Protection of diabetes-induced kidney injury by phosphocreatine via the regulation of ERK/Nrf2/HO-1 signaling pathway.
暂无分享,去创建一个
Xiaodong Li | A. Shopit | M. Al-Azab | Zeyao Tang | Zhongyuan Tang | M. Niu | Hongyan Wang | Nisar Ahmed | Tsehaye Tesfaldet | J. Ai
[1] S. Zappavigna,et al. Mitochondria as playmakers of apoptosis, autophagy and senescence. , 2020, Seminars in cell & developmental biology.
[2] K. Bullard,et al. US Trends in Hospitalizations for Dialysis-Requiring Acute Kidney Injury in People With Versus Without Diabetes. , 2019, American journal of kidney diseases : the official journal of the National Kidney Foundation.
[3] A. Ahangarpour,et al. Protective effects of naringin and trimetazidine on remote effect of acute renal injury on oxidative stress and myocardial injury through Nrf-2 regulation. , 2019, Pharmacological reports : PR.
[4] Haixia Zhao,et al. Silibinin declines blue light-induced apoptosis and inflammation through MEK/ERK/CREB of retinal ganglion cells , 2019, Artificial cells, nanomedicine, and biotechnology.
[5] P. Meikle,et al. Complement C5a Induces Renal Injury in Diabetic Kidney Disease by Disrupting Mitochondrial Metabolic Agility , 2019, Diabetes.
[6] Xiaofeng He,et al. Sika deer antler protein against acetaminophen-induced oxidative stress and apoptosis in HK-2 cells via activating Nrf2/keap1/HO-1 pathway. , 2019, Journal of food biochemistry.
[7] Grazia Maugeri,et al. Curcumin prevents high glucose damage in retinal pigment epithelial cells through ERK1/2‐mediated activation of the Nrf2/HO‐1 pathway , 2019, Journal of cellular physiology.
[8] Yanbin Gao,et al. Calpain-10 drives podocyte apoptosis and renal injury in diabetic nephropathy , 2019, Diabetes, metabolic syndrome and obesity : targets and therapy.
[9] N. Chondrogianni,et al. The dietary triterpenoid 18α–Glycyrrhetinic acid protects from MMC-induced genotoxicity through the ERK/Nrf2 pathway , 2019, Redox biology.
[10] C. Kim,et al. Pachypodol, a Methoxyflavonoid Isolated from Pogostemon cablin Bentham Exerts Antioxidant and Cytoprotective Effects in HepG2 Cells: Possible Role of ERK-Dependent Nrf2 Activation , 2019, International journal of molecular sciences.
[11] Z. Qin,et al. The role of ANXA5 in DBP-induced oxidative stress through ERK/Nrf2 pathway. , 2019, Environmental toxicology and pharmacology.
[12] M. Do,et al. Therapeutic Potential of Lespedeza bicolor to Prevent Methylglyoxal-Induced Glucotoxicity in Familiar Diabetic Nephropathy , 2019, Journal of clinical medicine.
[13] Kwang-Won Lee,et al. ERK/Nrf2 pathway activation by caffeic acid in HepG2 cells alleviates its hepatocellular damage caused by t-butylhydroperoxide-induced oxidative stress , 2019, BMC Complementary and Alternative Medicine.
[14] P. Gao,et al. Telmisartan Attenuates Uric Acid-Induced Epithelial-Mesenchymal Transition in Renal Tubular Cells , 2019, BioMed research international.
[15] J. Cen,et al. Polyamine analogue QMA attenuated ischemic injury in MCAO rats via ERK and Akt activated Nrf2/HO‐1 signaling pathway , 2019, European journal of pharmacology.
[16] C. Stehouwer,et al. Methylglyoxal stress, the glyoxalase system, and diabetic chronic kidney disease , 2019, Current opinion in nephrology and hypertension.
[17] M. Nakayama,et al. Methylglyoxal as a prognostic factor in patients with chronic kidney disease , 2019, Nephrology.
[18] A. Eid,et al. Role of Methylglyoxal in Diabetic Cardiovascular and Kidney Diseases: Insights from Basic Science for Application into Clinical Practice. , 2018, Current pharmaceutical design.
[19] Jinyong Peng,et al. Phosphocreatine attenuates endoplasmic reticulum stress-mediated hepatocellular apoptosis ameliorates insulin resistance in diabetes model. , 2018, Biochemical and biophysical research communications.
[20] Jinyong Peng,et al. Neuroprotective effect of phosphocreatine on oxidative stress and mitochondrial dysfunction induced apoptosis in vitro and in vivo: Involvement of dual PI3K/Akt and Nrf2/HO‐1 pathways , 2018, Free radical biology & medicine.
[21] H. Jun,et al. Diphlorethohydroxycarmalol Attenuates Methylglyoxal-Induced Oxidative Stress and Advanced Glycation End Product Formation in Human Kidney Cells , 2018, Oxidative medicine and cellular longevity.
