You Huijuan, Lattmann Simon, Rhodes Daniela, Yan Jie
Mechanobiology Institute, National University of Singapore, 117411, Singapore.
NTU Institute of Structural Biology, Nanyang Technological University, 636921, Singapore.
Nucleic Acids Res. 2017 Jan 9;45(1):206-214. doi: 10.1093/nar/gkw881. Epub 2016 Oct 5.
The DEAH-box ATP-dependent RHAU helicases specifically unfold RNA and DNA G-quadruplexes (G4s). However, it remains unclear how the RHAU's G4 unfolding activity is coupled to different stages of the ATPase cycle. Here, using a single-molecule manipulation approach, we show that binding of Drosophila RHAU stabilizes an intramolecularly folded parallel DNA G4 against mechanical unfolding in its nucleotide-free and in its AMP-PNP or ADP bound states, while it destabilizes the G4 when coupled to ATP hydrolysis. Importantly, our results show that the ADP·AlF[Formula: see text]-bound RHAU does not stabilize the G4. We also found that both a single-stranded 3' DNA tail and the RSM domain of RHAU that binds specifically to the G4 structure, are dispensable for the stabilization of the G4, but both are required for G4 destabilization. Our study provides the first evidence that the unfolding kinetics of a G-quadruplex can be modulated by different nucleotide-bound states of the helicase.
DEAH盒ATP依赖型RHAU解旋酶能特异性地解开RNA和DNA G-四链体(G4s)。然而,目前尚不清楚RHAU的G4解旋活性是如何与ATP酶循环的不同阶段相偶联的。在此,我们采用单分子操作方法表明,果蝇RHAU的结合在其无核苷酸状态以及结合AMP-PNP或ADP时,能稳定分子内折叠的平行DNA G4,使其抵抗机械解旋,而当与ATP水解偶联时则会使G4不稳定。重要的是,我们的结果表明,结合ADP·AlF[化学式:见原文]的RHAU不能稳定G4。我们还发现,单链3' DNA尾巴和RHAU中特异性结合G4结构的RSM结构域对于G4的稳定都是不必要的,但两者对于G4的不稳定都是必需的。我们的研究首次证明,G-四链体的解旋动力学可由解旋酶的不同核苷酸结合状态调节。