Activation of lipophagy is required for RAB7 to regulate ferroptosis in sepsis-induced acute kidney injury.
暂无分享,去创建一个
Jialin Li | Xinghua Shao | Haijiao Jin | Chao-jun Qi | Q. Lin | Shu Li | Xuying Zhu | Jingkui Wu | Yuanting Yang | Qin Wang | Zhaohui Ni | Leyi Gu | Na Jiang | Kaiqi Zhang
[1] Jian Xiao,et al. Attenuation of Sepsis-Induced Acute Kidney Injury by Exogenous H2S via Inhibition of Ferroptosis , 2023, Molecules.
[2] Z. Ni,et al. Mitophagy alleviates cisplatin-induced renal tubular epithelial cell ferroptosis through ROS/HO-1/GPX4 axis , 2023, International journal of biological sciences.
[3] Zhanjun Jia,et al. A novel 3-phenylglutaric acid derivative (84-B10) alleviates cisplatin-induced acute kidney injury by inhibiting mitochondrial ROS-mediated ferroptosis. , 2022, Free radical biology & medicine.
[4] Taofang Hao,et al. A protein encoded by circular ZNF609 RNA induces acute kidney injury by activating AKT/mTOR-autophagy pathway. , 2022, Molecular therapy : the journal of the American Society of Gene Therapy.
[5] Jianyun Yan,et al. Repression of the antiporter SLC7A11/Glutathione/Glutathione Peroxidase 4 axis drives ferroptosis of vascular smooth muscle cells to facilitate vascular calcification. , 2022, Kidney international.
[6] Dong-Hyun Kim,et al. Farnesoid X receptor protects against cisplatin-induced acute kidney injury by regulating the transcription of ferroptosis-related genes , 2022, Redox biology.
[7] Lianxiang Luo,et al. STAT3-mediated ferroptosis is involved in ulcerative colitis. , 2022, Free radical biology & medicine.
[8] Z. Dong,et al. Tubular cells produce FGF2 via autophagy after acute kidney injury leading to fibroblast activation and renal fibrosis , 2022, Autophagy.
[9] M. Miyazaki,et al. Sulforaphane induces lipophagy through the activation of AMPK-mTOR-ULK1 pathway signaling in adipocytes. , 2022, The Journal of nutritional biochemistry.
[10] Yali Su,et al. ACSL4 deficiency confers protection against ferroptosis-mediated acute kidney injury , 2022, Redox biology.
[11] X. Ci,et al. Leonurine alleviates ferroptosis in cisplatin‐induced acute kidney injury by activating the Nrf2 signalling pathway , 2021, British journal of pharmacology.
[12] J. Roh,et al. PGRMC1-dependent lipophagy promotes ferroptosis in paclitaxel-tolerant persister cancer cells , 2021, Journal of experimental & clinical cancer research : CR.
[13] D. Ford,et al. The lipid biology of sepsis , 2021, Journal of lipid research.
[14] S. Yue,et al. Legumain promotes tubular ferroptosis by facilitating chaperone-mediated autophagy of GPX4 in AKI , 2021, Cell death & disease.
[15] Guisen Li,et al. Isoliquiritigenin attenuates septic acute kidney injury by regulating ferritinophagy-mediated ferroptosis , 2021, Renal failure.
[16] Z. Ni,et al. Inhibiting NLRP3 inflammasome attenuates apoptosis in contrast-induced acute kidney injury through the upregulation of HIF1A and BNIP3-mediated mitophagy , 2020, Autophagy.
[17] Z. Dong,et al. Autophagy in kidney homeostasis and disease , 2020, Nature Reviews Nephrology.
[18] Wei Zhang,et al. Exercise and dietary intervention ameliorate high-fat diet-induced NAFLD and liver aging by inducing lipophagy , 2020, Redox biology.
[19] Shi-kun Yang,et al. VDR activation attenuate cisplatin induced AKI by inhibiting ferroptosis , 2020, Cell Death & Disease.
[20] M. Tang,et al. PM2.5 induces ferroptosis in human endothelial cells through iron overload and redox imbalance. , 2019, Environmental pollution.
[21] D. Klionsky,et al. Autophagic degradation of the circadian clock regulator promotes ferroptosis , 2019, Autophagy.
[22] Z. Ni,et al. PINK1-parkin pathway of mitophagy protects against contrast-induced acute kidney injury via decreasing mitochondrial ROS and NLRP3 inflammasome activation , 2019, Redox biology.
[23] Hong Zhu,et al. GPx4 in Bacterial Infection and Polymicrobial Sepsis: Involvement of Ferroptosis and Pyroptosis. , 2019, Reactive oxygen species.
[24] Y. Jia,et al. Lipid storage and lipophagy regulates ferroptosis. , 2019, Biochemical and biophysical research communications.
