats, Sprague-Dawley; Sodium Chloride | 2017 |
ITRAQ-Based Proteomics Analysis of Acute Lung Injury Induced by Oleic Acid in Mice.
Topics: Acute Lung Injury; Animals; Antithrombin III; Arachidonate 12-Lipoxygenase; Biomarkers; Cell Line; Down-Regulation; GTPase-Activating Proteins; Guanine Nucleotide Exchange Factors; Humans; Interleukin-6; Lung; Male; Mice; Mice, Inbred C57BL; Oleic Acid; Proteomics; RNA Interference; Tumor Necrosis Factor-alpha; Up-Regulation | 2017 |
Effects of propofol pretreatment on lung morphology and heme oxygenase-1 expression in oleic acid-induced acute lung injury in rats.
Topics: Acute Lung Injury; Animals; Heme Oxygenase-1; Immunohistochemistry; Lung; Male; Oleic Acid; Propofol; Random Allocation; Rats; Rats, Sprague-Dawley | 2018 |
Oleic Acid-Injection in Pigs As a Model for Acute Respiratory Distress Syndrome.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Humans; Oleic Acid; Respiration, Artificial; Respiratory Distress Syndrome; Respiratory Function Tests; Swine | 2018 |
Glibenclamide alleviates inflammation in oleic acid model of acute lung injury through NLRP3 inflammasome signaling pathway.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Glyburide; Inflammasomes; Inflammation; Male; NLR Family, Pyrin Domain-Containing 3 Protein; Oleic Acid; Oxidative Stress; Rats; Rats, Sprague-Dawley; Signal Transduction | 2019 |
Hydrogen sulfide donor regulates alveolar epithelial cell apoptosis in rats with acute lung injury.
Topics: Acute Lung Injury; Animals; Apoptosis; Epithelial Cells; Hydrogen Sulfide; In Situ Nick-End Labeling; Male; Oleic Acid; Rats; Rats, Sprague-Dawley; Sulfides | 2013 |
Atrial natriuretic peptide attenuates inflammatory responses on oleic acid-induced acute lung injury model in rats.
Topics: Acute Lung Injury; Animals; Atrial Natriuretic Factor; Disease Models, Animal; Inflammation; Male; Oleic Acid; Rats; Rats, Wistar | 2013 |
Global and regional parameters to visualize the 'best' PEEP during a PEEP trial in a porcine model with and without acute lung injury.
Topics: Acute Lung Injury; Animals; Electric Impedance; Hemodynamics; Oleic Acid; Positive-Pressure Respiration; Swine | 2013 |
Effect of oleic acid-induced acute lung injury and conventional mechanical ventilation on renal function in piglets.
Topics: Acute Lung Injury; Animals; Cytokines; Hemodynamics; Kidney; Lung; Oleic Acid; Respiration, Artificial; Swine; Swine, Miniature | 2013 |
Leptin attenuates lipopolysaccharide or oleic acid-induced acute lung injury in mice.
Topics: Acute Lung Injury; Animals; Cytokines; Disease Models, Animal; Female; Inflammation Mediators; Leptin; Lipopolysaccharides; Lung; Male; MAP Kinase Signaling System; Mice; Mice, Inbred C57BL; Mice, Obese; NF-kappa B; Oleic Acid; Up-Regulation | 2013 |
Hydroxysafflor yellow A suppresses oleic acid-induced acute lung injury via protein kinase A.
Topics: Acute Lung Injury; Animals; Chalcone; Cyclic AMP-Dependent Protein Kinases; Enzyme Activation; Male; Oleic Acid; Protein Kinase Inhibitors; Quinones; Random Allocation; Rats; Rats, Sprague-Dawley | 2013 |
Changes in breath sound power spectra during experimental oleic acid-induced lung injury in pigs.
Topics: Acute Lung Injury; Animals; Lung; Oleic Acid; Prone Position; Pulmonary Gas Exchange; Respiration; Respiration, Artificial; Respiratory Mechanics; Respiratory Sounds; Supine Position; Swine | 2014 |
Total liquid ventilation reduces oleic acid-induced lung injury in piglets.
