Structural Biology Group, European Synchrotron Radiation Facility, Grenoble, France ; University Grenoble Alpes, Institut de Biologie structurale, Grenoble, France ; Centre National de la Recherche Scientifique, Institut de Biologie structurale, Grenoble, France ; Commissariat à l'énergie atomique et aux énergies alternatives, Département du Science du Vivant, Institut de Biologie structurale, Grenoble, France.
PLoS One. 2013 Oct 15;8(10):e77364. doi: 10.1371/journal.pone.0077364. eCollection 2013.
DNA helicases are responsible for unwinding the duplex DNA, a key step in many biological processes. UvrD is a DNA helicase involved in several DNA repair pathways. We report here crystal structures of Deinococcus radiodurans UvrD (drUvrD) in complex with DNA in different nucleotide-free and bound states. These structures provide us with three distinct snapshots of drUvrD in action and for the first time trap a DNA helicase undergoing a large-scale spiral movement around duplexed DNA. Our structural data also improve our understanding of the molecular mechanisms that regulate DNA unwinding by Superfamily 1A (SF1A) helicases. Our biochemical data reveal that drUvrD is a DNA-stimulated ATPase, can translocate along ssDNA in the 3'-5' direction and shows ATP-dependent 3'-5', and surprisingly also, 5'-3' helicase activity. Interestingly, we find that these translocase and helicase activities of drUvrD are modulated by the ssDNA binding protein. Analysis of drUvrD mutants indicate that the conserved β-hairpin structure of drUvrD that functions as a separation pin is critical for both drUvrD's 3'-5' and 5'-3' helicase activities, whereas the GIG motif of drUvrD involved in binding to the DNA duplex is essential for the 5'-3' helicase activity only. These special features of drUvrD may reflect its involvement in a wide range of DNA repair processes in vivo.
DNA 解旋酶负责解开双链 DNA,这是许多生物过程中的关键步骤。UvrD 是一种参与多种 DNA 修复途径的 DNA 解旋酶。我们在此报告了与不同核苷酸结合和未结合状态下的 DNA 的 Deinococcus radiodurans UvrD(drUvrD)复合物的晶体结构。这些结构为我们提供了 drUvrD 作用的三个不同快照,并且首次捕获到 DNA 解旋酶在双链 DNA 周围进行大规模螺旋运动。我们的结构数据还提高了我们对调节 Superfamily 1A(SF1A)解旋酶 DNA 解旋的分子机制的理解。我们的生化数据表明,drUvrD 是一种 DNA 刺激的 ATP 酶,能够沿 3' - 5' 方向在 ssDNA 上移位,并表现出 ATP 依赖性的 3' - 5' 和令人惊讶的 5' - 3' 解旋酶活性。有趣的是,我们发现 drUvrD 的这些转位酶和解旋酶活性受 ssDNA 结合蛋白的调节。drUvrD 突变体的分析表明,drUvrD 作为分离钉起作用的保守β发夹结构对于 drUvrD 的 3' - 5' 和 5' - 3' 解旋酶活性都至关重要,而 drUvrD 参与与 DNA 双链结合的 GIG 基序对于 5' - 3' 解旋酶活性是必不可少的。drUvrD 的这些特殊特征可能反映了它在体内广泛的 DNA 修复过程中的参与。