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本文引用的文献

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Cerebral lactic acidosis correlates with neurological impairment in MELAS.脑乳酸酸中毒与线粒体脑肌病伴乳酸血症和卒中样发作(MELAS)中的神经功能障碍相关。
Neurology. 2004 Apr 27;62(8):1297-302. doi: 10.1212/01.wnl.0000120557.83907.a8.
2
Decreased platelet cytochrome c oxidase activity is accompanied by increased blood lactate concentration during exercise in patients with Alzheimer disease.在阿尔茨海默病患者运动期间,血小板细胞色素c氧化酶活性降低伴随着血乳酸浓度升高。
Exp Neurol. 2003 Aug;182(2):421-6. doi: 10.1016/s0014-4886(03)00092-x.
3
An algal nucleus-encoded subunit of mitochondrial ATP synthase rescues a defect in the analogous human mitochondrial-encoded subunit.线粒体ATP合酶的一个藻类核编码亚基挽救了人类线粒体编码的类似亚基中的缺陷。
Mol Biol Cell. 2002 Nov;13(11):3836-44. doi: 10.1091/mbc.e02-05-0306.
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Lactate shuttles in nature.自然界中的乳酸穿梭
Biochem Soc Trans. 2002 Apr;30(2):258-64. doi: 10.1042/bst0300258.
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The molecular mechanism of ATP synthesis by F1F0-ATP synthase.F1F0-ATP合酶合成ATP的分子机制。
Biochim Biophys Acta. 2002 Feb 15;1553(3):188-211. doi: 10.1016/s0005-2728(02)00185-8.
6
Biochemical-clinical correlation in patients with different loads of the mitochondrial DNA T8993G mutation.线粒体DNA T8993G突变不同负荷患者的生化与临床相关性
Arch Neurol. 2002 Feb;59(2):264-70. doi: 10.1001/archneur.59.2.264.
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Glucose and lactate metabolism during brain activation.大脑激活过程中的葡萄糖和乳酸代谢。
J Neurosci Res. 2001 Dec 1;66(5):824-38. doi: 10.1002/jnr.10079.
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Pathogenesis of primary defects in mitochondrial ATP synthesis.线粒体ATP合成原发性缺陷的发病机制。
Semin Cell Dev Biol. 2001 Dec;12(6):441-8. doi: 10.1006/scdb.2001.0281.
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Mitochondrial DNA mutations in human disease.人类疾病中的线粒体DNA突变。
Am J Med Genet. 2001 Spring;106(1):18-26. doi: 10.1002/ajmg.1392.
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Decreased Pasteur effect in platelets of aged individuals.老年个体血小板中巴斯德效应降低。
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携带线粒体DNA突变的胞质杂种细胞系呼吸功能的生化分析。

Biochemical analysis of respiratory function in cybrid cell lines harbouring mitochondrial DNA mutations.

作者信息

Pallotti Francesco, Baracca Alessandra, Hernandez-Rosa Evelyn, Walker Winsome F, Solaini Giancarlo, Lenaz Giorgio, Melzi D'Eril Gian Vico, Dimauro Salvatore, Schon Eric A, Davidson Mercy M

机构信息

Department of Neurology, College of Physicians and Surgeons, Columbia University, 630 West 168th Street, New York, NY 10032, USA.

出版信息

Biochem J. 2004 Dec 1;384(Pt 2):287-93. doi: 10.1042/BJ20040561.

DOI:10.1042/BJ20040561
PMID:15324306
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1134112/
Abstract

We analysed key biochemical features that reflect the balance between glycolysis and glucose oxidation in cybrids (cytoplasmic hybrids) harbouring a representative sample of mitochondrial DNA point mutations and deletions. The cybrids analysed had the same 143B cell nuclear background and were isogenic for the mitochondrial background. The 143B cell line and its rho(0) counterpart were used as controls. All cells analysed were in a dynamic state, and cell number, time of plating, culture medium, extracellular volume and time of harvest and assay were strictly controlled. Intra- and extra-cellular lactate and pyruvate levels were measured in homoplasmic wild-type and mutant cells, and correlated with rates of ATP synthesis and O2 consumption. In all mutant cell lines, except those with the T8993C mutation in the ATPase 6 gene, glycolysis was increased even under conditions of low glucose, as demonstrated by increased levels of extracellular lactate and pyruvate. Extracellular lactate levels were strictly and inversely correlated with rates of ATP synthesis and O2 consumption. These results show increased glycolysis and defective oxidative phosphorylation, irrespective of the type or site of the point mutation or deletion in the mitochondrial genome. The different biochemical consequences of the T8993C mutation suggest a uniquely different pathogenic mechanism for this mutation. However, the distinct clinical features associated with some of these mutations still remain to be elucidated.

摘要

我们分析了关键的生化特征,这些特征反映了携带线粒体DNA点突变和缺失代表性样本的胞质杂种(细胞质杂种)中糖酵解和葡萄糖氧化之间的平衡。所分析的胞质杂种具有相同的143B细胞核背景,并且在线粒体背景上是同基因的。143B细胞系及其rho(0)对应物用作对照。所有分析的细胞都处于动态状态,并且严格控制细胞数量、接种时间、培养基、细胞外体积以及收获和检测时间。在同质性野生型和突变细胞中测量细胞内和细胞外乳酸和丙酮酸水平,并将其与ATP合成速率和氧气消耗速率相关联。在所有突变细胞系中,除了ATPase 6基因中具有T8993C突变的细胞系外,即使在低葡萄糖条件下糖酵解也会增加,这通过细胞外乳酸和丙酮酸水平的升高得以证明。细胞外乳酸水平与ATP合成速率和氧气消耗速率严格呈负相关。这些结果表明,无论线粒体基因组中点突变或缺失的类型或位点如何,糖酵解都会增加,氧化磷酸化存在缺陷。T8993C突变的不同生化后果表明该突变具有独特的致病机制。然而,与其中一些突变相关的明显临床特征仍有待阐明。