Topics: Acute Lung Injury; Animals; Interleukin-10; Interleukin-1beta; Interleukin-6; Liquid Ventilation; Oleic Acid; Swine; Tumor Necrosis Factor-alpha | 2013 |
The impact of pretreatment with bolus dose of enteral glutamine on acute lung injury induced by oleic acid in rats.
Topics: Acute Lung Injury; Animals; Female; Glutamine; Interleukin-10; Interleukin-6; Lung; Malondialdehyde; Oleic Acid; Rats; Rats, Sprague-Dawley; Superoxide Dismutase; Tumor Necrosis Factor-alpha | 2014 |
microRNAs mediate oleic acid-induced acute lung injury in rats using an alternative injury mechanism.
Topics: 3' Untranslated Regions; Actins; Acute Lung Injury; Animals; Disease Models, Animal; Down-Regulation; Extracellular Signal-Regulated MAP Kinases; Interleukin-13; JNK Mitogen-Activated Protein Kinases; Lung; Male; MicroRNAs; Oleic Acid; Proto-Oncogene Proteins c-akt; PTEN Phosphohydrolase; Rats; Rats, Sprague-Dawley; Signal Transduction; Up-Regulation | 2014 |
Anti‑inflammatory effects of Panax notoginseng saponins ameliorate acute lung injury induced by oleic acid and lipopolysaccharide in rats.
Topics: Acute Lung Injury; Animals; Anti-Inflammatory Agents; Bronchoalveolar Lavage Fluid; Disease Models, Animal; Epithelial Sodium Channels; Interleukin-10; Interleukin-6; Leukocytes; Lipopolysaccharides; Lung; Male; Neutrophils; Oleic Acid; Panax notoginseng; Rats; Rats, Wistar; RNA, Messenger; Saponins; Tumor Necrosis Factor-alpha | 2014 |
Regional distribution of lung compliance by image analysis of computed tomograms.
Topics: Acute Lung Injury; Animals; Computer Simulation; Disease Models, Animal; Lung; Lung Compliance; Oleic Acid; Respiration; Respiratory Mechanics; Swine; Tomography, X-Ray Computed | 2014 |
Adenovector-mediated gene transfer of lysophosphatidylcholine acyltransferase 1 attenuates oleic acid-induced acute lung injury in rats.
Topics: 1-Acylglycerophosphocholine O-Acyltransferase; Acute Lung Injury; Adenoviridae; Animals; Cell Death; Cells, Cultured; Disease Models, Animal; Enzyme-Linked Immunosorbent Assay; Genetic Therapy; Genetic Vectors; Male; Oleic Acid; Oxidative Stress; Random Allocation; Rats; Rats, Sprague-Dawley; Sensitivity and Specificity | 2014 |
Identification and examination of a novel 9-bp insert/deletion polymorphism on porcine SFTPA1 exon 2 associated with acute lung injury using an oleic acid-acute lung injury model.
Topics: Acute Lung Injury; Animals; Biomarkers; Disease Models, Animal; Exons; Extravascular Lung Water; Gene Deletion; Gene Expression; Genetic Association Studies; Genetic Markers; Humans; Mutagenesis, Insertional; Oleic Acid; Polymorphism, Genetic; Pulmonary Surfactant-Associated Protein A; Swine | 2015 |
Human peripheral blood CD34+ cells attenuate oleic acid-induced acute lung injury in rats.
Topics: Acute Lung Injury; Adult; Adult Stem Cells; Animals; Antigens, CD34; Capillary Permeability; Cell Adhesion Molecules; Cell- and Tissue-Based Therapy; Cells, Cultured; Female; Humans; Inflammation; Intercellular Adhesion Molecule-1; Interleukin-10; Lung; Oleic Acid; Rats; Rats, Sprague-Dawley; Tumor Necrosis Factor-alpha; Up-Regulation | 2015 |
Endogeous sulfur dioxide protects against oleic acid-induced acute lung injury in association with inhibition of oxidative stress in rats.
