Xiong Kun, Mitomo Hideyuki, Su Xueming, Shi Yier, Yonamine Yusuke, Sato Shin-Ichiro, Ijiro Kuniharu
Graduate School of Life Sciences, Hokkaido University Kita 10, Nishi 8, Kita-Ku Sapporo 060-0810 Japan.
Research Institute for Electronic Science, Hokkaido University Kita 21, Nishi 10, Kita-Ku Sapporo 001-0021 Japan
Nanoscale Adv. 2021 Mar 26;3(13):3762-3769. doi: 10.1039/d1na00187f. eCollection 2021 Jun 30.
Biomolecular systems actively control their local environment on a sub-nm scale changes in molecular configuration from their flexible structures and derive emergent functions. Although this functional emergence based on local environmental control is attracting a great deal of attention in chemistry, it remains challenging to realize this artificially. Herein, we report the tuning of the thermo-responsive properties of oligo(ethylene glycol) (OEG) derivatives attached on gold nanoparticles local environmental control not only by the hydrophobic moiety at their terminus but also by their molecular configuration. OEG-attached alkane thiol-modified AuNPs showed thermo-responsive assembly/disassembly in water through the hydration/dehydration of the OEG portions in a manner dependent both on the hydrophobicity at their terminus and the surface curvature of the core nanoparticles. Further, the assembly temperature ( ) was also tuned by ligand mixing with a non-thermo-responsive ligand with a shorter OEG length. Molecular dynamics simulations show that the distribution of the hydrophobic terminus in the normal direction along the gold surface varied in accordance with the surface curvature, indicating variations in molecular configuration. It is expected that a bent configuration could accelerate the thermo-responsiveness of OEG by allowing them greater accessibility to the hydrophobic terminus. Experimental and simulation results support the notion that local OEG density tuning by surface curvature or ligand mixing with a different OEG length leads to different degrees of accessibility to the hydrophobic terminus changes in molecular configuration, promoting local environmental control-directed assembly temperature tuning.
生物分子系统在亚纳米尺度上积极控制其局部环境,通过其灵活结构的分子构型变化衍生出涌现功能。尽管这种基于局部环境控制的功能涌现现象在化学领域备受关注,但要人工实现这一点仍具有挑战性。在此,我们报告了附着在金纳米颗粒上的聚乙二醇(OEG)衍生物的热响应特性的调控,局部环境控制不仅受其末端疏水部分的影响,还受其分子构型的影响。连接有OEG的烷硫醇修饰的金纳米颗粒在水中通过OEG部分的水合/脱水表现出热响应组装/解组装,其方式既取决于末端的疏水性,也取决于核心纳米颗粒的表面曲率。此外,组装温度( )还可通过与具有较短OEG长度的非热响应配体混合配体来调节。分子动力学模拟表明,沿金表面法线方向疏水末端的分布随表面曲率而变化,表明分子构型存在差异。预计弯曲构型可通过使OEG更易接近疏水末端来加速其热响应性。实验和模拟结果支持这样一种观点,即通过表面曲率或与不同OEG长度的配体混合来调节局部OEG密度会导致对疏水末端的可及程度不同,即分子构型发生变化,从而促进基于局部环境控制的组装温度调节。