Centre of New Technologies, University of Warsaw, Warsaw, Poland.
Faculty of Mathematics and Information Science, Warsaw University of Technology, Warsaw, Poland.
Bioessays. 2023 Oct;45(10):e2200240. doi: 10.1002/bies.202200240. Epub 2023 Aug 21.
Recent advances in genomic and imaging techniques have revealed the complex manner of organizing billions of base pairs of DNA necessary for maintaining their functionality and ensuring the proper expression of genetic information. The SMC proteins and cohesin complex primarily contribute to forming higher-order chromatin structures, such as chromosomal territories, compartments, topologically associating domains (TADs) and chromatin loops anchored by CCCTC-binding factor (CTCF) protein or other genome organizers. Cohesin plays a fundamental role in chromatin organization, gene expression and regulation. This review aims to describe the current understanding of the dynamic nature of the cohesin-DNA complex and its dependence on cohesin for genome maintenance. We discuss the current 3C technique and numerous bioinformatics pipelines used to comprehend structural genomics and epigenetics focusing on the analysis of Cohesin-centred interactions. We also incorporate our present comprehension of Loop Extrusion (LE) and insights from stochastic modelling.
近年来,基因组学和成像技术的进步揭示了组织数十亿个 DNA 碱基对以维持其功能和确保遗传信息正确表达的复杂方式。SMC 蛋白和黏合蛋白复合物主要有助于形成更高阶的染色质结构,如染色体区域、隔室、拓扑关联域 (TAD) 和由 CCCTC 结合因子 (CTCF) 蛋白或其他基因组组织者锚定的染色质环。黏合蛋白在染色质组织、基因表达和调控中起着至关重要的作用。本综述旨在描述黏合蛋白-DNA 复合物的动态特性及其对基因组维持的黏合蛋白依赖性的当前理解。我们讨论了当前用于理解结构基因组学和表观遗传学的 3C 技术和众多生物信息学管道,重点是分析以黏合蛋白为中心的相互作用。我们还纳入了我们对环挤出 (LE) 的当前理解和来自随机建模的见解。