Topics: Acetylcysteine; Acute Lung Injury; Analysis of Variance; Animals; Apoptosis; Asparagine; Aspartate Aminotransferases; Blotting, Western; Colorimetry; Fluorescence; Glutathione; Immunohistochemistry; In Situ Nick-End Labeling; Oleic Acid; Oxidative Stress; Rats; Reactive Oxygen Species; Sulfur Dioxide | 2015 |
Regulation of epithelial sodium channel expression by oestradiol and progestogen in alveolar epithelial cells.
Topics: 11-beta-Hydroxysteroid Dehydrogenase Type 2; Acute Lung Injury; Adrenocorticotropic Hormone; Animals; Animals, Newborn; Bronchoalveolar Lavage Fluid; Carbenoxolone; Dexamethasone; Disease Models, Animal; Epithelial Cells; Epithelial Sodium Channels; Estradiol; Female; Gene Expression Regulation; Glucocorticoids; Lung; Male; Oleic Acid; Progestins; Pulmonary Edema; Rats; Rats, Sprague-Dawley | 2015 |
Effects of the mTOR inhibitor everolimus and the PI3K/mTOR inhibitor NVP-BEZ235 in murine acute lung injury models.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Everolimus; Female; Humans; Imidazoles; Interleukin-6; Lipopolysaccharides; Mice; Oleic Acid; Phosphatidylinositol 3-Kinases; Phosphoinositide-3 Kinase Inhibitors; Quinolines; TOR Serine-Threonine Kinases; Tumor Necrosis Factor-alpha | 2015 |
Urinary Trypsin Inhibitor Attenuates Acute Lung Injury by Improving Endothelial Progenitor Cells Functions.
Topics: Acute Lung Injury; Animals; Anti-Inflammatory Agents, Non-Steroidal; Capillaries; Endothelial Progenitor Cells; Enzyme Activation; Eosine Yellowish-(YS); Gene Expression; Glycoproteins; Hematoxylin; Histocytochemistry; Injections, Intravenous; Leukocytes, Mononuclear; Lung; Male; Nitric Oxide; Nitric Oxide Synthase Type III; Oleic Acid; Phosphorylation; Proto-Oncogene Proteins c-akt; Rabbits; Signal Transduction | 2015 |
Lung ultrasound is a reliable method for evaluating extravascular lung water volume in rodents.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Extravascular Lung Water; Lung; Male; Oleic Acid; Rats; Rats, Sprague-Dawley; Reproducibility of Results; Sodium Chloride; Ultrasonography | 2015 |
Electrical impedance tomography (EIT) for quantification of pulmonary edema in acute lung injury.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Electric Impedance; Extravascular Lung Water; Oleic Acid; Pulmonary Edema; Random Allocation; Sodium Chloride; Swine; Tomography, X-Ray Computed | 2016 |
Therapeutic time window for angiotensin-(1-7) in acute lung injury.
Topics: Acute Lung Injury; Angiotensin I; Animals; Hemodynamics; Infusions, Intravenous; Male; Oleic Acid; Peptide Fragments; Rats; Rats, Sprague-Dawley; Time Factors | 2016 |
Effects of superimposed tissue weight on regional compliance of injured lungs.
Topics: Acute Lung Injury; Animals; Breath Holding; Disease Models, Animal; Elasticity; Gravitation; Hemodynamics; Lung; Lung Compliance; Lung Volume Measurements; Models, Cardiovascular; Oleic Acid; Organ Size; Pressure; Pulmonary Gas Exchange; Regression Analysis; Respiration, Artificial; Swine; Tomography, X-Ray Computed | 2016 |
Human mesenchymal stem cells attenuate early damage in a ventilated pig model of acute lung injury.
Topics: Acute Lung Injury; Animals; Cell Nucleus; Disease Models, Animal; Hemodynamics; Humans; Interleukin-10; Interleukin-8; Lung; Mesenchymal Stem Cell Transplantation; Mesenchymal Stem Cells; Microscopy, Fluorescence; Neutrophils; NF-kappa B; Oleic Acid; Respiration, Artificial; Respiratory Rate; Swine | 2016 |
An adaptation for exhaled breath condensate collection in rabbits.
Topics: Acute Lung Injury; Animals; Biomarkers; Breath Tests; Disease Models, Animal; Feasibility Studies; Oleic Acid; Rabbits | 2016 |
Dual hit lipopolysaccharide & oleic acid combination induced rat model of acute lung injury/acute respiratory distress syndrome.
