首页> 美国卫生研究院文献>Biochemistry and Biophysics Reports >A novel SOD mimic with a redox-modulating mn (II) complex ML1 attenuates high glucose-induced abnormalities in intracellular Ca2+ transients and prevents cardiac cell death through restoration of mitochondrial function
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A novel SOD mimic with a redox-modulating mn (II) complex ML1 attenuates high glucose-induced abnormalities in intracellular Ca2+ transients and prevents cardiac cell death through restoration of mitochondrial function

机译:ML1具有氧化还原调节性mn(II)配合物的新型SOD模仿物减轻了高糖诱导的细胞内Ca2 +瞬变中的异常并通过恢复线粒体功能防止了心脏细胞死亡

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摘要

A key contributor to the pathophysiology of diabetic cardiomyopathy, mitochondrial superoxide can be adequately countered by Mn-superoxide dismutase, which constitutes the first line of defense against mitochondrial oxidative stress. Our group has recently synthesized low molecular weight SOD mimics, demonstrating superior protection against oxidative damages to kidney cells. In the current study, we sought to evaluate the protective effect of the SOD mimic ML1 against high glucose induced cardiomyopathy in diabetes. Mechanistic studies using rat cardiac myoblast H9c2 showed that ML1 markedly inhibited High Glucose (HG) induced cytotoxicity. This was associated with increased Mn-SOD expression along with decreased mitochondrial O2·-, ONOO- and Ca2+ accumulation, unveiling its anti-oxidant potentials. ML1 also attenuated HG-induced loss of mitochondrial membrane potential (ΔΨm) and release of cytochrome c, suggesting that ML1 effectuates its cytoprotective action via the preservation of mitochondrial function. In an ex-vivo model normal adult rat ventricular myocytes (ARVMs) were isolated and cultured in either normal glucose (5.5 mmol/l glucose) or HG (25.5 mmol/l glucose) conditions and the efficiency of ML-1 was analyzed by studying contractile function and calcium indices. Mechanical properties were assessed using a high-speed video-edge detection system, and intracellular Ca2+ transients were recorded in fura-2–loaded myocytes. Pretreatment of myocytes with ML1 (10 nM) ameliorated HG induced abnormalities in relaxation including depressed peak shortening, prolonged time to 90% relenghthening, and slower Ca2+ transient decay. Thus, ML1 exhibits significant cardio protection against oxidative damage, perhaps through its potent antioxidant action via activation of Mn-SOD.
机译:线粒体超氧化物是糖尿病性心肌病病理生理的关键因素,而锰超氧化物歧化酶可以适当地对抗线粒体超氧化物,这是抵抗线粒体氧化应激的第一道防线。我们的小组最近合成了低分子量的SOD模拟物,证明对肾脏细胞的氧化损伤具有出色的保护作用。在当前的研究中,我们试图评估SOD模仿ML1对高糖诱导的糖尿病性心肌病的保护作用。使用大鼠心脏成肌细胞H9c2的机理研究表明,ML1显着抑制高葡萄糖(HG)诱导的细胞毒性。这与Mn-SOD表达增加以及线粒体 O 2 · - ,ONOO-和Ca 2 + 积累,揭示了其抗-氧化电位。 ML1还减弱了HG诱导的线粒体膜电位(ΔΨm)的损失和细胞色素c的释放,这表明ML1通过保持线粒体功能来实现其细胞保护作用。在离体模型中,正常成年大鼠心室肌细胞(ARVMs)分离并在正常葡萄糖(5.5 mmol / l葡萄糖)或HG(25.5 mmol / l葡萄糖)条件下培养,并通过研究分析ML-1的效率收缩功能和钙指数。使用高速视频边缘检测系统评估机械性能,并在呋喃2加载的心肌细胞中记录细胞内Ca 2 + 瞬变。用ML1(10 nM)预处理的心肌细胞改善了HG引起的放松异常,包括峰缩短降低,延长至90%的延长时间以及Ca 2 + 的瞬时衰减变慢。因此,ML1可能通过激活Mn-SOD发挥强大的抗氧化作用,表现出明显的抗氧化损伤的心脏保护作用。

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