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基于蛋白质的图案化对仿生膜进行空间功能化。

Protein-Based Patterning to Spatially Functionalize Biomimetic Membranes.

机构信息

Department of Cellular and Molecular Biophysics, Max Planck Institute of Biochemistry, 82152, Martinsried, Germany.

Hubrecht Institute-KNAW (Royal Netherlands Academy of Arts and Sciences), Utrecht, 3584 CT, The Netherlands.

出版信息

Small Methods. 2023 Dec;7(12):e2300173. doi: 10.1002/smtd.202300173. Epub 2023 Jun 23.

Abstract

The bottom-up reconstitution of proteins for their modular engineering into synthetic cellular systems can reveal hidden protein functions in vitro. This is particularly evident for the bacterial Min proteins, a paradigm for self-organizing reaction-diffusion systems that displays an unexpected functionality of potential interest for bioengineering: the directional active transport of any diffusible cargo molecule on membranes. Here, the MinDE protein system is reported as a versatile surface patterning tool for the rational design of synthetically assembled 3D systems. Employing two-photon lithography, microswimmer-like structures coated with tailored lipid bilayers are fabricated and demonstrate that Min proteins can uniformly pattern bioactive molecules on their surface. Moreover, it is shown that the MinDE system can form stationary patterns inside lipid vesicles, which allow the targeting and distinctive clustering of higher-order protein structures on their inner leaflet. Given their facile use and robust function, Min proteins thus constitute a valuable molecular toolkit for spatially patterned functionalization of artificial biosystems like cell mimics and microcarriers.

摘要

蛋白质的自下而上重构,用于将其模块化工程设计到合成细胞系统中,可以揭示体外隐藏的蛋白质功能。这在细菌 Min 蛋白中尤为明显,Min 蛋白是自组织反应扩散系统的典范,具有潜在生物工程应用价值的意想不到的功能:在膜上对任何可扩散货物分子的定向主动运输。在这里,MinDE 蛋白系统被报道为一种用于合理设计合成组装 3D 系统的通用表面图案化工具。通过双光子光刻技术,制造了涂有定制脂质双层的类微泳者结构,并证明 Min 蛋白可以在其表面均匀地对生物活性分子进行图案化。此外,还表明 MinDE 系统可以在脂质泡内形成固定图案,从而允许在其内层上靶向和独特地聚集更高阶的蛋白质结构。鉴于其易于使用和稳健的功能,Min 蛋白因此构成了用于人工生物系统(如细胞模拟物和微载体)的空间图案功能化的有价值的分子工具包。

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