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一种新的 NADH 脱氢酶(泛醌)1α亚复合物 4()基因突变将线粒体功能障碍与啮齿动物模型中糖尿病的发展联系起来。

A novel mutation in the NADH dehydrogenase (ubiquinone) 1 alpha subcomplex 4 () gene links mitochondrial dysfunction to the development of diabetes in a rodent model.

机构信息

Laboratory for Molecular Medicine and Israeli Rat Genome Center, Barzilai University Medical Center, Ashkelon 7830604, Israel.

Faculty of Health Sciences, Ben-Gurion University of the Negev, Beer Sheba 8410501, Israel.

出版信息

Dis Model Mech. 2018 Nov 20;11(11):dmm036699. doi: 10.1242/dmm.036699.

Abstract

The mechanisms underlying diabetes remain unresolved. The Cohen diabetic rat represents a model of diet-induced diabetes, in which the disease is induced after exposure to a diabetogenic diet (DD) in the diabetes-sensitive (CDs/y) but not in the -resistant (CDr/y) strain. Diet imposes a metabolic strain that leads to diabetes in the appropriate genetic background. We previously identified, through whole-genome linkage analysis, a diabetes-related quantitative trait locus on rat chromosome 4 (RNO4), which incorporates NADH dehydrogenase (ubiquinone) 1 alpha subcomplex 4 (), a nuclear gene that affects mitochondrial function. Here, we sequenced the gene and found a major deletion in CDs/y that leads to lack of expression of the NDUFA4 protein that has been reported to be involved in the activities of mitochondrial complexes I and IV. In the absence of NDUFA4 in the diabetic CDs/y on DD, complex I activity is reduced in comparison to that in nondiabetic CDs/y on regular diet and CDr/y on either diet; complex IV activity is reduced in both strains provided DD, and thus as a result of diet and unrelated to the gene mutation. ATP fails to increase in diabetic CDs/y in response to DD, in comparison to nondiabetic CDr/y on DD. Plasma malondialdehyde levels are elevated in CDs/y on DD, whereas SOD1 and SOD2 levels fail to increase, indicating increased oxidative stress and inability of the pancreas to generate an appropriate antioxidative stress response. These findings suggest that the mutation in CDs/y on DD is directly associated with mitochondrial dysfunction, which we attribute to the lack of expression of NDUFA4 and to diet, and which prevents the anticipated increase in ATP production. The resulting enhanced oxidative stress impairs the ability of the pancreas to secrete insulin, leading to the development of diabetes. This is the first demonstration of an inherited mutation in a nuclear gene that adversely affects mitochondrial function and promotes diet-induced diabetes.

摘要

糖尿病的发病机制仍未得到解决。Cohen 糖尿病大鼠代表了一种饮食诱导的糖尿病模型,在易感(CDs/y)但不抵抗(CDr/y)的大鼠中,接触致糖尿病饮食(DD)后会引发疾病。饮食施加了一种代谢应激,在适当的遗传背景下导致糖尿病。我们之前通过全基因组连锁分析,在大鼠 4 号染色体(RNO4)上确定了一个与糖尿病相关的数量性状位点,该基因包含 NADH 脱氢酶(泛醌)1 亚基 4(),这是一个影响线粒体功能的核基因。在这里,我们对该基因进行了测序,发现 CDs/y 中存在一个主要缺失,导致 NDUFA4 蛋白表达缺失,该蛋白已被报道参与线粒体复合物 I 和 IV 的活性。在 DD 上的糖尿病 CDs/y 中缺乏 NDUFA4 时,与正常饮食下的非糖尿病 CDs/y 和任何饮食下的 CDr/y 相比,复合物 I 的活性降低;在两种品系中,复合物 IV 的活性都降低,这是由于饮食引起的,与基因突变无关。与 DD 上的非糖尿病 CDr/y 相比,DD 上的糖尿病 CDs/y 中的 ATP 无法增加。与 DD 上的非糖尿病 CDr/y 相比,CDs/y 上的血浆丙二醛水平升高,而 SOD1 和 SOD2 水平未能增加,表明氧化应激增加,胰腺无法产生适当的抗氧化应激反应。这些发现表明,DD 上的 CDs/y 中的 突变与线粒体功能障碍直接相关,我们将其归因于 NDUFA4 的表达缺失和饮食,这阻止了预期的 ATP 生成增加。由此产生的增强的氧化应激损害了胰腺分泌胰岛素的能力,导致糖尿病的发展。这是首次证明核基因突变会对线粒体功能产生不利影响并促进饮食诱导的糖尿病。

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