Topics: Acute Lung Injury; Animals; Bronchoalveolar Lavage Fluid; Disease Models, Animal; Humans; Lipopolysaccharides; Lung; Oleic Acid; Rats; Rats, Wistar; Respiratory Distress Syndrome | 2016 |
Thromboxane A2 exacerbates acute lung injury via promoting edema formation.
Topics: Acute Lung Injury; Animals; Hydrochloric Acid; Lipopolysaccharides; Male; Mice; Mice, Inbred BALB C; Neutrophil Infiltration; Neutrophils; Oleic Acid; Pulmonary Edema; Thromboxane A2 | 2016 |
Low concentration of oleic acid exacerbates LPS-induced cell death and inflammation in human alveolar epithelial cells.
Topics: A549 Cells; Acute Lung Injury; Alveolar Epithelial Cells; Cell Death; Humans; Inflammation; Lipopolysaccharides; Oleic Acid; Oxidative Stress | 2017 |
Effect of recruitment and body positioning on lung volume and oxygenation in acute lung injury model.
Topics: Acute Lung Injury; Animals; Blood Gas Analysis; Disease Models, Animal; Dogs; Lung; Lung Volume Measurements; Male; Oleic Acid; Positive-Pressure Respiration; Posture; Pulmonary Circulation; Pulmonary Gas Exchange; Respiratory Function Tests; Tidal Volume; Time Factors; Tomography, Spiral Computed | 2008 |
Inhibition of the phosphatase PTEN protects mice against oleic acid-induced acute lung injury.
Topics: Acute Lung Injury; Animals; Bronchoalveolar Lavage Fluid; Chemokines; Dose-Response Relationship, Drug; Extracellular Signal-Regulated MAP Kinases; In Situ Nick-End Labeling; L-Lactate Dehydrogenase; Lung; Mice; Mice, Inbred C57BL; Oleic Acid; Organometallic Compounds; Phenanthrolines; Proto-Oncogene Proteins c-akt; PTEN Phosphohydrolase; Signal Transduction; Tumor Necrosis Factor-alpha | 2009 |
Effects of bolus injection of soybean-based fat emulsion and fatty acids on pulmonary gas exchange function.
Topics: Acute Lung Injury; alpha-Linolenic Acid; Animals; Capillary Permeability; Emulsions; Fat Emulsions, Intravenous; Fatty Acids; Glycine max; Guinea Pigs; Linoleic Acid; Lung; Oleic Acid; Oxygen; Partial Pressure; Pulmonary Gas Exchange; Soybean Oil; Stearic Acids | 2009 |
A novel and stable "two-hit" acute lung injury model induced by oleic acid in piglets.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Oleic Acid; Random Allocation; Swine; Swine Diseases; Swine, Miniature | 2009 |
[Role of epithelial sodium channel alpha subunit in terbutaline-induced transient enhancement of pulmonary edema clearance in adult rats with acute lung injury].
Topics: Acute Lung Injury; Animals; Epithelial Sodium Channels; Female; Male; Oleic Acid; Pulmonary Edema; Rats; Rats, Sprague-Dawley; RNA, Messenger; Terbutaline | 2009 |
[Effect of penehyclidine hydrochloride on oleic acid-acute lung injury in canine during ventilation].
Topics: Acute Lung Injury; Animals; Dogs; Male; Oleic Acid; Quinuclidines; Respiration, Artificial; Respiratory Distress Syndrome | 2009 |
[Changes of the sodium channel in alveolar type II cells in pulmonary water transport in rats with oleic acid-induced acute lung injury].
Topics: Acute Lung Injury; Alveolar Epithelial Cells; Animals; Epithelial Sodium Channels; Male; Oleic Acid; Pulmonary Alveoli; Rats; Rats, Sprague-Dawley | 2009 |
Protection afforded by a herbal medicine, Sho-seiryu-to (TJ-19), against oleic acid-induced acute lung injury in guinea-pigs.
