FACT 和 MCM 的功能合作与细胞周期和差异复合物形成相协调。
Functional cooperation between FACT and MCM is coordinated with cell cycle and differential complex formation.
机构信息
Department of Life Science, College of Medicine, Chang Gung Univeristy, Taoyuan, Taiwan.
出版信息
J Biomed Sci. 2010 Feb 16;17(1):11. doi: 10.1186/1423-0127-17-11.
BACKGROUND
Functional cooperation between FACT and the MCM helicase complex constitutes an integral step during DNA replication initiation. However, mode of regulation that underlies the proper functional interaction of FACT and MCM is poorly understood.
METHODS & RESULTS: Here we present evidence indicating that such interaction is coordinated with cell cycle progression and differential complex formation. We first demonstrate the existence of two distinct FACT-MCM subassemblies, FACT-MCM2/4/6/7 and FACT-MCM2/3/4/5. Both complexes possess DNA unwinding activity and are subject to cell cycle-dependent enzymatic regulation. Interestingly, analysis of functional attributes further suggests that they act at distinct, and possibly sequential, steps during origin establishment and replication initiation. Moreover, we show that the phosphorylation profile of the FACT-associated MCM4 undergoes a cell cycle-dependent change, which is directly correlated with the catalytic activity of the FACT-MCM helicase complexes. Finally, at the quaternary structure level, physical interaction between FACT and MCM complexes is generally dependent on persistent cell cycle and further stabilized upon S phase entry. Cessation of mitotic cycle destabilizes the complex formation and likely leads to compromised coordination and activities.
CONCLUSIONS
Together, our results correlate FACT-MCM functionally and temporally with S phase and DNA replication. They further demonstrate that enzymatic activities intrinsically important for DNA replication are tightly controlled at various levels, thereby ensuring proper progression of, as well as exit from, the cell cycle and ultimately euploid gene balance.
背景
功能性合作 FACT 和 MCM 解旋酶复合物在 DNA 复制起始过程中构成一个整体步骤。然而,FACT 和 MCM 之间适当的功能相互作用所依据的调节模式尚未完全了解。
方法与结果
在这里,我们提供的证据表明,这种相互作用与细胞周期进程和差异复合物形成相协调。我们首先证明了两种不同的 FACT-MCM 亚基的存在,FACT-MCM2/4/6/7 和 FACT-MCM2/3/4/5。这两个复合物都具有 DNA 解旋活性,并且受到细胞周期依赖性酶调节。有趣的是,功能属性的分析进一步表明,它们在原点建立和复制起始过程中作用于不同的,可能是连续的步骤。此外,我们表明 FACT 相关 MCM4 的磷酸化谱经历细胞周期依赖性变化,这与 FACT-MCM 解旋酶复合物的催化活性直接相关。最后,在四级结构水平上,FACT 和 MCM 复合物之间的物理相互作用通常依赖于持续的细胞周期,并在 S 期进入时进一步稳定。有丝分裂周期的停止会破坏复合物的形成,并可能导致协调和活性受损。
结论
总的来说,我们的结果将 FACT-MCM 在功能和时间上与 S 期和 DNA 复制相关联。它们进一步表明,对 DNA 复制至关重要的酶活性在各个层面受到严格控制,从而确保细胞周期的适当进展以及退出,最终实现正常的染色体倍数和基因平衡。