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致病性线粒体 DNA 突变:当前的检测工具和干预措施。

Pathogenic Mitochondria DNA Mutations: Current Detection Tools and Interventions.

机构信息

Department of Human Anatomy, Faculty of Medicine and Health Sciences, Universiti Putra Malaysia, 43400 UPM Serdang, Selangor Darul Ehsan, Malaysia.

Department of Pathology, Faculty of Medicine and Health Sciences, Universiti Putra Malaysia, 43400 UPM Serdang, Selangor Darul Ehsan, Malaysia.

出版信息

Genes (Basel). 2020 Feb 12;11(2):192. doi: 10.3390/genes11020192.

Abstract

Mitochondria are best known for their role in energy production, and they are the only mammalian organelles that contain their own genomes. The mitochondrial genome mutation rate is reported to be 10-17 times higher compared to nuclear genomes as a result of oxidative damage caused by reactive oxygen species during oxidative phosphorylation. Pathogenic mitochondrial DNA mutations result in mitochondrial DNA disorders, which are among the most common inherited human diseases. Interventions of mitochondrial DNA disorders involve either the transfer of viable isolated mitochondria to recipient cells or genetically modifying the mitochondrial genome to improve therapeutic outcome. This review outlines the common mitochondrial DNA disorders and the key advances in the past decade necessary to improve the current knowledge on mitochondrial disease intervention. Although it is now 31 years since the first description of patients with pathogenic mitochondrial DNA was reported, the treatment for mitochondrial disease is often inadequate and mostly palliative. Advancements in diagnostic technology improved the molecular diagnosis of previously unresolved cases, and they provide new insight into the pathogenesis and genetic changes in mitochondrial DNA diseases

摘要

线粒体最著名的作用是在能量产生中,并且它们是唯一含有自己基因组的哺乳动物细胞器。由于氧化磷酸化过程中活性氧引起的氧化损伤,线粒体基因组的突变率比核基因组高 10-17 倍。致病性线粒体 DNA 突变导致线粒体 DNA 疾病,这是最常见的遗传性人类疾病之一。线粒体 DNA 疾病的干预措施包括将有活力的分离线粒体转移到受体细胞中,或对线粒体基因组进行基因修饰以改善治疗效果。这篇综述概述了常见的线粒体 DNA 疾病,并介绍了过去十年中改善线粒体疾病干预的关键进展。尽管自首次报道致病性线粒体 DNA 患者以来已经过去了 31 年,但线粒体疾病的治疗往往不足,而且大多是姑息性的。诊断技术的进步提高了以前未解决病例的分子诊断,并为线粒体 DNA 疾病的发病机制和遗传变化提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a81/7074468/d5f3ae9bc657/genes-11-00192-g001.jpg

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