Redox Biology and Liver Fibrosis
暂无分享,去创建一个
[1] Sidharth Mehan,et al. The role of Smo-Shh/Gli signaling activation in the prevention of neurological and ageing disorders , 2023, Biogerontology.
[2] Xiaojie Lu,et al. PPAR-γ signaling in nonalcoholic fatty liver disease: Pathogenesis and therapeutic targets. , 2023, Pharmacology & therapeutics.
[3] V. Thannickal,et al. Pre‐clinical evidence of a dual NADPH oxidase 1/4 inhibitor (setanaxib) in liver, kidney and lung fibrosis , 2023, Journal of cellular and molecular medicine.
[4] Guixia Ling,et al. A bibliometric and visualized analysis of liver fibrosis from 2002 to 2022 , 2022, Journal of gastroenterology and hepatology.
[5] L. Vuillard,et al. Selective disruption of NRF2-KEAP1 interaction leads to NASH resolution and reduction of liver fibrosis in mice , 2022, JHEP reports : innovation in hepatology.
[6] J. Fernandez-Checa,et al. Role of Oxidative Stress in Liver Disorders , 2022, Livers.
[7] F. Song,et al. MitoQ alleviates carbon tetrachloride-induced liver fibrosis in mice through regulating JNK/YAP pathway. , 2022, Toxicology research.
[8] B. Medhi,et al. Recent Advancements in Antifibrotic Therapies for Regression of Liver Fibrosis , 2022, Cells.
[9] M. Volovitch,et al. An early Shh-H2O2 reciprocal regulatory interaction controls the regenerative program during zebrafish fin regeneration. , 2022, Journal of cell science.
[10] Gang Yin,et al. Wnt/β-catenin signalling: function, biological mechanisms, and therapeutic opportunities , 2022, Signal Transduction and Targeted Therapy.
[11] S. Friedman,et al. Hepatic fibrosis 2022: Unmet needs and a blueprint for the future , 2021, Hepatology.
[12] Xukun Deng,et al. Piperine inhibits AML-12 hepatocyte EMT and LX-2 HSC activation and alleviates mouse liver fibrosis provoked by CCl4: roles in the activation of the Nrf2 cascade and subsequent suppression of the TGF-β1/Smad axis. , 2021, Food & function.
[13] V. Nincevic,et al. Targeting the Wnt Signaling Pathway in Liver Fibrosis for Drug Options: An Update , 2021, Journal of clinical and translational hepatology.
[14] Irène Amblard,et al. Reciprocal Regulation of Shh Trafficking and H2O2 Levels via a Noncanonical BOC-Rac1 Pathway , 2021, bioRxiv.
[15] Sophia Seen. Chronic liver disease and oxidative stress – a narrative review , 2021, Expert review of gastroenterology & hepatology.
[16] J. Esplugues,et al. Understanding the implication of autophagy in the activation of hepatic stellate cells in liver fibrosis: are we there yet? , 2021, The Journal of pathology.
[17] Hui-qing Jiang,et al. MitoQ inhibits hepatic stellate cell activation and liver fibrosis by enhancing PINK1/parkin-mediated mitophagy , 2021, Open medicine.
[18] Layla Shojaie,et al. Cell Death in Liver Diseases: A Review , 2020, International journal of molecular sciences.
[19] P. Muriel,et al. Molecular Mechanisms That Link Oxidative Stress, Inflammation, and Fibrosis in the Liver , 2020, Antioxidants.
[20] D. Brenner,et al. Molecular and cellular mechanisms of liver fibrosis and its regression , 2020, Nature Reviews Gastroenterology & Hepatology.
[21] M. Conrad,et al. The Metabolic Underpinnings of Ferroptosis. , 2020, Cell metabolism.
[22] Christian H. Holland,et al. Hepatocyte-specific NRF2 activation controls fibrogenesis and carcinogenesis in steatohepatitis. , 2020, Journal of hepatology.
[23] Hongliang Li,et al. Corrigendum to "Role of oxidative stress in the pathogenesis of nonalcoholic fatty liver disease" [Free Radic. Biol. Med. 152 (2020) 116-141]. , 2020, Free radical biology & medicine.
[24] R. Chung,et al. Hepatic Transferrin Plays a Role in Systemic Iron Homeostasis and Liver Ferroptosis. , 2020, Blood.
[25] E. Crouchet,et al. Liver Fibrosis: Mechanistic Concepts and Therapeutic Perspectives , 2020, Cells.
