Dietary methionine restriction attenuates renal ischaemia/reperfusion‐induced myocardial injury by activating the CSE/H2S/ERS pathway in diabetic mice
Autor: | Minghuan Fu, Jing Guo, Biao Chen, Xuefei Tao, Xiaohan Chen, Yuanyuan Pan |
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Jazyk: | angličtina |
Rok vydání: | 2020 |
Předmět: |
0301 basic medicine
Ischemia CSE Apoptosis Myocardial Reperfusion Injury Pharmacology CHOP Kidney Flow cytometry Diabetes Mellitus Experimental 03 medical and health sciences Mice 0302 clinical medicine Methionine Western blot Mice Inbred NOD Medicine Animals Humans Sulfites hydrogen disulphide Cell Proliferation TUNEL assay medicine.diagnostic_test business.industry Cell growth Caspase 3 Myocardium Cell Biology Original Articles Hypoxia (medical) Acute Kidney Injury medicine.disease reperfusion MicroRNAs 030104 developmental biology 030220 oncology & carcinogenesis Reperfusion Injury Molecular Medicine Original Article ERS ischaemia medicine.symptom dietary methionine restriction business Transcription Factor CHOP Signal Transduction |
Zdroj: | Journal of Cellular and Molecular Medicine |
ISSN: | 1582-4934 1582-1838 |
Popis: | Methionine restrictive diet may alleviate ischaemia/reperfusion (I/R)‐induced myocardial injury, but its underlying mechanism remains unclear. HE staining was performed to evaluate the myocardial injury caused by I/R and the effect of methionine‐restricted diet (MRD) in I/R mice. IHC and Western blot were carried out to analyse the expression of CSE, CHOP and active caspase3 in I/R mice and hypoxia/reoxygenation (H/R) cells. TUNEL assay and flow cytometry were used to assess the apoptotic status of I/R mice and H/R cells. MTT was performed to analyse the proliferation of H/R cells. H2S assay was used to evaluate the concentration of H2S in the myocardial tissues and peripheral blood of I/R mice. I/R‐induced mediated myocardial injury and apoptosis were partially reversed by methionine‐restricted diet (MRD) via the down‐regulation of CSE expression and up‐regulation of CHOP and active caspase3 expression. The decreased H2S concentration in myocardial tissues and peripheral blood of I/R mice was increased by MRD. Accordingly, in a cellular model of I/R injury established with H9C2 cells, cell proliferation was inhibited, cell apoptosis was increased, and the expressions of CSE, CHOP and active caspase3 were dysregulated, whereas NaHS treatment alleviated the effect of I/R injury in H9C2 cells in a dose‐dependent manner. This study provided a deep insight into the mechanism underlying the role of MRD in I/R‐induced myocardial injury. |
Databáze: | OpenAIRE |
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