Department of Pharmacological Sciences, Stony Brook University, Stony Brook, New York.
Protein Sci. 2019 Sep;28(9):1594-1605. doi: 10.1002/pro.3688. Epub 2019 Jul 31.
Numerous age-related human diseases have been associated with deficiencies in cellular energy production. Moreover, genetic alterations resulting in mitochondrial dysfunction are the cause of inheritable disorders commonly known as mitochondrial diseases. Many of these deficiencies have been directly or indirectly linked to deficits in mitochondrial gene expression. Transcription is an essential step in gene expression and elucidating the molecular mechanisms involved in this process is critical for understanding defects in energy production. For the past five decades, substantial efforts have been invested in the field of mitochondrial transcription. These efforts have led to the discovery of the main protein factors responsible for transcription as well as to a basic mechanistic understanding of the transcription process. They have also revealed various mechanisms of transcriptional regulation as well as the links that exist between the transcription process and downstream processes of RNA maturation. Here, we review the knowledge gathered in early mitochondrial transcription studies and focus on recent findings that shape our current understanding of mitochondrial transcription, posttranscriptional processing, as well as transcriptional regulation in mammalian systems.
许多与年龄相关的人类疾病都与细胞能量产生不足有关。此外,导致线粒体功能障碍的遗传改变是遗传性疾病(通常称为线粒体疾病)的原因。这些缺陷中的许多已直接或间接地与线粒体基因表达缺陷相关。转录是基因表达的重要步骤,阐明该过程涉及的分子机制对于理解能量产生缺陷至关重要。在过去的五十年中,人们在线粒体转录领域投入了大量的努力。这些努力不仅发现了负责转录的主要蛋白质因子,还对转录过程的基本机制有了一定的了解。它们还揭示了转录调控的各种机制,以及转录过程与 RNA 成熟的下游过程之间的联系。在这里,我们回顾了早期线粒体转录研究中积累的知识,并重点介绍了最新的发现,这些发现使我们对哺乳动物系统中的线粒体转录、转录后加工以及转录调控有了更深入的理解。