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具有可控粗糙度的全 DNA 棒的自组装。

Self-Assembly of All-DNA Rods with Controlled Patchiness.

机构信息

Biomacromolecular Systems and Processes, Institute of Biological Information Processing (IBI-4), Forschungszentrum Jülich, D-52425, Jülich, Germany.

Dipartimento di Fisica, Sapienza Universita di Roma, Piazzale A. Moro 5, Roma, 00185, Italy.

出版信息

Small. 2022 Feb;18(5):e2104510. doi: 10.1002/smll.202104510. Epub 2021 Nov 27.

DOI:10.1002/smll.202104510
PMID:34837474
Abstract

Double-stranded DNA (dsDNA) fragments exhibit noncovalent attractive interactions between their tips. It is still unclear how DNA liquid crystal self-assembly is affected by such blunt-end attractions. It is demonstrated that stiff dsDNA fragments with moderate aspect ratio can specifically self-assemble in concentrated aqueous solutions into different types of smectic mesophases on the basis of selectively screening of blunt-end DNA stacking interactions. To this end, this type of attractions are engineered at the molecular level by constructing DNA duplexes where the attractions between one or both ends are screened by short hairpin caps. All-DNA bilayer and monolayer smectic-A type of phases, as well as a columnar phase, can be stabilized by controlling attractions strength. The results imply that the so far elusive smectic-A in DNA rod-like liquid crystals is a thermodynamically stable phase. The existence of the bilayer smectic phase is confirmed by Monte-Carlo simulations of hard cylinders decorated with one attractive terminal site. This work demonstrates that DNA blunt-ends behave as well-defined monovalent attractive patches whose strength and position can be potentially precisely tuned, highlighting unique opportunities concerning the stabilization of nonconventional DNA-based lyotropic liquid crystal phases assembled by all-DNA patchy particles with arbitrary geometry and composition.

摘要

双链 DNA(dsDNA)片段的末端之间存在非共价的吸引力。目前尚不清楚这种无末端吸引力如何影响 DNA 液晶的自组装。研究表明,具有适度纵横比的刚性 dsDNA 片段可以在浓缩水溶液中基于对无末端 DNA 堆积相互作用的选择性筛选,特异性地自组装成不同类型的近晶相。为此,通过构建双链体 DNA,在分子水平上对这种吸引力进行工程设计,其中一个或两个末端之间的吸引力通过短发夹帽进行筛选。通过控制吸引力强度,可以稳定全 DNA 双层和单层近晶 A 相以及柱状相。结果表明,到目前为止,在 DNA 棒状液晶中难以捉摸的近晶 A 相是一种热力学稳定相。双层近晶相的存在通过用一个有吸引力的末端修饰的硬圆柱体的蒙特卡罗模拟得到证实。这项工作表明,DNA 无末端表现为定义明确的单价吸引力斑,其强度和位置可以潜在地精确调节,突出了通过具有任意几何形状和组成的全 DNA 有缺陷颗粒稳定非传统 DNA 溶致液晶相的独特机会。

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