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Dynamics of physiologically relevant noncanonical DNA structures: an overview from experimental and theoretical studies

机译:生理相关非碳化性DNA结构的动态:实验与理论研究的概述

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摘要

DNA is a complex molecule with phenomenal inherent plasticity and the ability to form different hydrogen bonding patterns of varying stabilities. These properties enable DNA to attain a variety of structural and conformational polymorphic forms. Structurally, DNA can exist in single-stranded form or as higher-order structures, which include the canonical double helix as well as the noncanonical duplex, triplex and quadruplex species. Each of these structural forms in turn encompasses an ensemble of dynamically heterogeneous conformers depending on the sequence composition and environmental context. In vivo, the widely populated canonical B-DNA attains these noncanonical polymorphs during important cellular processes. While several investigations have focused on the structure of these noncanonical DNA, studying their dynamics has remained nontrivial. Here, we outline findings from some recent advanced experimental and molecular simulation techniques that have significantly contributed toward understanding the complex dynamics of physiologically relevant noncanonical forms of DNA.
机译:DNA是具有现象性可塑性的复杂分子和形成不同稳定性的不同氢键图案的能力。这些特性使DNA能够获得各种结构和构象的多态性形式。在结构上,DNA可以以单链形式存在或作为高阶结构存在,其包括规范双螺旋​​以及非甘露透化双链体,三重单行物种。这些结构形式中的每一个又包括根据序列组成和环境背景的动态异质化簇的集合。在体内,广泛填充的规范B-DNA在重要的细胞过程中达到这些非甘露解的多晶型物。虽然几种调查专注于这些非甘露解性DNA的结构,但研究其动力学仍然是不动的。在这里,我们从一些最近的先进实验和分子模拟技术概述了结果,这些技术已经显着促进了解生理相关非碳形式的DNA的复杂动态。

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