[26] L. Di Marcotullio,et al. Phenformin Inhibits Hedgehog-Dependent Tumor Growth through a Complex I-Independent Redox/Corepressor Module. , 2020, Cell reports.
[27] Yun Zhang,et al. TGF-β3 Induces Autophagic Activity by Increasing ROS Generation in a NOX4-Dependent Pathway , 2019, Mediators of inflammation.
[28] P. Angeli,et al. Mitochondria-targeted antioxidant mitoquinone attenuates liver inflammation and fibrosis in cirrhotic rats. , 2019, American journal of physiology. Gastrointestinal and liver physiology.
[29] Baowei Hu,et al. Hedgehog signaling pathway regulates hexavalent chromium-induced liver fibrosis by activation of hepatic stellate cells. , 2019, Toxicology letters.
[30] I. Dikic,et al. Cellular quality control by the ubiquitin-proteasome system and autophagy , 2019, Science.
[31] K. Cusi,et al. Role of Vitamin E for Nonalcoholic Steatohepatitis in Patients With Type 2 Diabetes: A Randomized Controlled Trial , 2019, Diabetes Care.
[32] R. Mailloux,et al. Estimation of the hydrogen peroxide producing capacities of liver and cardiac mitochondria isolated from C57BL/6N and C57BL/6J mice , 2019, Free radical biology & medicine.
[33] R. Green,et al. Endoplasmic reticulum stress and liver diseases. , 2019, Liver research.
[34] Colin G. Miller,et al. Disulfide reductase systems in liver , 2018, British journal of pharmacology.
[35] Jun Li,et al. Emerging role and therapeutic implication of Wnt signaling pathways in liver fibrosis. , 2018, Gene.
[36] Miao Sui,et al. Magnesium isoglycyrrhizinate ameliorates liver fibrosis and hepatic stellate cell activation by regulating ferroptosis signaling pathway. , 2018, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[37] Soonkyu Chung,et al. Gamma‐Tocotrienol Attenuates the Hepatic Inflammation and Fibrosis by Suppressing Endoplasmic Reticulum Stress in Mice , 2018, Molecular nutrition & food research.
[38] B. Stockwell,et al. Unsolved mysteries: How does lipid peroxidation cause ferroptosis? , 2018, PLoS biology.
[39] J. Loscalzo,et al. NAD(H) and NADP(H) Redox Couples and Cellular Energy Metabolism. , 2018, Antioxidants & redox signaling.
[40] D. Harrison,et al. Experimental Nonalcoholic Steatohepatitis and Liver Fibrosis Are Ameliorated by Pharmacologic Activation of Nrf2 (NF-E2 p45-Related Factor 2) , 2017, Cellular and molecular gastroenterology and hepatology.
[41] E. Novo,et al. Therapeutic pro-fibrogenic signaling pathways in fibroblasts. , 2017, Advanced drug delivery reviews.
[42] B. Stockwell,et al. Ferroptosis: A Regulated Cell Death Nexus Linking Metabolism, Redox Biology, and Disease , 2017, Cell.
[43] T. Bai,et al. Haloperidol, a sigma receptor 1 antagonist, promotes ferroptosis in hepatocellular carcinoma cells. , 2017, Biochemical and biophysical research communications.
[44] S. Rhee,et al. The Role of Peroxiredoxins in the Transduction of H2O2 Signals. , 2017, Antioxidants & redox signaling.
[45] Huimin Wu,et al. Effect of modulation of PPAR-γ activity on Kupffer cells M1/M2 polarization in the development of non-alcoholic fatty liver disease , 2017, Scientific Reports.
[46] F. Tostevin,et al. Optimal Compartmentalization Strategies for Metabolic Microcompartments , 2017, Biophysical journal.
[47] T. Kietzmann. Metabolic zonation of the liver: The oxygen gradient revisited , 2017, Redox biology.
[48] Y. Koyama,et al. Liver inflammation and fibrosis. , 2017, The Journal of clinical investigation.
[49] S. Dooley,et al. TGF‐β signalling and liver disease , 2016, The FEBS journal.
[50] Sun-Mee Lee,et al. Melatonin enhances mitophagy and mitochondrial biogenesis in rats with carbon tetrachloride‐induced liver fibrosis , 2016, Journal of pineal research.
[51] Hyung-Ryong Kim,et al. Endoplasmic Reticulum Stress and Associated ROS , 2016, International journal of molecular sciences.
[52] A. Cuervo,et al. Regulation of Liver Metabolism by Autophagy. , 2016, Gastroenterology.
