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用于表征G-四链体和G-四链体-蛋白质复合物的电泳迁移率变动分析及硫酸二甲酯足迹法

Electrophoretic Mobility Shift Assay and Dimethyl Sulfate Footprinting for Characterization of G-Quadruplexes and G-Quadruplex-Protein Complexes.

作者信息

Onel Buket, Wu Guanhui, Sun Daekyu, Lin Clement, Yang Danzhou

机构信息

Medicinal Chemistry and Molecular Pharmacology, College of Pharmacy, Purdue University, West Lafayette, IN, USA.

University of Arizona, College of Pharmacy, Tucson, AZ, USA.

出版信息

Methods Mol Biol. 2019;2035:201-222. doi: 10.1007/978-1-4939-9666-7_11.

Abstract

DNA G-quadruplexes are globular nucleic acid secondary structures which occur throughout the human genome under physiological conditions. There is accumulating evidence supporting G-quadruplex involvement in a number of important aspects of genome functions, including transcription, replication, and genomic stability, and that protein and enzyme recognition of G-quadruplexes may represent a key event to regulate physiological or pathological pathways. Two important techniques to study G-quadruplexes and their protein interactions are the electrophoretic mobility shift assay (EMSA) and dimethyl sulfate (DMS) footprinting assay. EMSA, one of the most sensitive and robust methods for studying the DNA-protein interactions, can be used to determine the binding parameters and relative affinities of a protein for the G-quadruplex. DMS footprinting is a powerful assay for the initial characterization of G-quadruplexes, which can be used to deduce the guanine bases involved in the formation of G-tetrads under physiological salt conditions. DMS footprinting can also reveal important information in G-quadruplex-protein complexes on protein contacts and regional changes in DNA G-quadruplex upon protein binding. In this paper, we will provide a detailed protocol for the EMSA and DMS footprinting assays for characterization of G-quadruplexes and G-quadruplex-protein complexes. Expected outcomes and references to extensions of the method will be further discussed.

摘要

DNA G-四链体是在生理条件下存在于整个人类基因组中的球状核酸二级结构。越来越多的证据支持G-四链体参与基因组功能的许多重要方面,包括转录、复制和基因组稳定性,并且蛋白质和酶对G-四链体的识别可能代表调节生理或病理途径的关键事件。研究G-四链体及其与蛋白质相互作用的两种重要技术是电泳迁移率变动分析(EMSA)和硫酸二甲酯(DMS)足迹分析。EMSA是研究DNA-蛋白质相互作用最灵敏、最可靠的方法之一,可用于确定蛋白质与G-四链体的结合参数和相对亲和力。DMS足迹分析是对G-四链体进行初步表征的有力方法,可用于推断在生理盐条件下参与形成G-四联体的鸟嘌呤碱基。DMS足迹分析还可以揭示G-四链体-蛋白质复合物中关于蛋白质接触以及蛋白质结合后DNA G-四链体区域变化的重要信息。在本文中,我们将提供用于表征G-四链体和G-四链体-蛋白质复合物的EMSA和DMS足迹分析的详细方案。还将进一步讨论预期结果以及该方法的扩展参考文献。

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