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肽键接枝叉型介晶在水/液晶界面的自组装:通过生物分子特异性结合诱导有序转变的分子设计。

Self-Assembly of Peptide-Conjugated Forklike Mesogens at Aqueous/Liquid Crystalline Interfaces: Molecular Design for Ordering Transition Induced by Specific Binding of Biomolecules.

机构信息

Department of Chemistry and Biotechnology, School of Engineering, The University of Tokyo, Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.

Department of Materials Science, Graduate School of Engineering, Osaka Metropolitan University, Gakuen-cho, Naka-ku, Sakai, Osaka 599-8570, Japan.

出版信息

ACS Appl Mater Interfaces. 2023 Aug 2;15(30):36657-36666. doi: 10.1021/acsami.3c04289. Epub 2023 Jul 21.

Abstract

Self-assembly of functional liquid crystals provides a powerful approach to the development of stimuli-responsive materials and interfaces. Here, we have designed and synthesized bioconjugated amphiphilic dendritic mesogens containing arginine-glycine-aspartic acid (RGD) peptide sequence to develop new biofunctional aqueous/liquid crystalline interfaces. We have found that the RGD peptide-conjugated forklike mesogens induce the homeotropic alignment of liquid crystals at the aqueous interfaces, leading to distinct optical changes caused by the specific binding of the target proteins. In contrast, no response to the target protein is observed for the interfaces prepared with the RGD peptide-conjugated single mesogen. Molecular insights into the orientation and stimuli-responsiveness of the bioconjugated mesogens at the interfaces are obtained based on measurements of the Langmuir films and self-assembled properties of these molecules. These results demonstrate that the number of rodlike cores of the bioconjugated mesogens affects the monolayer structures formed at the aqueous interface as well as the liquid crystalline properties. We propose a new molecular design of bioconjugated mesogens to couple biomolecular interactions at the aqueous interfaces with the ordering transition of the liquid crystals. These materials have the potential to tailor the responsiveness of liquid crystalline interfaces for biomolecular sensing.

摘要

自组装功能液晶为刺激响应材料和界面的发展提供了一种强大的方法。在这里,我们设计并合成了含有精氨酸-甘氨酸-天冬氨酸 (RGD) 肽序列的生物共轭两亲性树枝状介晶,以开发新的生物功能水/液晶界面。我们发现,RGD 肽接枝叉型介晶在水相界面诱导液晶的垂直排列,导致由于靶蛋白的特异性结合而产生明显的光学变化。相比之下,用 RGD 肽接枝单介晶制备的界面对靶蛋白没有响应。基于对这些分子的 Langmuir 膜和自组装性质的测量,获得了关于界面上生物共轭介晶的取向和刺激响应性的分子见解。这些结果表明,生物共轭介晶的棒状核的数量影响在水相界面形成的单层结构以及液晶性质。我们提出了一种新的生物共轭介晶的分子设计,将水相界面上的生物分子相互作用与液晶的有序转变结合起来。这些材料有可能调整液晶界面的响应性,用于生物分子传感。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fd10/10401510/b7f4fded0ebd/am3c04289_0001.jpg

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