Graduate School of Frontier Biosciences, Osaka University, 1-3 Yamadaoka, Suita 565-0871, Japan.
Institute of Biomedical Sciences, Kansai Medical University, 2-5-1 Shin-machi, Hirakata 573-1010, Japan.
Nucleic Acids Res. 2021 Dec 2;49(21):12152-12166. doi: 10.1093/nar/gkab1068.
DNA replication is a key step in initiating cell proliferation. Loading hexameric complexes of minichromosome maintenance (MCM) helicase onto DNA replication origins during the G1 phase is essential for initiating DNA replication. Here, we examined MCM hexamer states during the cell cycle in human hTERT-RPE1 cells using multicolor immunofluorescence-based, single-cell plot analysis, and biochemical size fractionation. Experiments involving cell-cycle arrest at the G1 phase and release from the arrest revealed that a double MCM hexamer was formed via a single hexamer during G1 progression. A single MCM hexamer was recruited to chromatin in the early G1 phase. Another single hexamer was recruited to form a double hexamer in the late G1 phase. We further examined relationship between the MCM hexamer states and the methylation levels at lysine 20 of histone H4 (H4K20) and found that the double MCM hexamer state was correlated with di/trimethyl-H4K20 (H4K20me2/3). Inhibiting the conversion from monomethyl-H4K20 (H4K20me1) to H4K20me2/3 retained the cells in the single MCM hexamer state. Non-proliferative cells, including confluent cells or Cdk4/6 inhibitor-treated cells, also remained halted in the single MCM hexamer state. We propose that the single MCM hexamer state is a halting step in the determination of cell cycle progression.
DNA 复制是启动细胞增殖的关键步骤。在 G1 期将 minichromosome maintenance (MCM) 解旋酶的六聚体复合物加载到 DNA 复制起始点对于启动 DNA 复制至关重要。在这里,我们使用多色免疫荧光单细胞绘图分析和生化分级分离技术,在人类 hTERT-RPE1 细胞中检查了细胞周期中的 MCM 六聚体状态。涉及在 G1 期细胞周期停滞和释放的实验表明,在 G1 进展过程中,通过单个六聚体形成了双 MCM 六聚体。单个 MCM 六聚体在 G1 早期被招募到染色质上。另一个单六聚体在 G1 晚期被招募形成双六聚体。我们进一步研究了 MCM 六聚体状态与组蛋白 H4 赖氨酸 20 甲基化(H4K20)水平之间的关系,发现双 MCM 六聚体状态与二/三甲基-H4K20(H4K20me2/3)相关。抑制从单甲基-H4K20(H4K20me1)向 H4K20me2/3 的转化使细胞保持在单 MCM 六聚体状态。非增殖细胞,包括汇合细胞或 Cdk4/6 抑制剂处理的细胞,也保持在单 MCM 六聚体状态。我们提出,单 MCM 六聚体状态是细胞周期进程确定的一个停滞步骤。