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酶的体内延迟包封改变了病毒样颗粒纳米反应器的催化活性。

Delayed In Vivo Encapsulation of Enzymes Alters the Catalytic Activity of Virus-Like Particle Nanoreactors.

机构信息

Department of Chemistry and Biochemistry, The University of Texas at Tyler, 3900 University Blvd., Tyler, Texas 75799, United States.

Department of Chemistry, Indiana University, 800 E. Kirkwood Avenue, Bloomington, Indiana 47405, United States.

出版信息

ACS Synth Biol. 2022 Sep 16;11(9):2956-2968. doi: 10.1021/acssynbio.1c00636. Epub 2022 Sep 8.

Abstract

Encapsulation of enzymes inside protein cage structures, mimicking protein-based organelle structures found in nature, has great potential for the development of new catalytic materials with enhanced properties. In vitro and in vivo methodologies have been developed for the encapsulation of enzymes within protein cage structures of several types, particularly virus-like particles (VLPs), with the ability to retain the activity of the encapsulated enzymes. Here, we examine the in vivo encapsulation of enzymes within the bacteriophage P22 derived VLP and show that some enzymes may require a delay in encapsulation to allow proper folding and maturation before they can be encapsulated inside P22 as fully active enzymes. Using a sequential expression strategy, where enzyme cargoes are first expressed, allowed to fold, and later encapsulated by the expression of the P22 coat protein, altered enzymatic activities are obtained in comparison to enzymes encapsulated in P22 VLPs using a simultaneous coexpression strategy. The strategy and results discussed here highlight important considerations for researchers investigating the encapsulation of enzymes inside confined reaction environments via in vivo routes and provide a potential solution for those that have been unable to produce active enzymes upon encapsulation.

摘要

将酶封装在蛋白质笼结构内,模拟自然界中存在的基于蛋白质的细胞器结构,对于开发具有增强性能的新型催化材料具有很大的潜力。已经开发了体外和体内方法来将酶封装在几种类型的蛋白质笼结构内,特别是病毒样颗粒(VLPs),能够保持封装酶的活性。在这里,我们研究了酶在噬菌体 P22 衍生的 VLP 内的体内封装,并表明一些酶可能需要延迟封装,以便在它们可以作为完全活性的酶封装在 P22 内之前进行适当的折叠和成熟。使用顺序表达策略,首先表达酶货物,让其折叠,然后通过表达 P22 外壳蛋白进行封装,与使用同时共表达策略封装在 P22 VLP 中的酶相比,获得了改变的酶活性。这里讨论的策略和结果强调了研究人员通过体内途径在封闭反应环境中封装酶的重要考虑因素,并为那些在封装后无法产生活性酶的人提供了一种潜在的解决方案。

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