过程性
突变
DNA
ATP水解
ATP酶
生物物理学
DNA复制
生物
突变
噬菌体
DNA钳
细胞生物学
生物化学
化学
酶
核糖核酸
基因
大肠杆菌
逆转录酶
作者
Kendra Marcus,Yongjian Huang,Subu Subramanian,Christine L. Gee,Kent Gorday,Sam Ghaffari-Kashani,Xiao Ran Luo,Lisa Zheng,Mike O’Donnell,Sriram Subramaniam,John Kuriyan
标识
DOI:10.1038/s41594-023-01177-3
摘要
Clamp loaders are AAA+ ATPases that facilitate high-speed DNA replication. In eukaryotic and bacteriophage clamp loaders, ATP hydrolysis requires interactions between aspartate residues in one protomer, present in conserved 'DEAD-box' motifs, and arginine residues in adjacent protomers. We show that functional defects resulting from a DEAD-box mutation in the T4 bacteriophage clamp loader can be compensated by widely distributed single mutations in the ATPase domain. Using cryo-EM, we discovered an unsuspected inactive conformation of the clamp loader, in which DNA binding is blocked and the catalytic sites are disassembled. Mutations that restore function map to regions of conformational change upon activation, suggesting that these mutations may increase DNA affinity by altering the energetic balance between inactive and active states. Our results show that there are extensive opportunities for evolution to improve catalytic efficiency when an inactive intermediate is involved. Here, using deep mutagenesis and cryo-EM, the authors unveil an autoinhibited conformation of a clamp loader from T4 bacteriophage, which is characterized by disassembled catalytic sites and blocked DNA binding.
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