[25] Z. Dong,et al. Epigenetic regulation in AKI and kidney repair: mechanisms and therapeutic implications , 2019, Nature Reviews Nephrology.
[26] Feng Zhang,et al. Activation of ferritinophagy is required for the RNA-binding protein ELAVL1/HuR to regulate ferroptosis in hepatic stellate cells , 2018, Autophagy.
[27] Haichao Wang,et al. Lipid Peroxidation Drives Gasdermin D-Mediated Pyroptosis in Lethal Polymicrobial Sepsis. , 2018, Cell host & microbe.
[28] N. Mizushima. A brief history of autophagy from cell biology to physiology and disease , 2018, Nature Cell Biology.
[29] P. Zamberlan,et al. Changes in lipid metabolism in pediatric patients with severe sepsis and septic shock. , 2018, Nutrition.
[30] B. Stockwell,et al. Ferroptosis: A Regulated Cell Death Nexus Linking Metabolism, Redox Biology, and Disease , 2017, Cell.
[31] C. Sztalryd,et al. The perilipin family of lipid droplet proteins: Gatekeepers of intracellular lipolysis. , 2017, Biochimica et biophysica acta. Molecular and cell biology of lipids.
[32] P. Saha,et al. The constitutive lipid droplet protein PLIN2 regulates autophagy in liver , 2017, Autophagy.
[33] C. A. Prauchner. Oxidative stress in sepsis: Pathophysiological implications justifying antioxidant co-therapy. , 2017, Burns : journal of the International Society for Burn Injuries.
[34] Han Jun Cho,et al. αKlotho Mitigates Progression of AKI to CKD through Activation of Autophagy. , 2016, Journal of the American Society of Nephrology : JASN.
[35] M. Lotze,et al. Autophagy promotes ferroptosis by degradation of ferritin , 2016, Autophagy.
[36] B. Stockwell,et al. Ferroptosis: Death by Lipid Peroxidation. , 2016, Trends in cell biology.
[37] Adil Rafiq Rather,et al. The Third International Consensus Definitions for Sepsis and Septic Shock (Sepsis-3) , 2015 .
[38] Yan Wang,et al. Acute kidney injury in China: a cross-sectional survey , 2015, The Lancet.
[39] Rinaldo Bellomo,et al. Epidemiology of acute kidney injury in critically ill patients: the multinational AKI-EPI study , 2015, Intensive Care Medicine.
[40] M. McNiven,et al. The small GTPase Rab7 as a central regulator of hepatocellular lipophagy , 2015, Hepatology.
[41] A. Walch,et al. Inactivation of the ferroptosis regulator Gpx4 triggers acute renal failure in mice , 2014, Nature Cell Biology.
[42] B. Levine,et al. Autosis and autophagic cell death: the dark side of autophagy , 2014, Cell Death and Differentiation.
[43] Matthew E. Welsch,et al. Pharmacological inhibition of cystine–glutamate exchange induces endoplasmic reticulum stress and ferroptosis , 2014, eLife.
[44] Matthew E. Welsch,et al. Regulation of Ferroptotic Cancer Cell Death by GPX4 , 2014, Cell.
[45] J. Kellum,et al. A Unified Theory of Sepsis-Induced Acute Kidney Injury: Inflammation, Microcirculatory Dysfunction, Bioenergetics, and the Tubular Cell Adaptation to Injury , 2014, Shock.
[46] Robert V Farese,et al. Lipid droplets and cellular lipid metabolism. , 2012, Annual review of biochemistry.
[47] M. R. Lamprecht,et al. Ferroptosis: An Iron-Dependent Form of Nonapoptotic Cell Death , 2012, Cell.
[48] J. Hartle,et al. Increased risk of death and de novo chronic kidney disease following reversible acute kidney injury. , 2012, Kidney international.
[49] M. Czaja,et al. Autophagy regulates lipid metabolism , 2009, Nature.
[50] M. Murakami,et al. Autophagy Is Essential for Preimplantation Development of Mouse Embryos , 2008, Science.
[51] R. Bellomo,et al. Septic acute kidney injury in critically ill patients: clinical characteristics and outcomes. , 2007, Clinical journal of the American Society of Nephrology : CJASN.
[52] R. Bellomo,et al. Acute renal failure in critically ill patients: a multinational, multicenter study. , 2005, JAMA.
[53] A. Walch,et al. ACSL4 dictates ferroptosis sensitivity by shaping cellular lipid composition. , 2017, Nature chemical biology.
[54] A. Sanz,et al. Ferroptosis, but Not Necroptosis, Is Important in Nephrotoxic Folic Acid-Induced AKI. , 2017, Journal of the American Society of Nephrology : JASN.
[55] Robert G. Parton,et al. Opinion: Lipid droplets: a unified view of a dynamic organelle , 2006, Nature Reviews Molecular Cell Biology.