Molecular Biophysics Unit, Indian Institute of Science, Bengaluru 560012, India.
Department of Biochemistry, Indian Institute of Science, Bengaluru 560012, India.
J Mol Biol. 2024 Nov 1;436(21):168806. doi: 10.1016/j.jmb.2024.168806. Epub 2024 Sep 28.
DNA binding protein from starved cells (Dps) is a miniature ferritin complex, which plays a vital role in protecting bacterial DNA during starvation to maintain the integrity of bacteria under hostile conditions. Several approaches, including cryo-electron tomography, have been previously implemented by other research groups to decipher the structure of the Dps protein bound to DNA. However, none of the structures of the Dps-DNA complex was resolved to high resolution to identify the DNA binding residues. Like other bacteria, Mycobacterium smegmatis also expresses Dps2 (called MsDps2), which binds DNA to protect it under oxidative stress conditions. In this study, we implemented various biochemical and biophysical studies to characterize the DNA protein interactions of Dps2 protein from Mycobacterium smegmatis. We employed single-particle cryo-EM-based structural analysis of MsDps2-DNA complexes and identified that the region close to the N-terminus confers the DNA binding property. Based on cryo-EM data, we also pinpointed several arginine residues, proximal to the DNA binding region, responsible for DNA binding. We also performed mutations of these residues, which dramatically reduced the MsDps2-DNA interaction. In addition, we proposed a model that elucidates the mechanism of DNA compaction, which adapts a lattice-like structure. We performed single-molecule imaging of MsDps2-DNA interactions that corroborate well with our structural studies. Taken together, our results delineate the specific MsDps2 residues that play an important role in DNA binding and compaction, providing new insights into Mycobacterial DNA compaction mechanisms under stress conditions.
饥饿细胞 DNA 结合蛋白(Dps)是一种微型铁蛋白复合物,在细菌饥饿时保护细菌 DNA 方面发挥着至关重要的作用,以维持细菌在恶劣条件下的完整性。以前,其他研究小组已经采用了包括冷冻电镜断层扫描在内的几种方法来解析与 DNA 结合的 Dps 蛋白的结构。然而,没有一个 Dps-DNA 复合物的结构被解析到高分辨率,以确定 DNA 结合残基。与其他细菌一样,耻垢分枝杆菌也表达 Dps2(称为 MsDps2),它能结合 DNA 以保护其免受氧化应激条件的影响。在这项研究中,我们实施了各种生化和生物物理研究,以表征耻垢分枝杆菌 Dps2 蛋白的 DNA 蛋白相互作用。我们采用了基于单颗粒冷冻电镜的 MsDps2-DNA 复合物的结构分析,并确定了靠近 N 端的区域赋予了 DNA 结合特性。基于冷冻电镜数据,我们还确定了靠近 DNA 结合区域的几个精氨酸残基负责 DNA 结合。我们还对这些残基进行了突变,这大大降低了 MsDps2-DNA 的相互作用。此外,我们提出了一个模型,阐明了 DNA 紧缩的机制,它适应了晶格状结构。我们进行了 MsDps2-DNA 相互作用的单分子成像,这与我们的结构研究非常吻合。总之,我们的结果描绘了特定的 MsDps2 残基,这些残基在 DNA 结合和紧缩中起着重要作用,为应激条件下分枝杆菌 DNA 紧缩机制提供了新的见解。