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1
Depletion of mitochondrial DNA in leucocytes harbouring the 3243A->G mtDNA mutation.携带3243A→G线粒体DNA突变的白细胞中线粒体DNA的缺失。
J Med Genet. 2007 Jan;44(1):69-74. doi: 10.1136/jmg.2006.043109. Epub 2006 Sep 1.
2
Apoptosis in mitochondrial myopathies is linked to mitochondrial proliferation.线粒体肌病中的细胞凋亡与线粒体增殖有关。
Brain. 2006 May;129(Pt 5):1249-59. doi: 10.1093/brain/awl061. Epub 2006 Mar 14.
3
Acquisition of the wobble modification in mitochondrial tRNALeu(CUN) bearing the G12300A mutation suppresses the MELAS molecular defect.携带G12300A突变的线粒体tRNALeu(CUN)中摆动修饰的获得抑制了MELAS分子缺陷。
Hum Mol Genet. 2006 Mar 15;15(6):897-904. doi: 10.1093/hmg/ddl007. Epub 2006 Jan 30.
4
Mitochondrial DNA copy number threshold in mtDNA depletion myopathy.线粒体DNA耗竭性肌病中线粒体DNA拷贝数阈值
Neurology. 2005 Aug 9;65(3):453-5. doi: 10.1212/01.wnl.0000171861.30277.88.
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Wobble modification deficiency in mutant tRNAs in patients with mitochondrial diseases.线粒体疾病患者突变tRNA中的摆动修饰缺陷
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Mitochondrial DNA mutations in human disease.人类疾病中的线粒体DNA突变。
Nat Rev Genet. 2005 May;6(5):389-402. doi: 10.1038/nrg1606.
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Mitochondrial DNA content is decreased in autosomal dominant optic atrophy.常染色体显性遗传性视神经萎缩患者的线粒体DNA含量降低。
Neurology. 2005 Mar 22;64(6):966-72. doi: 10.1212/01.WNL.0000157282.76715.B1.
8
Reduction of mitochondrial tRNALeu(UUR) aminoacylation by some MELAS-associated mutations.某些与线粒体脑肌病伴乳酸血症和卒中样发作(MELAS)相关的突变导致线粒体亮氨酰-tRNA(UUR)氨酰化作用降低。
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Human mitochondrial tRNAs in health and disease.健康与疾病中的人类线粒体tRNA
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Mitochondrial respiratory-chain diseases.线粒体呼吸链疾病
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野生型线粒体DNA的正常水平可维持两种致病性线粒体DNA突变的细胞色素c氧化酶活性,但不能维持m.3243A→G突变的细胞色素c氧化酶活性。

Normal levels of wild-type mitochondrial DNA maintain cytochrome c oxidase activity for two pathogenic mitochondrial DNA mutations but not for m.3243A-->G.

作者信息

Durham Steve E, Samuels David C, Cree Lynsey M, Chinnery Patrick F

机构信息

Mitochondrial Research Group, Newcastle University, Newcastle, UK.

出版信息

Am J Hum Genet. 2007 Jul;81(1):189-95. doi: 10.1086/518901. Epub 2007 May 23.

DOI:10.1086/518901
PMID:17564976
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1950909/
Abstract

Mitochondrial DNA (mtDNA) mutations are a common cause of human disease and accumulate as part of normal ageing and in common neurodegenerative disorders. Cells express a biochemical defect only when the proportion of mutated mtDNA exceeds a critical threshold, but it is not clear whether the actual cause of this defect is a loss of wild-type mtDNA, an excess of mutated mtDNA, or a combination of the two. Here, we show that segments of human skeletal muscle fibers harboring two pathogenic mtDNA mutations retain normal cytochrome c oxidase (COX) activity by maintaining a minimum amount of wild-type mtDNA. For these mutations, direct measurements of mutated and wild-type mtDNA molecules within the same skeletal muscle fiber are consistent with the "maintenance of wild type" hypothesis, which predicts that there is nonselective proliferation of mutated and wild-type mtDNA in response to the molecular defect. However, for the m.3243A-->G mutation, a superabundance of wild-type mtDNA was found in many muscle-fiber sections with negligible COX activity, indicating that the pathogenic mechanism for this particular mutation involves interference with the function of the wild-type mtDNA or wild-type gene products.

摘要

线粒体DNA(mtDNA)突变是人类疾病的常见病因,会随着正常衰老过程以及常见神经退行性疾病的发展而累积。只有当突变型mtDNA的比例超过临界阈值时,细胞才会表现出生化缺陷,但目前尚不清楚这种缺陷的实际原因是野生型mtDNA的缺失、突变型mtDNA的过量,还是两者的结合。在此,我们表明,携带两种致病性mtDNA突变的人类骨骼肌纤维片段通过维持最低量的野生型mtDNA来保持正常的细胞色素c氧化酶(COX)活性。对于这些突变,在同一骨骼肌纤维内对突变型和野生型mtDNA分子的直接测量结果与“野生型维持”假说一致,该假说预测,针对分子缺陷,突变型和野生型mtDNA会进行非选择性增殖。然而,对于m.3243A→G突变,在许多COX活性可忽略不计的肌纤维切片中发现了过量的野生型mtDNA,这表明该特定突变的致病机制涉及对野生型mtDNA或野生型基因产物功能的干扰。