Tan Cynthia, Tuch Bernard E, Tu Jian, Brown Shane A
Diabetes Transplant Unit, Department of Endocrinology, Prince of Wales Hospital and the University of New South Wales, Sydney, Australia.
Diabetes. 2002 Oct;51(10):2989-96. doi: 10.2337/diabetes.51.10.2989.
The NADH shuttle system, which transports the substrate for oxidative metabolism directly from the cytosol to the mitochondrial electron transport chain, has been shown to be essential for glucose-induced activation of mitochondrial metabolism and insulin secretion in adult beta-cells. We examined the role of these shuttles in the fetal beta-cell, which is immature in being unable to secrete insulin in response to glucose. The activity and concentration of the two key enzymes of the NADH shuttles, mitochondrial glycerol phosphate dehydrogenase (mGPDH) and mitochondrial malate dehydrogenase (mMDH), were eight- and threefold lower, respectively, in fetal compared with adult rat islets. Likewise, mGPDH and mMDH activity was fivefold lower in islet-like cell clusters (ICCs) and sevenfold lower in purified beta-cells compared with adult islets in the pig. The low level of enzyme activity was a result of low gene expression of the mitochondrial enzymes in the fetal beta-cells. Increasing NADH shuttle activity by transduction of fetal rat islets with mGPDH cDNA enabled the fetal islets to secrete insulin when stimulated with glucose. We concluded that the immaturity of the NADH shuttles contributes to the inability of fetal beta-cells to secrete insulin in response to glucose.
NADH穿梭系统可将氧化代谢的底物直接从细胞质转运至线粒体电子传递链,该系统已被证明对成年β细胞中葡萄糖诱导的线粒体代谢激活及胰岛素分泌至关重要。我们研究了这些穿梭系统在胎儿β细胞中的作用,胎儿β细胞不成熟,无法对葡萄糖作出胰岛素分泌反应。与成年大鼠胰岛相比,胎儿胰岛中NADH穿梭系统的两种关键酶,即线粒体甘油磷酸脱氢酶(mGPDH)和线粒体苹果酸脱氢酶(mMDH)的活性及浓度分别低8倍和3倍。同样,与成年猪胰岛相比,类胰岛细胞团(ICC)中的mGPDH和mMDH活性低5倍,纯化的β细胞中低7倍。酶活性水平低是胎儿β细胞中线粒体酶基因表达水平低的结果。用mGPDH cDNA转导胎儿大鼠胰岛以增加NADH穿梭活性,可使胎儿胰岛在受到葡萄糖刺激时分泌胰岛素。我们得出结论,NADH穿梭系统的不成熟导致胎儿β细胞无法对葡萄糖作出胰岛素分泌反应。