Department of Biochemistry, Eötvös University, Pázmány P. s. 1/c, H-1117 Budapest, Hungary.
Nucleic Acids Res. 2010 Jul;38(13):4404-14. doi: 10.1093/nar/gkq145. Epub 2010 Mar 8.
BLM, one of the human RecQ helicases, plays a fundamental role in homologous recombination-based error-free DNA repair pathways, which require its translocation and DNA unwinding activities. Although translocation is essential in vivo during DNA repair processes and it provides a framework for more complex activities of helicases, including strand separation and nucleoprotein displacement, its mechanism has not been resolved for any human DNA helicase. Here, we present a quantitative model for the translocation of a monomeric form of BLM along ssDNA. We show that BLM performs translocation at a low adenosine triphosphate (ATP) coupling ratio (1 ATP consumed/1 nucleotide traveled) and moderate processivity (with a mean number of 50 nucleotides traveled in a single run). We also show that the rate-limiting step of the translocation cycle is a transition between two ADP-bound enzyme states. Via opening of the helicase core, this structural change may drive the stepping of BLM along the DNA track by a directed inchworm mechanism. The data also support the conclusion that BLM performs double-stranded DNA unwinding by fully active duplex destabilization.
BLM 是人类 RecQ 解旋酶家族的一员,在同源重组修复途径中发挥着重要作用,该途径需要其进行移位和 DNA 解旋活动。虽然在体内的 DNA 修复过程中移位是必不可少的,并且它为解旋酶的更复杂的活动提供了一个框架,包括链分离和核蛋白位移,但对于任何人类 DNA 解旋酶,其机制尚未解决。在这里,我们提出了一种沿 ssDNA 进行单体形式 BLM 移位的定量模型。我们表明,BLM 以低腺苷三磷酸 (ATP) 偶联比(1 个 ATP 消耗/1 个核苷酸迁移)和中等的进程性(在单个运行中平均迁移 50 个核苷酸)进行移位。我们还表明,移位循环的限速步骤是两种 ADP 结合酶状态之间的转变。通过打开解旋酶核心,这种结构变化可能通过定向尺蠖机制驱动 BLM 沿着 DNA 轨道前进。数据还支持 BLM 通过完全活性的双链体失稳来进行双链 DNA 解旋的结论。