Tan Chuan Jie, Basak Rajib, Yadav Indresh, van Kan Jeroen A, Arluison Véronique, van der Maarel Johan R C
Department of Physics, National University of Singapore, Singapore 117542, Singapore.
Université de Paris, UFR SDV, Paris 75006, France.
J Phys Chem B. 2022 Feb 24;126(7):1477-1482. doi: 10.1021/acs.jpcb.1c10234. Epub 2022 Feb 15.
The mobility of protein is fundamental in the machinery of life. Here, we have investigated the effect of DNA binding in conjunction with DNA segmental fluctuation (internal motion) of the bacterial Hfq master regulator devoid of its amyloid C-terminus domain. Hfq is one of the most abundant nucleoid associated proteins that shape the bacterial chromosome and is involved in several aspects of nucleic acid metabolism. Fluorescence microscopy has been used to track a C-terminus domain lacking mutant form of Hfq on double-stranded DNA, which is stretched by confinement to a rectangular nanofluidic channel. The mobility of the mutant is strongly accelerated with respect to the wild-type variant. Furthermore, it shows a reverse dependence on the internal motion of DNA, in that slower motion results in slower protein diffusion. The results demonstrate the subtle role of DNA internal motion in controlling the mobility of a nucleoid associated protein, and, in particular, the importance of transient binding and moving DNA strands out of the way.
蛋白质的移动性是生命机制的基础。在此,我们研究了DNA结合以及缺乏淀粉样C末端结构域的细菌Hfq主调节因子的DNA片段波动(内部运动)的影响。Hfq是最丰富的类核相关蛋白之一,它塑造细菌染色体并参与核酸代谢的多个方面。荧光显微镜已被用于追踪双链DNA上缺乏Hfq突变形式的C末端结构域,该双链DNA通过限制在矩形纳米流体通道中而被拉伸。相对于野生型变体,突变体的移动性被强烈加速。此外,它显示出对DNA内部运动的反向依赖性,即较慢的运动会导致较慢的蛋白质扩散。结果证明了DNA内部运动在控制类核相关蛋白移动性方面的微妙作用,特别是瞬态结合和移动DNA链以腾出空间的重要性。