Department of Biological Sciences, St. John's University, Queens, NY, USA.
Department of Biological Sciences, St. John's University, Queens, NY, USA.
Biochim Biophys Acta Mol Cell Res. 2023 Jan;1870(1):119382. doi: 10.1016/j.bbamcr.2022.119382. Epub 2022 Oct 23.
One of the key outcomes of activation of DNA replication checkpoint (DRC) or DNA damage checkpoint (DDC) is the increased synthesis of the deoxyribonucleoside triphosphates (dNTPs), which is a prerequisite for normal progression through the S phase and for effective DNA repair. We have recently shown that DDC increases aerobic metabolism and activates the electron transport chain (ETC) to elevate ATP production and dNTP synthesis by repressing transcription of histone genes, leading to globally altered chromatin architecture and increased transcription of genes encoding enzymes of tricarboxylic acid (TCA) cycle and the ETC. The aim of this study was to determine whether DRC activates ETC. We show here that DRC activates ETC by a checkpoint kinase Dun1p-dependent mechanism. DRC induces transcription of RNR1-4 genes and elevates mtDNA copy number. Inactivation of RRM3 or SGS1, two DNA helicases important for DNA replication, activates DRC but does not render cells dependent on ETC. However, fitness of rrm3Δ and sgs1Δ cells requires Dun1p. The slow growth of rrm3Δdun1Δ and sgs1Δdun1Δ cells can be suppressed by introducing sml1Δ mutation, indicating that the slow growth is due to low levels of dNTPs. Interestingly, inactivation of ETC in dun1Δ cells results in a synthetic growth defect that can be suppressed by sml1Δ mutation, suggesting that ETC is important for dNTP synthesis in the absence of Dun1p function. Together, our results reveal an unexpected connection between ETC, replication stress, and Dun1p kinase.
DNA 复制检查点(DRC)或 DNA 损伤检查点(DDC)激活的一个关键结果是脱氧核苷三磷酸(dNTP)的合成增加,这是正常进入 S 期和有效 DNA 修复的前提。我们最近表明,DDC 通过抑制组蛋白基因的转录来增加有氧代谢并激活电子传递链(ETC),以提高 ATP 产生和 dNTP 合成,从而导致整个染色质结构发生改变,并增加编码三羧酸(TCA)循环和 ETC 的酶的基因的转录。本研究的目的是确定 DRC 是否激活 ETC。我们在这里表明,DDC 通过检查点激酶 Dun1p 依赖性机制激活 ETC。DDC 诱导 RNR1-4 基因的转录并增加 mtDNA 拷贝数。两个对 DNA 复制很重要的 DNA 解旋酶 RRM3 或 SGS1 的失活会激活 DRC,但不会使细胞依赖于 ETC。然而,rrm3Δ 和 sgs1Δ 细胞的适应性需要 Dun1p。rrm3Δdun1Δ 和 sgs1Δdun1Δ 细胞的生长缓慢可以通过引入 sml1Δ 突变来抑制,表明生长缓慢是由于 dNTP 水平低。有趣的是,在 dun1Δ 细胞中失活 ETC 会导致合成生长缺陷,该缺陷可以通过 sml1Δ 突变来抑制,表明在缺乏 Dun1p 功能的情况下,ETC 对 dNTP 合成很重要。总之,我们的结果揭示了 ETC、复制应激和 Dun1p 激酶之间的意外联系。