在人类疾病中普遍存在的、靠近人类线粒体DNA缺失断点的DNA序列会形成G-四链体,这是一类DNA结构,线粒体复制性Twinkle解旋酶对其解旋效率低下。
DNA sequences proximal to human mitochondrial DNA deletion breakpoints prevalent in human disease form G-quadruplexes, a class of DNA structures inefficiently unwound by the mitochondrial replicative Twinkle helicase.
作者信息
Bharti Sanjay Kumar, Sommers Joshua A, Zhou Jun, Kaplan Daniel L, Spelbrink Johannes N, Mergny Jean-Louis, Brosh Robert M
机构信息
From the Laboratory of Molecular Gerontology, NIA, National Institutes of Health, NIH Biomedical Research Center, Baltimore, Maryland 21224.
the ARNA Laboratory, University of Bordeaux, F-33000 Bordeaux, France, INSERM U869, Institut Européen de Chimie et Biologie (IECB), F-33600 Pessac, France.
出版信息
J Biol Chem. 2014 Oct 24;289(43):29975-93. doi: 10.1074/jbc.M114.567073. Epub 2014 Sep 5.
Mitochondrial DNA deletions are prominent in human genetic disorders, cancer, and aging. It is thought that stalling of the mitochondrial replication machinery during DNA synthesis is a prominent source of mitochondrial genome instability; however, the precise molecular determinants of defective mitochondrial replication are not well understood. In this work, we performed a computational analysis of the human mitochondrial genome using the "Pattern Finder" G-quadruplex (G4) predictor algorithm to assess whether G4-forming sequences reside in close proximity (within 20 base pairs) to known mitochondrial DNA deletion breakpoints. We then used this information to map G4P sequences with deletions characteristic of representative mitochondrial genetic disorders and also those identified in various cancers and aging. Circular dichroism and UV spectral analysis demonstrated that mitochondrial G-rich sequences near deletion breakpoints prevalent in human disease form G-quadruplex DNA structures. A biochemical analysis of purified recombinant human Twinkle protein (gene product of c10orf2) showed that the mitochondrial replicative helicase inefficiently unwinds well characterized intermolecular and intramolecular G-quadruplex DNA substrates, as well as a unimolecular G4 substrate derived from a mitochondrial sequence that nests a deletion breakpoint described in human renal cell carcinoma. Although G4 has been implicated in the initiation of mitochondrial DNA replication, our current findings suggest that mitochondrial G-quadruplexes are also likely to be a source of instability for the mitochondrial genome by perturbing the normal progression of the mitochondrial replication machinery, including DNA unwinding by Twinkle helicase.
线粒体DNA缺失在人类遗传疾病、癌症和衰老过程中十分突出。人们认为,DNA合成过程中线粒体复制机制的停滞是线粒体基因组不稳定的一个主要来源;然而,线粒体复制缺陷的确切分子决定因素尚未得到充分了解。在这项研究中,我们使用“模式查找器”G-四链体(G4)预测算法对人类线粒体基因组进行了计算分析,以评估形成G4的序列是否紧邻(20个碱基对内)已知的线粒体DNA缺失断点。然后,我们利用这些信息绘制了具有代表性线粒体遗传疾病特征性缺失的G4P序列图谱,以及在各种癌症和衰老过程中发现的缺失序列图谱。圆二色光谱和紫外光谱分析表明,人类疾病中普遍存在的缺失断点附近的富含鸟嘌呤的线粒体序列形成了G-四链体DNA结构。对纯化的重组人类Twinkle蛋白(c10orf2基因产物)的生化分析表明,线粒体复制解旋酶无法有效地解开特征明确的分子间和分子内G-四链体DNA底物,以及源自人肾细胞癌中一个包含缺失断点的线粒体序列的单分子G4底物。尽管G4与线粒体DNA复制的起始有关,但我们目前的研究结果表明,线粒体G-四链体也可能通过干扰线粒体复制机制的正常进程,包括Twinkle解旋酶对DNA的解旋,成为线粒体基因组不稳定的一个来源。
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