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自组装功能蛋白纳米片从温敏两亲分子。

Self-Assembly of Functional Protein Nanosheets from Thermoresponsive Bolaamphiphiles.

机构信息

School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, 950 Atlantic Drive NW, Atlanta, Georgia 30332, United States.

出版信息

Biomacromolecules. 2022 Sep 12;23(9):3612-3620. doi: 10.1021/acs.biomac.2c00525. Epub 2022 Aug 26.

Abstract

Nanosheets are two-dimensional materials, less than 100 nm thick, that can be used for separations, biosensing, and biocatalysis. Nanosheets can be made from inorganic and organic materials such as graphene, polymers, and proteins. Here, we report the self-assembly of nanosheets under aqueous conditions from functional proteins. The nanosheets are synthesized from two fusion proteins held together by high-affinity interactions of two leucine zippers to form bolaamphiphiles. The hydrophobic domain, Z-ELP-Z, contains the thermoresponsive elastin-like peptide (ELP) flanked by arginine-rich leucine zippers (Z), each of which binds the hydrophilic fusion protein, globule-Z, via the glutamate-rich leucine zipper (Z) fused to a functional, globular protein. Nanosheets form when the proteins are mixed at 4 °C in aqueous solutions and then heated to 25 °C as the container is rotated end-over-end causing expansion and contraction of the air-water interface. The nanosheets are robust with respect to the choice of globular protein and can incorporate small fluorescent proteins that are less than 30 kDa as well as large enzymes, such as 80 kDa malate synthase G. Upon incorporation into nanosheets, enzymes retain more than 70% of their original activity, demonstrating the potential of protein nanosheets to be used for biosensing or biocatalytic applications.

摘要

纳米片是二维材料,厚度小于 100nm,可以用于分离、生物传感和生物催化。纳米片可以由无机和有机材料制成,如石墨烯、聚合物和蛋白质。在这里,我们报告了在水相条件下由功能蛋白自组装成纳米片。纳米片是由两个通过高亲和力相互作用的亮氨酸拉链连接在一起的融合蛋白合成的,形成双偶极体。疏水域 Z-ELP-Z 包含热响应弹性蛋白样肽(ELP),两侧是富含精氨酸的亮氨酸拉链(Z),每个亮氨酸拉链都通过融合到功能球状蛋白上的富含谷氨酸的亮氨酸拉链(Z)结合亲水性融合蛋白 globule-Z。当蛋白质在水溶液中于 4°C 混合,然后加热至 25°C 时,由于容器的末端到末端的旋转导致气-水界面的膨胀和收缩,纳米片就会形成。纳米片对球状蛋白的选择具有很强的鲁棒性,可以掺入小于 30kDa 的小荧光蛋白以及大型酶,如 80kDa 的苹果酸合酶 G。在掺入纳米片后,酶保留了超过其原始活性的 70%,表明蛋白质纳米片在生物传感或生物催化应用中的潜力。

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