[53] C. Aiken,et al. Coenzyme Q10 prevents hepatic fibrosis, inflammation, and oxidative stress in a male rat model of poor maternal nutrition and accelerated postnatal growth1 , 2015, The American journal of clinical nutrition.
[54] L. Polito,et al. Xanthine Oxidoreductase-Derived Reactive Species: Physiological and Pathological Effects , 2015, Oxidative medicine and cellular longevity.
[55] A. Shah,et al. Hepatocyte Nicotinamide Adenine Dinucleotide Phosphate Reduced Oxidase 4 Regulates Stress Signaling, Fibrosis, and Insulin Sensitivity During Development of Steatohepatitis in Mice. , 2015, Gastroenterology.
[56] D. Brenner,et al. Deficiency of NOX1 or NOX4 Prevents Liver Inflammation and Fibrosis in Mice through Inhibition of Hepatic Stellate Cell Activation , 2015, PloS one.
[57] R. Schwabe,et al. Origin and Function of Myofibroblasts in the Liver , 2015, Seminars in Liver Disease.
[58] C. Trautwein,et al. Hepatic fibrosis: Concept to treatment. , 2015, Journal of hepatology.
[59] N. Nieto,et al. Extracellular matrix and liver disease. , 2014, Antioxidants & redox signaling.
[60] A. Samhan-Arias,et al. Purified NADH-cytochrome b5 reductase is a novel superoxide anion source inhibited by apocynin: sensitivity to nitric oxide and peroxynitrite. , 2014, Free radical biology & medicine.
[61] K. Iwaisako,et al. Origin of myofibroblasts in the fibrotic liver in mice , 2014, Proceedings of the National Academy of Sciences.
[62] S. Sollott,et al. Mitochondrial reactive oxygen species (ROS) and ROS-induced ROS release. , 2014, Physiological reviews.
[63] H. Devaraj,et al. Morin ameliorates chemically induced liver fibrosis in vivo and inhibits stellate cell proliferation in vitro by suppressing Wnt/β-catenin signaling. , 2014, Toxicology and applied pharmacology.
[64] C. Bunse,et al. Correction: The Proteome of Human Liver Peroxisomes: Identification of Five New Peroxisomal Constituents by a Label-Free Quantitative Proteomics Survey , 2013, PLoS ONE.
[65] I. Tikhanovich,et al. Forkhead box class O transcription factors in liver function and disease , 2013, Journal of gastroenterology and hepatology.
[66] S. Werner,et al. Endoplasmic reticulum stress induces fibrogenic activity in hepatic stellate cells through autophagy. , 2013, Journal of hepatology.
[67] J. Briscoe,et al. The mechanisms of Hedgehog signalling and its roles in development and disease , 2013, Nature Reviews Molecular Cell Biology.
[68] A. Orr,et al. Sites of reactive oxygen species generation by mitochondria oxidizing different substrates☆ , 2013, Redox biology.
[69] C. Bunse,et al. The Proteome of Human Liver Peroxisomes: Identification of Five New Peroxisomal Constituents by a Label-Free Quantitative Proteomics Survey , 2013, PloS one.
[70] R. Moreno-Sánchez,et al. Reactive oxygen species are generated by the respiratory complex II – evidence for lack of contribution of the reverse electron flow in complex I , 2013, The FEBS journal.
[71] J. Eisenbart,et al. Mitochondrial Reactive Oxygen Species Regulate Transforming Growth Factor-β Signaling , 2012, The Journal of Biological Chemistry.
[72] R. Eferl,et al. NADPH Oxidase NOX4 Mediates Stellate Cell Activation and Hepatocyte Cell Death during Liver Fibrosis Development , 2012, PloS one.
[73] M. Fransen,et al. Role of peroxisomes in ROS/RNS-metabolism: implications for human disease. , 2012, Biochimica et biophysica acta.
[74] R. Brandes,et al. Liver fibrosis and hepatocyte apoptosis are attenuated by GKT137831, a novel NOX4/NOX1 inhibitor in vivo. , 2012, Free radical biology & medicine.
[75] M. Ushio-Fukai,et al. Superoxide dismutases: role in redox signaling, vascular function, and diseases. , 2011, Antioxidants & redox signaling.
[76] N. Frangogiannis,et al. TGF-β signaling in fibrosis , 2011, Growth factors.
[77] K. Iwaisako,et al. The nicotinamide adenine dinucleotide phosphate oxidase (NOX) homologues NOX1 and NOX2/gp91phox mediate hepatic fibrosis in mice , 2011, Hepatology.