Topics: Acute Lung Injury; Animals; Capillary Permeability; Disease Models, Animal; Drugs, Chinese Herbal; Guinea Pigs; Herbal Medicine; Male; Oleic Acid; Oxidative Stress; Phytotherapy; Plants, Medicinal; Thromboxane A2 | 2009 |
Increased isoprostane levels in oleic acid-induced lung injury.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Isoprostanes; Oleic Acid; Sheep | 2009 |
[Effect of MAPK signal transduction pathway inhibitor U0126 on aquaporin 4 expression in alveolar type II cells in rats with oleic acid-induced acute lung injury].
Topics: Acute Lung Injury; Animals; Aquaporin 4; Butadienes; Extravascular Lung Water; Gene Expression Regulation; Male; MAP Kinase Signaling System; Nitriles; Oleic Acid; Pulmonary Alveoli; Rats; Rats, Sprague-Dawley; Respiratory Distress Syndrome; RNA, Messenger | 2009 |
Stability of the animal model of oleic acid-induced acute lung injury.
Topics: Acute Lung Injury; Analysis of Variance; Animals; Dogs; Hemodynamics; Male; Models, Animal; Oleic Acid; Pulmonary Gas Exchange; Respiratory Mechanics; Time Factors | 2009 |
A selective thromboxane A2 (TXA2) synthase inhibitor, ozagrel, attenuates lung injury and decreases monocyte chemoattractant protein-1 and interleukin-8 mRNA expression in oleic acid-induced lung injury in guinea pigs.
Topics: Acute Lung Injury; Animals; Bronchoalveolar Lavage Fluid; Chemokine CCL2; Eosine Yellowish-(YS); Guinea Pigs; Interleukin-8; Leukocyte Count; Macrophages; Male; Methacrylates; Methylene Blue; Neutrophils; Oleic Acid; Proteins; RNA, Messenger; Staining and Labeling; Thromboxane A2; Time Factors | 2009 |
Humanized monoclonal antibody against the chemokine CXCL-8 (IL-8) effectively prevents acute lung injury.
Topics: Acute Lung Injury; Animals; Antibodies, Monoclonal; Bronchoalveolar Lavage; Capillary Permeability; Edema; Endotoxins; Female; Fibrin; Hypoxia; Interleukin-1; Interleukin-8; Lung; Male; Mice; Neutrophils; Oleic Acid; Rabbits; Respiratory Distress Syndrome; Tumor Necrosis Factor-alpha | 2010 |
Effects of spontaneous breathing during airway pressure release ventilation on cerebral and spinal cord perfusion in experimental acute lung injury.
Topics: Acute Lung Injury; Animals; Body Temperature; Cerebrovascular Circulation; Heart Rate; Hemodynamics; Hemoglobins; Oleic Acid; Oxygen; Positive-Pressure Respiration; Pulmonary Gas Exchange; Regional Blood Flow; Respiration; Respiration, Artificial; Respiratory Mechanics; Spinal Cord; Swine; Tidal Volume | 2010 |
Gene expression profiles characterize inflammation stages in the acute lung injury in mice.
Topics: Acute Lung Injury; Animals; Female; Inflammation; Lung; Mice; Mice, Inbred C57BL; Oleic Acid; Oligonucleotide Array Sequence Analysis; Polymerase Chain Reaction; Time Factors | 2010 |
Radiographic lung density assessed by computed tomography is associated with extravascular lung water content.
Topics: Acute Lung Injury; Algorithms; Animals; Dye Dilution Technique; Extravascular Lung Water; Hemodynamics; Lung; Oleic Acid; Pulmonary Gas Exchange; Reproducibility of Results; Respiratory Distress Syndrome; Sheep; Thermodilution; Tomography, X-Ray Computed | 2010 |
[Effects of hyperbaric oxygen on the acute lung injury induced by oleic acid in rats].
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Hyperbaric Oxygenation; Interleukin-1beta; Interleukin-6; Lung; Oleic Acid; Rats; Rats, Sprague-Dawley; Tumor Necrosis Factor-alpha | 2010 |
Pilot study of vaporization of perfluorohexane during high-frequency oscillatory ventilation in experimental acute lung injury.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Fluorocarbons; High-Frequency Ventilation; Inhalation Exposure; Liquid Ventilation; Oleic Acid; Pilot Projects; Pulmonary Gas Exchange; Sheep; Volatilization | 2010 |
Dipyrithione attenuates oleic acid-induced acute lung injury.
