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PARP-2 and PARP-3 are selectively activated by 5' phosphorylated DNA breaks through an allosteric regulatory mechanism shared with PARP-1

机译:PARP-2和PARP-3被5'磷酸化的DNA断裂通过与PARP-1共有的变构调节机制选择性激活

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摘要

PARP-1, PARP-2 and PARP-3 are DNA-dependent PARPs that localize to DNA damage, synthesize poly(ADP-ribose) (PAR) covalently attached to target proteins including themselves, and thereby recruit repair factors to DNA breaks to increase repair efficiency. PARP-1, PARP-2 and PARP-3 have in common two C-terminal domains-Trp-Gly-Arg (WGR) and catalytic (CAT). In contrast, the N-terminal region (NTR) of PARP-1 is over 500 residues and includes four regulatory domains, whereas PARP-2 and PARP-3 have smaller NTRs (70 and 40 residues, respectively) of unknown structural composition and function. Here, we show that PARP-2 and PARP-3 are preferentially activated by DNA breaks harboring a 5' phosphate (5'P), suggesting selective activation in response to specific DNA repair intermediates, in particular structures that are competent for DNA ligation. In contrast to PARP-1, the NTRs of PARP-2 and PARP-3 are not strictly required for DNA binding or for DNA-dependent activation. Rather, the WGR domain is the central regulatory domain of PARP-2 and PARP-3. Finally, PARP-1, PARP-2 and PARP-3 share an allosteric regulatory mechanism of DNA-dependent catalytic activation through a local destabilization of the CAT. Collectively, our study provides new insights into the specialization of the DNA-dependent PARPs and their specific roles in DNA repair pathways
机译:PARP-1,PARP-2和PARP-3是DNA依赖的PARP,它们定位于DNA损伤,合成与目标蛋白(包括它们自身)共价结合的聚(ADP-核糖)(PAR),从而募集DNA断裂的修复因子以增加维修效率。 PARP-1,PARP-2和PARP-3共有两个C端结构域-Trp-Gly-Arg(WGR)和催化(CAT)。相比之下,PARP-1的N端区域(NTR)超过500个残基,包括四个调节域,而PARP-2和PARP-3具有较小的NTR(分别为70和40个残基),其结构组成和功能未知。在这里,我们显示PARP-2和PARP-3被包含5'磷酸(5'P)的DNA断裂优先激活,表明对特定的DNA修复中间体,特别是对DNA连接有效的结构的选择性激活。与PARP-1相反,对于DNA结合或DNA依赖性激活,并不严格要求PARP-2和PARP-3的NTR。而是,WGR域是PARP-2和PARP-3的中央监管域。最后,PARP-1,PARP-2和PARP-3通过CAT的局部失稳共享DNA依赖性催化活化的变构调节机制。总的来说,我们的研究为依赖DNA的PARPs的专业化及其在DNA修复途径中的特殊作用提供了新的见解。

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