通过分子动力学模拟了解结扎DNA晶体的结构力学。

IF 6.6 2区 材料科学 Q1 CHEMISTRY, PHYSICAL
Yoo Hyun Kim, Anirudh S Madhvacharyula, Ruixin Li, Alexander A Swett, Seongmin Seo, Emile J Batchelder-Schwab, Naseem Siraj, Chengde Mao, Jong Hyun Choi
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引用次数: 0

摘要

DNA自组装是一种基于序列互补性构建任意结构的高度可编程方法。在各种结构体中,DNA晶体是由基序通过粘端缔合组装而成的宏观结晶材料。由于其高度的结构完整性和尺寸范围从几十到几百微米,DNA晶体提供了独特的机会来研究DNA组装的结构特性和变形行为。例如,酶连接粘端可以选择性地密封切口,从而产生更坚固的结构,增强机械性能。然而,目前的研究工作主要集中在不同基序设计、结构优化或新的合成方法的实验上,其机理尚未完全了解。DNA晶体的复杂性质很难单独通过实验来研究,而数值模拟可以对实验进行补充和辅助。粗粒度分子动力学(MD)模拟是研究DNA组装机制的有力工具。在这里,我们使用开源的粗粒度MD平台oxDNA研究了由四种不同基序长度和各种连接模式(全连接、主要方向、连接器和平面内)组成的DNA晶体。我们发现几个不同的变形阶段出现在响应机械载荷和连接核苷酸的数量和位置可以显著调节结构行为。这些发现将有助于预测晶体性质,从而改进设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Understanding the structural mechanics of ligated DNA crystals via molecular dynamics simulation.

DNA self-assembly is a highly programmable method to construct arbitrary architectures based on sequence complementarity. Among various constructs, DNA crystals are macroscopic crystalline materials formed by assembling motifs via sticky end association. Due to their high structural integrity and size ranging from tens to hundreds of micrometers, DNA crystals offer unique opportunities to study the structural properties and deformation behaviors of DNA assemblies. For example, enzymatic ligation of sticky ends can selectively seal nicks resulting in more robust structures with enhanced mechanical properties. However, the research efforts have been mostly on experiments involving different motif designs, structural optimization, or new synthesis methods, while their mechanics are not yet fully understood. The complex properties of DNA crystals are difficult to study via experiments alone, and numerical simulation can complement and aid the experiments. The coarse-grained molecular dynamics (MD) simulation is a powerful tool that can probe the mechanics of DNA assemblies. Here, we investigate DNA crystals made of four different motif lengths with various ligation patterns (full ligation, major directions, connectors, and in-plane) using oxDNA, an open-source, coarse-grained MD platform. We found that several distinct deformation stages emerge in response to mechanical loading and that the number and the location of ligated nucleotides can significantly modulate structural behaviors. These findings should be useful for predicting crystal properties and thus improving the design.

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来源期刊
Nanoscale Horizons
Nanoscale Horizons Materials Science-General Materials Science
CiteScore
16.30
自引率
1.00%
发文量
141
期刊介绍: Nanoscale Horizons stands out as a premier journal for publishing exceptionally high-quality and innovative nanoscience and nanotechnology. The emphasis lies on original research that introduces a new concept or a novel perspective (a conceptual advance), prioritizing this over reporting technological improvements. Nevertheless, outstanding articles showcasing truly groundbreaking developments, including record-breaking performance, may also find a place in the journal. Published work must be of substantial general interest to our broad and diverse readership across the nanoscience and nanotechnology community.
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