Topics: Acute Lung Injury; Animals; Capillary Permeability; Intercellular Adhesion Molecule-1; Interleukin-1beta; Male; Mice; Mice, Inbred ICR; Oleic Acid; Peroxidase; Pyridines; Tumor Necrosis Factor-alpha; Vascular Cell Adhesion Molecule-1 | 2011 |
Ventilator-associated lung injury superposed to oleic acid infusion or surfactant depletion: histopathological characteristics of two porcine models of acute lung injury.
Topics: Acute Lung Injury; Animals; Bronchoalveolar Lavage Fluid; Disease Models, Animal; Female; Humans; Infusions, Intravenous; Male; Oleic Acid; Pulmonary Surfactants; Respiration, Artificial; Respiratory Distress Syndrome; Swine; Therapeutic Irrigation | 2010 |
[Protective effect of hydroxysafflor yellow A against acute lung injury induced by oleic acid and lipopolysaccharide in rats].
Topics: Acute Lung Injury; Animals; Carthamus tinctorius; Chalcone; Flowers; Intercellular Adhesion Molecule-1; Interleukin-1beta; Interleukin-6; Lipopolysaccharides; Lung; Male; Oleic Acid; Plants, Medicinal; Quinones; Rats; Rats, Wistar; RNA, Messenger; Tumor Necrosis Factor-alpha | 2010 |
High-flow nasal cannula: impact on oxygenation and ventilation in an acute lung injury model.
Topics: Acute Lung Injury; Animals; Animals, Newborn; Blood Gas Analysis; Disease Models, Animal; Oleic Acid; Oxygen Inhalation Therapy; Pulmonary Gas Exchange; Swine; Trachea | 2011 |
Volume loading reduces pulmonary vascular resistance in ventilated animals with acute lung injury: evaluation of RV afterload.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Dogs; Female; Lung Compliance; Male; Models, Cardiovascular; Oleic Acid; Positive-Pressure Respiration; Pulmonary Circulation; Stroke Volume; Vascular Resistance; Ventricular Dysfunction, Right; Ventricular Function, Left; Ventricular Function, Right; Ventricular Pressure | 2011 |
Chronic or high dose acute caffeine treatment protects mice against oleic acid-induced acute lung injury via an adenosine A2A receptor-independent mechanism.
Topics: Acute Lung Injury; Animals; Caffeine; Cyclic AMP; Cytokines; Dose-Response Relationship, Drug; Drug Administration Schedule; Gene Expression Regulation; Lung; Mice; Neutrophil Infiltration; Oleic Acid; Receptor, Adenosine A2A; Water | 2011 |
Long-term simvastatin attenuates lung injury and oxidative stress in murine acute lung injury models induced by oleic Acid and endotoxin.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Dose-Response Relationship, Drug; Endotoxins; Follow-Up Studies; Hydroxymethylglutaryl-CoA Reductase Inhibitors; Injections, Intraperitoneal; Mice; Oleic Acid; Oxidative Stress; Simvastatin; Time Factors | 2011 |
Arachidonic acid products in airway nociceptor activation during acute lung injury.
Topics: Acute Lung Injury; Animals; Arachidonic Acid; Indomethacin; Ketoconazole; Male; Nociceptors; Oleic Acid; Rabbits; Thromboxane-A Synthase | 2011 |
Resolution of pulmonary edema with variable mechanical ventilation in a porcine model of acute lung injury.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Extravascular Lung Water; Hemodynamics; Oleic Acid; Pulmonary Edema; Pulmonary Gas Exchange; Respiration, Artificial; Respiratory Distress Syndrome; Swine; Thermodilution; Time Factors; Tomography, X-Ray Computed | 2011 |
Effects of low potassium dextran glucose solution on oleic acid-induced acute lung injury in juvenile piglets.
