Lee Huijin, Rashid Fahad, Hwang Jihee, London James A, Fishel Richard, Berger James M, Myong Sua, Ha Taekjip
Howard Hughes Medical Institute and Programs in Cellular and Molecular Medicine, Boston Children's Hospital, Boston, MA 02115, United States.
Department of Biophysics and Biophysical Chemistry, Johns Hopkins School of Medicine, Baltimore, MD 21205, United States.
Nucleic Acids Res. 2025 Jun 20;53(12). doi: 10.1093/nar/gkaf581.
DNA supercoiling significantly influences DNA metabolic pathways. To examine its impact on DNA-protein interactions at the single-molecule level, we developed a highly efficient and reliable protocol to modify plasmid DNA at specific sites, allowing us to label plasmids with fluorophores and biotin. We then induced physiological levels of negative or positive supercoiling in these plasmids using gyrase or reverse gyrase, respectively. By comparing supercoiled DNA with relaxed circular DNA, we assessed the effects of supercoiling on CRISPR-Cas9 and the mismatch repair protein MutS. We found that negative DNA supercoiling exacerbates off-target effects in DNA unwinding by Cas9. For MutS, we observed that both negative and positive DNA supercoiling enhance the binding interaction between MutS and a mismatched base pair but do not affect the rate of ATP-induced sliding clamp formation. These findings not only underscore the versatility of our protocol but also open new avenues for exploring the intricate dynamics of protein-DNA interactions under the influence of supercoiling.
DNA超螺旋显著影响DNA代谢途径。为了在单分子水平上研究其对DNA-蛋白质相互作用的影响,我们开发了一种高效且可靠的方案,用于在特定位点修饰质粒DNA,使我们能够用荧光团和生物素标记质粒。然后,我们分别使用促旋酶或反向促旋酶在这些质粒中诱导生理水平的负超螺旋或正超螺旋。通过将超螺旋DNA与松弛的环状DNA进行比较,我们评估了超螺旋对CRISPR-Cas9和错配修复蛋白MutS的影响。我们发现,负DNA超螺旋会加剧Cas9解开DNA时的脱靶效应。对于MutS,我们观察到负DNA超螺旋和正DNA超螺旋都会增强MutS与错配碱基对之间的结合相互作用,但不影响ATP诱导的滑动夹形成速率。这些发现不仅突出了我们方案的多功能性,还为探索超螺旋影响下蛋白质-DNA相互作用的复杂动力学开辟了新途径。