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  1. 12261
    “…Hematoxylin and eosin (H&E), terminal deoxynucleotidyl transferase dUTP nick end labeling (TUNEL) and dihydroethidium (DHE) staining were performed, and the contents of malondialdehyde (MDA) and glutathione (GSH) were detected. …”
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  2. 12262
    “…High temperature conditions increased (p < 0.05) liver malonaldehyde (MDA) concentration, but decreased (p < 0.05), body weight gain (BWG), feed intake (FI), liver superoxide dismutase (SOD), total antioxidant capacity (T-AOC), glutathione peroxidase (GSH-Px), glutathione S-transferase (GST), and glutathione (GSH) levels in broilers. …”
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  3. 12263
    “…We also identified several tandem isoforms of the detoxifying esterase B1 and glutathione S-transferases, which are putatively associated with organophosphate resistance.…”
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  4. 12264
    “…Flow cytometric analysis and terminal deoxynucleotidyl transferase dUTP nick-end labeling assay revealed increased numbers of annexin-V-positive cells and DNA fragmentation. …”
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  5. 12265
    “…INTRODUCTION: O-GlcNAcylation is a type of reversible post-translational modification on Ser/Thr residues of intracellular proteins in eukaryotic cells, which is generated by the sole O-GlcNAc transferase (OGT) and removed by O-GlcNAcase (OGA). …”
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  6. 12266
    “…In addition, the downregulated shikimate O-hydroxycinnamolytransferase (LfHCT, TRINITY DN31661 c0 g1 i1) and hydroxycinnamoyl-CoA quinate/shikimate transferase (LfHQT4, TRINITY DN15180 c0 g1 i1) genes led to a reduction in CQAs. …”
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  7. 12267
  8. 12268
    “…Infants with CMV-positive status were noted to be older at presentation (88.5 days [65–150 days] vs. 83 days [45–160 days] P < 0.05) were more jaundiced at presentation (total bilirubin – 13.51 mg/dl [9.09–15.99 mg/dl] vs. 11.83 mg/dl [6.5–13.5 mg/dl] P < 0.05), had higher alkaline phosphatase (751.2 IU/L [387–1951 IU/L] vs. 621.75 IU/L [172–857 IU/L] P < 0.05), higher gamma-glutamyl transferase levels (505.58 IU/L [376–1127 IU/L] vs. 376.75 IU/L [186–624 IU/L] P < 0.05), and had higher incidence of splenomegaly. …”
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  9. 12269
    “…Superoxide dismutase (SOD), catalase (CAT), glutathione peroxidase (GPx) and glutathione-s-transferase (GST) were noticeably improved using Zn-NPs diets in fish reared under with or without stressors. …”
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  10. 12270
    “…The activities of copper-zinc superoxide dismutase, manganese superoxide dismutase, catalase, glutathione S-transferase, glutathione reductase, and glutathione peroxidase were also enhanced by supplementation with 400–600 mg/kg MOS. …”
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  11. 12271
    “…Concerning the gene expression pattern, heat-shock protein70, glutathione-S-transferase, glutathione peroxidase, and interleukin-1β (IL-1β) were elevated significantly in both supplemented groups. …”
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  12. 12272
    “…The levels of AST (p = 0.038), alanine aminotransferase (ALT) (p = 0.003), and gamma-glutamyl transferase (GGT) (p = 0.047) also significantly diminished 12 weeks after pemafibrate administration compared to before administration (p < 0.05). …”
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  13. 12273
    “…Further according to the results of weighted gene coexpression correlation network analysis (WGCNA), the turquoise and brown module was highly positively correlated with both of the content of citrate and anthocyanin, and p-type ATPase (PH8), phosphoenolpyruvate carboxylase kinase (PEPCK), chalcone isomerase (CHI), flavanone 3-hydroxylase (F3H), flavonoid 3’-hydroxylase (F3’H) and glutathione S transferase (GST) were considered key structural genes. …”
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  14. 12274
    “…Glycosyltransferase 8 domain containing 1 (GLT8D1) and GLT8D2, as members of the glycosyltransferase family proteins, are associated with transferase activity. However, the association between GLT8D1/2 and gastric cancer (GC) remains unclear. …”
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  15. 12275
    “…Agonists reduced the levels of the liver enzymes aspartate transferase and alanine transaminase in the blood, whereas antagonist administration or CD39, CD73, and A(2B)R KO enhanced enzyme levels. …”