[78] B. Viollet,et al. Regulation of hepatic metabolism by AMPK. , 2011, Journal of hepatology.
[79] Eileen White,et al. Autophagy and Metabolism , 2010, Science.
[80] F. Frerman,et al. The electron transfer flavoprotein: ubiquinone oxidoreductases. , 2010, Biochimica et biophysica acta.
[81] H. Nojima,et al. Nucleoredoxin Sustains Wnt/β-Catenin Signaling by Retaining a Pool of Inactive Dishevelled Protein , 2010, Current Biology.
[82] M. Goyal,et al. Human catalase: looking for complete identity , 2010, Protein & Cell.
[83] P. Kuo,et al. Nitric oxide and redox regulation in the liver: Part I. General considerations and redox biology in hepatitis. , 2010, The Journal of surgical research.
[84] Leiliang Zhang,et al. Hepatitis C virus regulates transforming growth factor beta1 production through the generation of reactive oxygen species in a nuclear factor kappaB-dependent manner. , 2010, Gastroenterology.
[85] B. Neuschwander‐Tetri,et al. Pioglitazone, vitamin E, or placebo for nonalcoholic steatohepatitis. , 2010, The New England journal of medicine.
[86] Yuba Raj Pokharel,et al. Inhibition of liver fibrosis by solubilized coenzyme Q10: Role of Nrf2 activation in inhibiting transforming growth factor-beta1 expression. , 2009, Toxicology and applied pharmacology.
[87] G. Hirschfield,et al. Cholestasis and cholestatic syndromes , 2009, Current opinion in gastroenterology.
[88] R. Urtasun,et al. Reactive nitrogen species switch on early extracellular matrix remodeling via induction of MMP1 and TNFalpha. , 2009, Gastroenterology.
[89] H. Masutani,et al. Thioredoxin and thioredoxin binding protein 2 in the liver , 2008, IUBMB life.
[90] Stefano Toppo,et al. Evolutionary and structural insights into the multifaceted glutathione peroxidase (Gpx) superfamily. , 2008, Antioxidants & redox signaling.
[91] M. Torbenson,et al. Lack of inducible nitric oxide synthase leads to increased hepatic apoptosis and decreased fibrosis in mice after chronic carbon tetrachloride administration , 2008, Hepatology.
[92] D. Schuppan,et al. The hedgehog pathway regulates remodelling responses to biliary obstruction in rats , 2008, Gut.
[93] A. Brody,et al. The Latent Form of TGFβ1 is Induced by TNFα Through an ERK Specific Pathway and is Activated by Asbestos-Derived Reactive Oxygen Species In Vitro and In Vivo , 2008, Journal of immunotoxicology.
[94] R. Kaufman,et al. Endoplasmic reticulum stress and oxidative stress: a vicious cycle or a double-edged sword? , 2007, Antioxidants & redox signaling.
[95] J. Sicklick,et al. Hepatic accumulation of Hedgehog-reactive progenitors increases with severity of fatty liver damage in mice , 2007, Laboratory Investigation.
[96] N. Nieto. Oxidative‐stress and IL‐6 mediate the fibrogenic effects of rodent Kupffer cells on stellate cells , 2006, Hepatology.
[97] D. Brenner,et al. Hepatic stellate cells and the reversal of fibrosis , 2006, Journal of gastroenterology and hepatology.
[98] D. Brenner,et al. NADPH oxidase in the liver: defensive, offensive, or fibrogenic? , 2006, Gastroenterology.
[99] Natalie J Torok,et al. Phagocytosis of apoptotic bodies by hepatic stellate cells induces NADPH oxidase and is associated with liver fibrosis in vivo , 2006, Hepatology.
[100] K. Migita,et al. Peroxynitrite‐mediated matrix metalloproteinase‐2 activation in human hepatic stellate cells , 2005, FEBS letters.
[101] Junitsu Ito,et al. NAD(P)H oxidase plays a crucial role in PDGF‐induced proliferation of hepatic stellate cells , 2005, Hepatology.
[102] N. Bulleid,et al. Glutathione Is Required to Regulate the Formation of Native Disulfide Bonds within Proteins Entering the Secretory Pathway* , 2004, Journal of Biological Chemistry.
[103] R. Schwabe,et al. NADPH oxidase signal transduces angiotensin II in hepatic stellate cells and is critical in hepatic fibrosis. , 2003, The Journal of clinical investigation.
