Department of Physics, National University of Singapore, Singapore 117542.
Université de Paris, UFR SDV, 75006 Paris, France.
J Phys Chem Lett. 2020 Oct 1;11(19):8424-8429. doi: 10.1021/acs.jpclett.0c02251. Epub 2020 Sep 22.
Protein transport on DNA is at the core of the machinery of life. Here we investigated the influence of DNA internal motion on the mobility of Hfq, which is involved in several aspects of nucleic acid metabolism and is one of the nucleoid-associated proteins that shape the bacterial chromosome. Fluorescence microscopy was used to follow Hfq on double-stranded DNA that was stretched by confinement to a channel with a diameter of 125 nm. The protein mobility shows a strong dependence on the internal motion of DNA in that slower motion results in faster protein diffusion. A model of released diffusion is proposed that is based on three-dimensional diffusion through the interior of the DNA coil interspersed by periods in which the protein is immobilized in a bound state. We surmise that the coupling between DNA internal motion and protein mobility has important implications for DNA metabolism and protein-binding-related regulation of gene expression.
蛋白质在 DNA 上的运输是生命机器的核心。在这里,我们研究了 DNA 内部运动对 Hfq 迁移率的影响,Hfq 参与了核酸代谢的几个方面,是形成细菌染色体的核体相关蛋白之一。荧光显微镜用于跟踪在双螺旋 DNA 上的 Hfq,该 DNA 被限制在直径为 125nm 的通道中而被拉伸。蛋白质的迁移率强烈依赖于 DNA 的内部运动,即较慢的运动导致更快的蛋白质扩散。提出了一种释放扩散模型,该模型基于通过 DNA 线圈内部的三维扩散,其中穿插着蛋白质在结合状态下固定的时期。我们推测,DNA 内部运动和蛋白质迁移率之间的耦合对 DNA 代谢和与蛋白质结合相关的基因表达调控具有重要意义。