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突变的ATP合酶可诱导雌性BHE/cdb大鼠β细胞产生氧化应激并损害胰岛素分泌。

Mutated ATP synthase induces oxidative stress and impaired insulin secretion in beta-cells of female BHE/cdb rats.

作者信息

Saleh Monique C, Fatehi-Hassanabad Zahra, Wang Rennian, Nino-Fong Rodolpho, Wadowska Dorota W, Wright Glenda M, Harper Mary-Ellen, Chan Catherine B

机构信息

Department of Biomedical Sciences, University of Prince Edward Island, Charlottetown, PE, Canada.

出版信息

Diabetes Metab Res Rev. 2008 Jul-Aug;24(5):392-403. doi: 10.1002/dmrr.819.

Abstract

BACKGROUND

Adenosine triphosphate (ATP) is a critical determinant of beta-cell insulin secretion in response to glucose. BHE/cdb rats have a mutation in ATP synthase that limits ATP production, yet develop mild diabetes only with ageing. We investigated the cellular basis for reduced insulin secretion and compensatory mechanisms that mitigate the effects of the ATP synthase mutation.

METHODS

In vitro beta-cell function in isolated islets and expression of key regulatory genes was compared with in vivo oral glucose tolerance and insulin sensitivity in BHE/cdb and control rats.

RESULTS

BHE/cdb rat islets had reduced responsiveness to glucose stimulation and ATP content was 35% lower than in control islets. Oral glucose tolerance was impaired at both 21 and 43 weeks of age because of a reduction in glucose-stimulated insulin secretion (GSIS). An increase in inducible nitric oxide synthase (INOS, 3-fold) and manganese superoxide dismutase (MnSOD, 1.6-fold), detection of nitrotyrosine, beta-cell apoptosis, and nucleocytoplasmic translocation of pancreas duodenum homeobox-1 (PDX-1) in beta-cells indicated increased oxygen radical formation. However, BHE/cdb rats partially compensated for low glucose responsiveness by increasing the number of small islets and beta-cell hypertrophy. There was also an increase in the proportion of mature insulin relative to proinsulin (PI) detected within beta-cell granules. Increased activation of AMP-dependent kinase (AMPK)-regulated pathways was consistent with increased oxidative stress and with induction of apoptosis and reduction of preproinsulin gene transcription.

CONCLUSIONS

The findings are consistent with impaired but partially compensated mechanisms of insulin secretion early in life, but progressive non-compensated impairments due to oxidative stress occurs by age 43 weeks.

摘要

背景

三磷酸腺苷(ATP)是β细胞对葡萄糖作出反应分泌胰岛素的关键决定因素。BHE/cdb大鼠的ATP合酶发生突变,限制了ATP的产生,但仅在衰老时才会发展为轻度糖尿病。我们研究了胰岛素分泌减少的细胞基础以及减轻ATP合酶突变影响的代偿机制。

方法

将分离胰岛中的体外β细胞功能和关键调控基因的表达与BHE/cdb大鼠和对照大鼠的体内口服葡萄糖耐量及胰岛素敏感性进行比较。

结果

BHE/cdb大鼠胰岛对葡萄糖刺激的反应性降低,ATP含量比对照胰岛低35%。由于葡萄糖刺激的胰岛素分泌(GSIS)减少,21周龄和43周龄时口服葡萄糖耐量均受损。β细胞中诱导型一氧化氮合酶(INOS,增加3倍)和锰超氧化物歧化酶(MnSOD,增加1.6倍)增加、硝基酪氨酸的检测、β细胞凋亡以及胰腺十二指肠同源盒-1(PDX-1)的核质易位表明氧自由基形成增加。然而,BHE/cdb大鼠通过增加小胰岛数量和β细胞肥大来部分补偿低葡萄糖反应性。β细胞颗粒内检测到的成熟胰岛素相对于胰岛素原(PI)的比例也增加。AMP依赖激酶(AMPK)调节途径的激活增加与氧化应激增加、细胞凋亡诱导以及胰岛素原基因转录减少一致。

结论

这些发现与生命早期胰岛素分泌机制受损但部分得到代偿相符,但到43周龄时,由于氧化应激会出现进行性失代偿性损伤。

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