Topics: Acute Lung Injury; Animals; Dextrans; Endothelin-1; Female; Glucose; Interleukin-10; Male; Oleic Acid; Swine; Tumor Necrosis Factor-alpha | 2011 |
VEGF, Bcl-2 and Bad regulated by angiopoietin-1 in oleic acid induced acute lung injury.
Topics: Acute Lung Injury; Angiopoietin-1; Animals; Apoptosis; bcl-Associated Death Protein; Enzyme Activation; Female; Mice; Mice, Inbred BALB C; Oleic Acid; Proto-Oncogene Proteins; Proto-Oncogene Proteins c-akt; Proto-Oncogene Proteins c-bcl-2; Recombinant Proteins; Up-Regulation; Vascular Endothelial Growth Factor A | 2011 |
The impact of sodium aescinate on acute lung injury induced by oleic acid in rats.
Topics: Acute Lung Injury; Animals; Arteries; Blood Gas Analysis; Escin; Male; Malondialdehyde; Matrix Metalloproteinase 9; Oleic Acid; Oxygen; Rats; Rats, Sprague-Dawley; Sodium Compounds; Superoxide Dismutase; Tissue Inhibitor of Metalloproteinase-1 | 2011 |
[Expression of RhoA in the lung tissue of acute lung injury rats and the influence of RhoA on the expression of IL-8 and IL-10].
Topics: Acute Lung Injury; Animals; Interleukin-10; Interleukin-8; Lung; Male; Oleic Acid; Rats; Rats, Sprague-Dawley; rhoA GTP-Binding Protein; RNA, Messenger | 2011 |
Inhaled neutrophil elastase inhibitor reduces oleic acid-induced acute lung injury in rats.
Topics: Acute Lung Injury; Administration, Inhalation; Albumins; Animals; Blood Gas Analysis; Bronchoalveolar Lavage Fluid; Cell Count; Extravascular Lung Water; Female; Glycine; Injections, Intravenous; Leukocyte Count; Leukocyte Elastase; Oleic Acid; Ovalbumin; Peroxidase; Proteinase Inhibitory Proteins, Secretory; Rats; Rats, Sprague-Dawley; Serum Albumin, Bovine; Sulfonamides; Survival Analysis | 2012 |
[Protective function of melatonin to acute lung injury and its mechanisms in rats caused by oleic acid].
Topics: Acute Lung Injury; Animals; Down-Regulation; Intercellular Adhesion Molecule-1; Male; Melatonin; NF-kappa B; Oleic Acid; P-Selectin; Protective Agents; Rats; Rats, Sprague-Dawley | 2011 |
Effect of endogenous hydrogen sulfide on oxidative stress in oleic acid-induced acute lung injury in rats.
Topics: Acute Lung Injury; Animals; Glutathione; Hydrogen Sulfide; Lung; Male; Malondialdehyde; Oleic Acid; Oxidative Stress; Rats; Rats, Sprague-Dawley; Superoxide Dismutase | 2011 |
A novel, stable and reproducible acute lung injury model induced by oleic acid in immature piglet.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Female; Male; Oleic Acid; Swine | 2011 |
Partial liquid ventilation decreases tissue and serum tumor necrosis factor-α concentrations in acute lung injury model of immature piglet induced by oleic acid.
Topics: Acute Lung Injury; Animals; Animals, Newborn; Liquid Ventilation; Oleic Acid; Swine; Tumor Necrosis Factor-alpha | 2012 |
Reduced plasma nonesterified fatty acid levels and the advent of an acute lung injury in mice after intravenous or enteral oleic acid administration.
Topics: Acute Lung Injury; Albumins; Animals; Bronchoalveolar Lavage Fluid; Dinoprostone; Dose-Response Relationship, Drug; Fatty Acids; Fatty Acids, Nonesterified; Fatty Acids, Unsaturated; Gastric Mucosa; Infusions, Intravenous; Leukotriene B4; Lipids; Male; Mice; Oleic Acid; Peroxisome Proliferator-Activated Receptors | 2012 |
Effects of lycopene on the model of oleic acid-induced acute lung injury.
