Acharya Ananya, Bret Hélène, Huang Jen-Wei, Mütze Martin, Göse Martin, Kissling Vera, Seidel Ralf, Ciccia Alberto, Guérois Raphaël, Cejka Petr
bioRxiv. 2023 Jun 12:2023.06.12.544631. doi: 10.1101/2023.06.12.544631.
The human MCM8-9 helicase functions in concert with HROB in the context of homologous recombination, but its precise function is unknown. To gain insights into how HROB regulates MCM8-9, we first used molecular modeling and biochemistry to define their interaction interface. We show that HROB makes important contacts with both MCM8 and MCM9 subunits, which directly promotes its DNA-dependent ATPase and helicase activities. MCM8-9-HROB preferentially binds and unwinds branched DNA structures, and single-molecule experiments reveal a low DNA unwinding processivity. MCM8-9 unwinds DNA as a hexameric complex that assembles from dimers on DNA in the presence of ATP, which is prerequisite for its helicase function. The hexamer formation thus involves two repeating protein-protein interfaces forming between the alternating MCM8 and MCM9 subunits. One of these interfaces is rather stable and forms an obligate heterodimer, while the other interface is labile and mediates the assembly of the hexamer on DNA, independently of HROB. The ATPase site composed of the subunits forming the labile interface disproportionally contributes to DNA unwinding. HROB does not affect the MCM8-9 ring formation, but promotes DNA unwinding downstream by possibly coordinating ATP hydrolysis with structural transitions accompanying translocation of MCM8-9 on DNA.
人类MCM8-9解旋酶在同源重组过程中与HROB协同发挥作用,但其确切功能尚不清楚。为深入了解HROB如何调节MCM8-9,我们首先利用分子建模和生物化学方法确定它们的相互作用界面。我们发现HROB与MCM8和MCM9亚基均有重要接触,这直接促进了其依赖DNA的ATP酶和解旋酶活性。MCM8-9-HROB优先结合并解开分支DNA结构,单分子实验揭示其DNA解旋的持续性较低。MCM8-9以六聚体复合物的形式解开DNA,该复合物在ATP存在的情况下由二聚体在DNA上组装而成,这是其解旋酶功能的先决条件。因此,六聚体的形成涉及交替的MCM8和MCM9亚基之间形成的两个重复的蛋白质-蛋白质界面。其中一个界面相当稳定,形成一个 obligate异二聚体,而另一个界面不稳定,介导六聚体在DNA上的组装,且与HROB无关。由形成不稳定界面的亚基组成的ATP酶位点对DNA解旋的贡献不成比例。HROB不影响MCM8-9环的形成,但可能通过协调ATP水解与MCM8-9在DNA上移位时伴随的结构转变来促进下游的DNA解旋。