Paradoxical effect of fat diet in matrix metalloproteinases induced mitochondrial dysfunction in diabetic cardiomyopathy

糖尿病性心肌病 医学 内科学 内分泌学 基质金属蛋白酶 糖尿病 心肌病 心功能曲线 线粒体 心力衰竭 生物 生物化学
作者
Micaela Gliozzi,Federica Scarano,Vincenzo Musolino,Cristina Carresi,Antonino Scarcella,Saverio Nucera,Miriam Scicchitano,Stefano Ruga,Francesca Bosco,Jessica Maiuolo,Roberta Macrì,Maria Caterina Zito,Francesca Oppedisano,Lorenza Guarnieri,Rocco Mollace,Ernesto Palma,Carolina Muscoli,Vincenzo Mollace
出处
期刊:Journal of Cardiovascular Medicine [Ovid Technologies (Wolters Kluwer)]
卷期号:22 (4): 268-278 被引量:6
标识
DOI:10.2459/jcm.0000000000001046
摘要

Aims Diabetic cardiomyopathy represents the main cause of death among diabetic people. Despite this evidence, the molecular mechanisms triggered by impaired glucose and lipid metabolism inducing heart damage remain unclear. The aim of our study was to investigate the effect of altered metabolism on the early stages of cardiac injury in experimental diabetes. Methods For this purpose, rats were fed a normocaloric diet (NPD) or a high fat diet (HFD) for up to 12 weeks. After the fourth week, streptozocin (35 mg/kg) was administered in a subgroup of both NPD and HFD rats to induce diabetes. Cardiac function was analysed by echocardiography. Matrix metalloproteinases (MMPs) activity and intracellular localization were assessed through zymography and immunofluorescence, whereas apoptotic and oxidative markers by immunohistochemistry and western blot. Results Hyperglycaemia or hyperlipidaemia reduced ejection fraction and fractional shortening as compared with control. Unexpectedly, cardiac dysfunction was less marked in diabetic rats fed a hyperlipidaemic diet, suggesting an adaptive response of the myocardium to hyperglycaemia-induced injury. This response was characterized by the inhibition of N-terminal truncated-MMP-2 translocation from endoplasmic reticulum into mitochondria and by superoxide anion overproduction observed in cardiomyocytes under hyperglycaemia. Conclusion Overall, these findings suggest novel therapeutic targets aimed to counteract mitochondrial dysfunction in the onset of diabetic cardiomyopathy.
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