[104] Ying E. Zhang,et al. Smad-dependent and Smad-independent pathways in TGF-β family signalling , 2003, Nature.
[105] F. Stirpe,et al. Xanthine oxidoreductase activity in human liver disease , 2002, American Journal of Gastroenterology.
[106] S. Friedman,et al. Cytochrome P450 2E1-derived Reactive Oxygen Species Mediate Paracrine Stimulation of Collagen I Protein Synthesis by Hepatic Stellate Cells* , 2002, The Journal of Biological Chemistry.
[107] I. Fridovich,et al. Subcellular Distribution of Superoxide Dismutases (SOD) in Rat Liver , 2001, The Journal of Biological Chemistry.
[108] A. Parini,et al. Reactive oxygen species production by monoamine oxidases in intact cells , 1999, Naunyn-Schmiedeberg's Archives of Pharmacology.
[109] Y. Vodovotz,et al. Regulation of transforming growth factor beta1 by nitric oxide. , 1999, Cancer research.
[110] P. Muriel. Nitric oxide protection of rat liver from lipid peroxidation, collagen accumulation, and liver damage induced by carbon tetrachloride. , 1998, Biochemical pharmacology.
[111] T. Billiar,et al. Inducible nitric oxide synthase in the liver: regulation and function. , 1998, Biochemistry. Biokhimiia.
[112] M. Foschi,et al. Neutrophil‐derived superoxide anion induces lipid peroxidation and stimulates collagen synthesis in human hepatic stellate cells: Role of nitric oxide , 1997, Hepatology.
[113] M. Kretzschmar. Regulation of hepatic glutathione metabolism and its role in hepatotoxicity. , 1996, Experimental and toxicologic pathology : official journal of the Gesellschaft fur Toxikologische Pathologie.
[114] C. Trautwein,et al. Stimulation of collagen α1(I) gene expression is associated with lipid peroxidation in hepatocellular injury: A link to tissue fibrosis? , 1994 .
[115] H. Wesch,et al. Localization of xanthine oxidase in crystalline cores of peroxisomes. A cytochemical and biochemical study. , 1987, European journal of cell biology.
[116] G. Dallner,et al. Ubiquinone biosynthesis by the microsomal fraction from rat liver. , 1987, Biochimica et biophysica acta.
[117] H. Nishino,et al. Subcellular distribution of OM cytochrome b-mediated NADH-semidehydroascorbate reductase activity in rat liver. , 1986, Journal of biochemistry.
[118] H. Forman,et al. Superoxide production and electron transport in mitochondrial oxidation of dihydroorotic acid. , 1975, The Journal of biological chemistry.
[119] B Chance,et al. The cellular production of hydrogen peroxide. , 1972, The Biochemical journal.
[120] Yuanrong Cheng,et al. Artesunate alleviates liver fibrosis by regulating ferroptosis signaling pathway. , 2019, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[121] Qian Wu,et al. Supporting Information Characterization of Ferroptosis in Murine Models of Hemochromatosis , 2017 .
[122] Ying Wang,et al. Understanding Ubiquinone. , 2016, Trends in cell biology.
[123] B. Stockwell,et al. The role of iron and reactive oxygen species in cell death. , 2014, Nature chemical biology.
[124] Feng Zhang,et al. Peroxisome proliferator-activated receptor-γ as a therapeutic target for hepatic fibrosis: from bench to bedside , 2012, Cellular and Molecular Life Sciences.
[125] M. Katsuyama. NOX/NADPH oxidase, the superoxide-generating enzyme: its transcriptional regulation and physiological roles. , 2010, Journal of pharmacological sciences.
[126] Ying E Zhang,et al. Non-Smad pathways in TGF-β signaling , 2009, Cell Research.
[127] M. Vrbacký,et al. High efficiency of ROS production by glycerophosphate dehydrogenase in mammalian mitochondria. , 2009, Archives of biochemistry and biophysics.
[128] M. Pinzani. Liver fibrosis , 2004, Springer Seminars in Immunopathology.
[129] L. Gille,et al. The bifunctional activity of ubiquinone in lysosomal membranes , 2004, Biogerontology.
[130] K. Jungermann,et al. Zonation of parenchymal and nonparenchymal metabolism in liver. , 1996, Annual review of nutrition.
[131] S. Marklund. Distribution of CuZn superoxide dismutase and Mn superoxide dismutase in human tissues and extracellular fluids. , 1980, Acta physiologica Scandinavica. Supplementum.
[132] Ming Yang,et al. World Journal of Hepatology , 2022 .