Murugesapillai Divakaran, McCauley Micah J, Maher L James, Williams Mark C
Department of Physics, Northeastern University, Boston, MA 02115 USA.
Department of Biochemistry and Molecular Biology, Mayo Clinic College of Medicine, Rochester, MN 55905 USA.
Biophys Rev. 2016 Nov 15;9(1):17-40. doi: 10.1007/s12551-016-0236-4. eCollection 2017 Feb.
Protein-DNA interactions can be characterized and quantified using single molecule methods such as optical tweezers, magnetic tweezers, atomic force microscopy, and fluorescence imaging. In this review, we discuss studies that characterize the binding of high-mobility group B (HMGB) architectural proteins to single DNA molecules. We show how these studies are able to extract quantitative information regarding equilibrium binding as well as non-equilibrium binding kinetics. HMGB proteins play critical but poorly understood roles in cellular function. These roles vary from the maintenance of chromatin structure and facilitation of ribosomal RNA transcription (yeast high-mobility group 1 protein) to regulatory and packaging roles (human mitochondrial transcription factor A). We describe how these HMGB proteins bind, bend, bridge, loop and compact DNA to perform these functions. We also describe how single molecule experiments observe multiple rates for dissociation of HMGB proteins from DNA, while only one rate is observed in bulk experiments. The measured single-molecule kinetics reveals a local, microscopic mechanism by which HMGB proteins alter DNA flexibility, along with a second, much slower macroscopic rate that describes the complete dissociation of the protein from DNA.
蛋白质与DNA的相互作用可以通过单分子方法进行表征和定量,如光镊、磁镊、原子力显微镜和荧光成像。在本综述中,我们讨论了表征高迁移率族B(HMGB)结构蛋白与单个DNA分子结合的研究。我们展示了这些研究如何能够提取有关平衡结合以及非平衡结合动力学的定量信息。HMGB蛋白在细胞功能中发挥着关键但尚未完全了解的作用。这些作用从维持染色质结构和促进核糖体RNA转录(酵母高迁移率族1蛋白)到调节和包装作用(人类线粒体转录因子A)不等。我们描述了这些HMGB蛋白如何结合、弯曲、桥接、环化和压缩DNA以执行这些功能。我们还描述了单分子实验如何观察到HMGB蛋白从DNA解离的多种速率,而在大量实验中仅观察到一种速率。测量的单分子动力学揭示了一种局部的微观机制,通过该机制HMGB蛋白改变DNA的柔韧性,以及第二种慢得多的宏观速率,该速率描述了蛋白质从DNA的完全解离。