[22] P. Maher,et al. Methylglyoxal‐induced AMPK activation leads to autophagic degradation of thioredoxin 1 and glyoxalase 2 in HT22 nerve cells , 2017, Free radical biology & medicine.
[23] Jinyong Peng,et al. Phosphocreatine protects endothelial cells from Methylglyoxal induced oxidative stress and apoptosis via the regulation of PI3K/Akt/eNOS and NF-κB pathway. , 2017, Vascular pharmacology.
[24] B. Chaudhari,et al. Baicalin and chrysin mixture imparts cyto-protection against methylglyoxal induced cytotoxicity and diabetic tubular injury by modulating RAGE, oxidative stress and inflammation. , 2017, Environmental toxicology and pharmacology.
[25] Yung-Hyun Choi,et al. Morin exerts cytoprotective effects against oxidative stress in C2C12 myoblasts via the upregulation of Nrf2-dependent HO-1 expression and the activation of the ERK pathway. , 2017, International journal of molecular medicine.
[26] G. Landoni,et al. eReply. Phosphocreatine in cardiovascular disease: how can we relate the evidence to clinical practice? , 2016, Interactive cardiovascular and thoracic surgery.
[27] K. Verheyen,et al. Epidemiology of Diabetes Mellitus among 193,435 Cats Attending Primary‐Care Veterinary Practices in England , 2016, Journal of veterinary internal medicine.
[28] D. Jacobs,et al. Structural correlates of the creatine transporter function regulation: the undiscovered country , 2016, Amino Acids.
[29] Jinyong Peng,et al. Erratum to: Phosphocreatine protects against LPS-induced human umbilical vein endothelial cell apoptosis by regulating mitochondrial oxidative phosphorylation , 2016, Apoptosis.
[30] M. R. de Oliveira,et al. Role for the PI3K/Akt/Nrf2 signaling pathway in the protective effects of carnosic acid against methylglyoxal-induced neurotoxicity in SH-SY5Y neuroblastoma cells. , 2015, Chemico-biological interactions.
[31] Jinyong Peng,et al. Phosphocreatine protects endothelial cells from oxidized low-density lipoprotein-induced apoptosis by modulating the PI3K/Akt/eNOS pathway , 2015, Apoptosis.
[32] Jinyong Peng,et al. Phosphocreatine protects against LPS-induced human umbilical vein endothelial cell apoptosis by regulating mitochondrial oxidative phosphorylation , 2015, Apoptosis.
[33] S. Ki,et al. Resveratrol attenuates methylglyoxal-induced mitochondrial dysfunction and apoptosis by Sestrin2 induction. , 2014, Toxicology and applied pharmacology.
[34] Y. Sher,et al. Taurine protects HK-2 cells from oxidized LDL-induced cytotoxicity via the ROS-mediated mitochondrial and p53-related apoptotic pathways. , 2014, Toxicology and applied pharmacology.
[35] L. Guimarães‐Ferreira. Role of the phosphocreatine system on energetic homeostasis in skeletal and cardiac muscles , 2014, Einstein.
[36] Dongcheng Wu,et al. Bone marrow-derived mesenchymal stem cells protect against cisplatin-induced acute kidney injury in rats by inhibiting cell apoptosis , 2013, International journal of molecular medicine.
[37] Chun-Hua Hsu,et al. Inhibitory potential of fatty acids on key enzymes related to type 2 diabetes. , 2013, BioFactors.
[38] A. Sayed,et al. Thymoquinone and proanthocyanidin attenuation of diabetic nephropathy in rats. , 2010, European review for medical and pharmacological sciences.
[39] W. Sheu,et al. Ellagic acid protects endothelial cells from oxidized low-density lipoprotein-induced apoptosis by modulating the PI3K/Akt/eNOS pathway. , 2010, Toxicology and applied pharmacology.
[40] J. Hayashi,et al. ROS-Generating Mitochondrial DNA Mutations Can Regulate Tumor Cell Metastasis , 2008, Science.
[41] M. Nangaku,et al. Pathophysiological Role of the Glyoxalase System in Renal Hypoxic Injury , 2008, Annals of the New York Academy of Sciences.
[42] J. Ly,et al. The mitochondrial membrane potential (Δψm) in apoptosis; an update , 2003, Apoptosis.
[43] S. Roy,et al. Protective effect of creatine against inhibition by methylglyoxal of mitochondrial respiration of cardiac cells. , 2003, The Biochemical journal.
[44] V. Monnier,et al. Alterations in renal mitochondrial respiration in response to the reactive oxoaldehyde methylglyoxal. , 2002, American journal of physiology. Renal physiology.
[45] K. Roebuck. Oxidant stress regulation of IL-8 and ICAM-1 gene expression: differential activation and binding of the transcription factors AP-1 and NF-kappaB (Review). , 1999, International journal of molecular medicine.