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DNA液滴的序列依赖性融合动力学和物理性质。

Sequence-dependent fusion dynamics and physical properties of DNA droplets.

作者信息

Sato Yusuke, Takinoue Masahiro

机构信息

Department of Computer Science, Tokyo Institute of Technology 4259, Nagatsuta-cho, Midori-ku Yokoham Kanagawa 226-8502 Japan

Department of Intelligent and Control Systems, Kyushu Institute of Technology 680-4 Kawazu, IIzuka Fukuoka 820-8502 Japan

出版信息

Nanoscale Adv. 2023 Feb 14;5(7):1919-1925. doi: 10.1039/d3na00073g. eCollection 2023 Mar 28.

Abstract

Liquid-liquid phase separation (LLPS) of biopolymer molecules generates liquid-like droplets. Physical properties such as viscosity and surface tension play important roles in the functions of these droplets. DNA-nanostructure-based LLPS systems provide useful model tools to investigate the influence of molecular design on the physical properties of the droplets, which has so far remained unclear. Herein, we report changes in the physical properties of DNA droplets by sticky end (SE) design in DNA nanostructures. We used a Y-shaped DNA nanostructure (Y-motif) with three SEs as a model structure. Seven different SE designs were used. The experiments were performed at the phase transition temperature where the Y-motifs self-assembled into droplets. We found that the DNA droplets assembled from the Y-motifs with longer SEs exhibited a longer coalescence period. In addition, the Y-motifs with the same length but different sequence SEs showed slight variations in the coalescence period. Our results suggest that the SE length greatly affected the surface tension at the phase transition temperature. We believe that these findings will accelerate our understanding of the relationship between molecular design and the physical properties of droplets formed LLPS.

摘要

生物聚合物分子的液-液相分离(LLPS)产生类液滴。诸如粘度和表面张力等物理性质在这些液滴的功能中起着重要作用。基于DNA纳米结构的LLPS系统提供了有用的模型工具,以研究分子设计对液滴物理性质的影响,而这一点迄今仍不清楚。在此,我们报告了通过DNA纳米结构中的粘性末端(SE)设计对DNA液滴物理性质的改变。我们使用具有三个SE的Y形DNA纳米结构(Y基序)作为模型结构。使用了七种不同的SE设计。实验在Y基序自组装成液滴的相变温度下进行。我们发现,由具有更长SE的Y基序组装而成的DNA液滴表现出更长的聚并期。此外,具有相同长度但不同序列SE的Y基序在聚并期表现出轻微差异。我们的结果表明,SE长度在相变温度下极大地影响了表面张力。我们相信,这些发现将加速我们对分子设计与由LLPS形成的液滴物理性质之间关系的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e263/10044877/63a6b8ce5522/d3na00073g-f1.jpg

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