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  16. 12276
    “…Coimmunoprecipitation and GST (glutathione S-transferase) pulldown analyses demonstrated that DEF6 can directly interact with small GTPase Ras-related C3 botulinum toxin substrate 1 (Rac1), and the Rac1 activity assay revealed that the activity of Rac1 is altered with DEF6 expression in TAC-cardiac hypertrophy and PE-triggered cardiomyocyte hypertrophy. …”
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  17. 12277
    “…Reversely, β-Endorphin significantly increased Superoxide dismutase, Catalase, glutathione, Glutathione-S-Transferase, and activation of NF-E2-related factor 2 (Nrf-2) via Kelch-like ECH-associated protein 1 (Keap1), independent pathway in the lung restoring architectural alveolar and bronchial changes. …”
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  18. 12278
    “…The effects of the hexane fraction (SAF-Hex) on HeLa cell viability, cell cycle protein expression, apoptosis, and DNA damage were evaluated using cytotoxicity assays, Western blotting, quantitative PCR, 4′,6-diamidino-2-phenylindole (DAPI) staining, and a terminal deoxynucleotidyl transferase dUTP nick end labeling (TUNEL) assay. RESULTS: SAF-Hex selectively inhibited HeLa cell viability with an IC50 of 4.20 ± 0.36 µg/mL and a selectivity index of 5.11 ± 0.58. …”
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  19. 12279
    “…The most frequent (⩾2% of patients) drug-related treatment-emergent grade 3/4 adverse events were reversible liver alanine transferase elevation (10%), neutropaenia (8%), nausea, vomiting, and fatigue (5% each). …”
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  20. 12280
    por Fall, Tove, Hägg, Sara, Mägi, Reedik, Ploner, Alexander, Fischer, Krista, Horikoshi, Momoko, Sarin, Antti-Pekka, Thorleifsson, Gudmar, Ladenvall, Claes, Kals, Mart, Kuningas, Maris, Draisma, Harmen H. M., Ried, Janina S., van Zuydam, Natalie R., Huikari, Ville, Mangino, Massimo, Sonestedt, Emily, Benyamin, Beben, Nelson, Christopher P., Rivera, Natalia V., Kristiansson, Kati, Shen, Huei-yi, Havulinna, Aki S., Dehghan, Abbas, Donnelly, Louise A., Kaakinen, Marika, Nuotio, Marja-Liisa, Robertson, Neil, de Bruijn, Renée F. A. G., Ikram, M. Arfan, Amin, Najaf, Balmforth, Anthony J., Braund, Peter S., Doney, Alexander S. F., Döring, Angela, Elliott, Paul, Esko, Tõnu, Franco, Oscar H., Gretarsdottir, Solveig, Hartikainen, Anna-Liisa, Heikkilä, Kauko, Herzig, Karl-Heinz, Holm, Hilma, Hottenga, Jouke Jan, Hyppönen, Elina, Illig, Thomas, Isaacs, Aaron, Isomaa, Bo, Karssen, Lennart C., Kettunen, Johannes, Koenig, Wolfgang, Kuulasmaa, Kari, Laatikainen, Tiina, Laitinen, Jaana, Lindgren, Cecilia, Lyssenko, Valeriya, Läärä, Esa, Rayner, Nigel W., Männistö, Satu, Pouta, Anneli, Rathmann, Wolfgang, Rivadeneira, Fernando, Ruokonen, Aimo, Savolainen, Markku J., Sijbrands, Eric J. G., Small, Kerrin S., Smit, Jan H., Steinthorsdottir, Valgerdur, Syvänen, Ann-Christine, Taanila, Anja, Tobin, Martin D., Uitterlinden, Andre G., Willems, Sara M., Willemsen, Gonneke, Witteman, Jacqueline, Perola, Markus, Evans, Alun, Ferrières, Jean, Virtamo, Jarmo, Kee, Frank, Tregouet, David-Alexandre, Arveiler, Dominique, Amouyel, Philippe, Ferrario, Marco M., Brambilla, Paolo, Hall, Alistair S., Heath, Andrew C., Madden, Pamela A. F., Martin, Nicholas G., Montgomery, Grant W., Whitfield, John B., Jula, Antti, Knekt, Paul, Oostra, Ben, van Duijn, Cornelia M., Penninx, Brenda W. J. H., Davey Smith, George, Kaprio, Jaakko, Samani, Nilesh J., Gieger, Christian, Peters, Annette, Wichmann, H.-Erich, Boomsma, Dorret I., de Geus, Eco J. C., Tuomi, TiinaMaija, Power, Chris, Hammond, Christopher J., Spector, Tim D., Lind, Lars, Orho-Melander, Marju, Palmer, Colin Neil Alexander, Morris, Andrew D., Groop, Leif, Järvelin, Marjo-Riitta, Salomaa, Veikko, Vartiainen, Erkki, Hofman, Albert, Ripatti, Samuli, Metspalu, Andres, Thorsteinsdottir, Unnur, Stefansson, Kari, Pedersen, Nancy L., McCarthy, Mark I., Ingelsson, Erik, Prokopenko, Inga
    Publicado 2013
    “…For quantitative traits, our results provide novel evidence for a causal effect of adiposity on the liver enzymes alanine aminotransferase and gamma-glutamyl transferase and confirm previous reports of a causal effect of adiposity on systolic and diastolic blood pressure, fasting insulin, 2-h post-load glucose from the oral glucose tolerance test, C-reactive protein, triglycerides, and high-density lipoprotein cholesterol levels (all p<0.05). …”
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