Department of Chemistry and Biochemistry, Hope College, Holland, MI 49423, USA.
Int J Mol Sci. 2023 Nov 7;24(22):16050. doi: 10.3390/ijms242216050.
The mitochondrial proteome is subject to abundant post-translational modifications, including lysine acetylation and phosphorylation of serine, threonine, and tyrosine. The biological function of the majority of these protein modifications is unknown. Proteins required for the transcription and translation of mitochondrial DNA (mtDNA) are subject to modification. This suggests that reversible post-translational modifications may serve as a regulatory mechanism for mitochondrial gene transcription, akin to mechanisms controlling nuclear gene expression. We set out to determine whether acetylation or phosphorylation controls the function of mitochondrial RNA polymerase (POLRMT). Mass spectrometry was used to identify post-translational modifications on POLRMT. We analyzed three POLRMT modification sites (lysine 402, threonine 315, threonine 993) found in distinct structural regions. Amino acid point mutants that mimic the modified and unmodified forms of POLRMT were employed to measure the effect of acetylation or phosphorylation on the promoter binding ability of POLRMT in vitro. We found a slight decrease in binding affinity for the phosphomimic at threonine 315. We did not identify large changes in viability, mtDNA content, or mitochondrial transcript level upon overexpression of POLRMT modification mimics in HeLa cells. Our results suggest minimal biological impact of the POLRMT post-translational modifications studied in our system.
线粒体蛋白质组受到大量翻译后修饰的影响,包括赖氨酸乙酰化和丝氨酸、苏氨酸和酪氨酸的磷酸化。这些蛋白质修饰的大多数生物学功能尚不清楚。线粒体 DNA(mtDNA)转录和翻译所需的蛋白质会发生修饰。这表明可逆的翻译后修饰可能是线粒体基因转录的一种调节机制,类似于控制核基因表达的机制。我们着手确定乙酰化或磷酸化是否控制线粒体 RNA 聚合酶(POLRMT)的功能。质谱用于鉴定 POLRMT 的翻译后修饰。我们分析了在不同结构区域发现的三个 POLRMT 修饰位点(赖氨酸 402、苏氨酸 315、苏氨酸 993)。采用模拟修饰和未修饰形式的 POLRMT 的氨基酸点突变体来测量体外 POLRMT 启动子结合能力的乙酰化或磷酸化对其的影响。我们发现磷酸模拟物在苏氨酸 315 处的结合亲和力略有下降。在 HeLa 细胞中转染 POLRMT 修饰模拟物后,我们没有发现活力、mtDNA 含量或线粒体转录水平有明显变化。我们的结果表明,在我们的系统中研究的 POLRMT 翻译后修饰的生物学影响很小。