Topics: Acute Lung Injury; Animals; Antioxidants; Carotenoids; Catalase; Disease Models, Animal; Female; Glutathione Peroxidase; Lycopene; Malondialdehyde; Oleic Acid; Random Allocation; Rats; Rats, Wistar; Superoxide Dismutase | 2012 |
Molecular-biological analysis of acute lung injury (ALI) induced by heat exposure and/or intravenous administration of oleic acid.
Topics: Acute Lung Injury; Administration, Intravenous; Animals; Disease Models, Animal; Embolism, Fat; Hot Temperature; Humans; Hyperthermia, Induced; Japan; Male; Oleic Acid; Rats; Rats, Wistar; Respiratory Distress Syndrome | 2012 |
Intravenous transplantation of mesenchymal stem cells attenuates oleic acid induced acute lung injury in rats.
Topics: Acute Lung Injury; Animals; Cell Differentiation; Interleukin-10; Male; Mesenchymal Stem Cells; Oleic Acid; Rats; Rats, Sprague-Dawley; Tumor Necrosis Factor-alpha | 2012 |
Protective effect of low potassium dextran solution on acute kidney injury following acute lung injury induced by oleic acid in piglets.
Topics: Acute Kidney Injury; Acute Lung Injury; Animals; Dextrans; Disease Models, Animal; Hemodynamics; Interleukin-6; Kidney; Oleic Acid; Swine | 2012 |
[Influence of different doses of porcine pulmonary on the therapeutic effects in rats with oleic acid induced acute lung injury].
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Dose-Response Relationship, Drug; Female; Lung; Male; Oleic Acid; Pulmonary Surfactants; Random Allocation; Rats; Rats, Sprague-Dawley; Swine | 2006 |
[The protective effects of intermedin 1-53 on oleic acid induced acute lung injury in rats].
Topics: Acute Lung Injury; Animals; Lung; Male; Malondialdehyde; Oleic Acid; Peroxidase; Pyrrolizidine Alkaloids; Rats; Rats, Wistar | 2006 |
[Effect of ulinastain on the expression of hemeoxygenase-1 in oleic acid-induced acute lung injury in rats].
Topics: Acute Lung Injury; Animals; Glycoproteins; Heme Oxygenase (Decyclizing); Lung; Male; Oleic Acid; Rats; Rats, Sprague-Dawley | 2007 |
[Influence of porcine pulmonary surfactant administered at different time on therapeutic effects in rats with oleic acid induced acute lung injury].
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Female; Male; Oleic Acid; Pulmonary Surfactants; Random Allocation; Rats; Rats, Sprague-Dawley; Swine; Time Factors | 2008 |
[Anisodamine inhalation ameliorates rat acute lung injury caused by oleic acid].
Topics: Acute Lung Injury; Administration, Inhalation; Animals; Disease Models, Animal; Lung; Male; Oleic Acid; Random Allocation; Rats; Rats, Sprague-Dawley; Solanaceous Alkaloids | 2008 |
[The protective effect of angiopoietin-1 on early acute lung injury induced by oleic acid in mice].
Topics: Acute Lung Injury; Angiopoietin-1; Animals; Bronchoalveolar Lavage Fluid; Disease Models, Animal; Enzyme-Linked Immunosorbent Assay; Female; Immunohistochemistry; Interleukin-6; Lung; Mice; Mice, Inbred BALB C; Oleic Acid; Protective Agents; Random Allocation; Vascular Endothelial Growth Factor A | 2007 |
[Role of AQP-4 in pulmonary water metabolism in rats in early stage of oleic acid-induced acute lung injury].
Topics: Acute Lung Injury; Animals; Aquaporin 4; Immunohistochemistry; Male; Oleic Acid; Pulmonary Alveoli; Random Allocation; Rats; Rats, Sprague-Dawley; Reverse Transcriptase Polymerase Chain Reaction; RNA, Messenger; Up-Regulation; Water | 2008 |
[Association of glucocoid receptor binding activity and heat shock protein expressions after acute lung injury in mice].
Topics: Acute Lung Injury; Animals; Binding Sites; Female; HSP70 Heat-Shock Proteins; HSP90 Heat-Shock Proteins; Male; Mice; Oleic Acid; Radioligand Assay; Random Allocation; Receptors, Glucocorticoid | 2008 |