Young Robert T, Czapla Luke, Wefers Zoe O, Cohen Benjamin M, Olson Wilma K
Department of Chemistry & Chemical Biology, Center for Quantitative Biology, Rutgers, The State University of New Jersey, Piscataway, NJ 08854, USA.
Memorial Sloan Kettering Cancer Center, New York, NY 10065, USA.
Life (Basel). 2022 May 20;12(5):759. doi: 10.3390/life12050759.
DNA carries more than the list of biochemical ingredients that drive the basic functions of living systems. The sequence of base pairs includes a multitude of structural and energetic signals, which determine the degree to which the long, threadlike molecule moves and how it responds to proteins and other molecules that control its processing and govern its packaging. The chemical composition of base pairs directs the spatial disposition and fluctuations of successive residues. The observed arrangements of these moieties in high-resolution protein-DNA crystal structures provide one of the best available estimates of the natural, sequence-dependent structure and deformability of the double-helical molecule. Here, we update the set of knowledge-based elastic potentials designed to describe the observed equilibrium structures and configurational fluctuations of the ten unique base-pair steps. The large number of currently available structures makes it possible to characterize the configurational preferences of the DNA base-pair steps within the context of their immediate neighbors, i.e., tetrameric context. Use of these knowledge-based potentials shows promise in accounting for known effects of sequence in long chain molecules, e.g., the degree of curvature reported in classic gel mobility studies and the recently reported sequence-dependent responses of supercoiled minicircles to nuclease cleavage.
DNA携带的不仅仅是驱动生命系统基本功能的生化成分清单。碱基对序列包含大量的结构和能量信号,这些信号决定了这个细长的线状分子的移动程度,以及它如何响应控制其加工和支配其包装的蛋白质和其他分子。碱基对的化学组成决定了连续残基的空间排列和波动。在高分辨率蛋白质-DNA晶体结构中观察到的这些部分的排列,为双螺旋分子的天然、序列依赖性结构和可变形性提供了最佳的可用估计之一。在这里,我们更新了基于知识的弹性势能集,旨在描述十个独特碱基对步的观察到的平衡结构和构型波动。目前大量可用的结构使得在其直接相邻碱基对的背景下,即四聚体背景下,表征DNA碱基对步的构型偏好成为可能。使用这些基于知识的势能有望解释长链分子中已知的序列效应,例如经典凝胶迁移率研究中报道的曲率程度,以及最近报道的超螺旋小环对核酸酶切割的序列依赖性反应。