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通过羟肟酸官能团设计金属介导的蛋白质组装体。

Design of metal-mediated protein assemblies via hydroxamic acid functionalities.

机构信息

Department of Chemistry and Biochemistry, University of California, San Diego, La Jolla, CA, USA.

Materials Science and Engineering, University of California, San Diego, La Jolla, CA, USA.

出版信息

Nat Protoc. 2021 Jul;16(7):3264-3297. doi: 10.1038/s41596-021-00535-z. Epub 2021 May 28.

Abstract

The self-assembly of proteins into sophisticated multicomponent assemblies is a hallmark of all living systems and has spawned extensive efforts in the construction of novel synthetic protein architectures with emergent functional properties. Protein assemblies in nature are formed via selective association of multiple protein surfaces through intricate noncovalent protein-protein interactions, a challenging task to accurately replicate in the de novo design of multiprotein systems. In this protocol, we describe the application of metal-coordinating hydroxamate (HA) motifs to direct the metal-mediated assembly of polyhedral protein architectures and 3D crystalline protein-metal-organic frameworks (protein-MOFs). This strategy has been implemented using an asymmetric cytochrome cb monomer through selective, concurrent association of Fe and Zn ions to form polyhedral cages. Furthermore, the use of ditopic HA linkers as bridging ligands with metal-binding protein nodes has allowed the construction of crystalline 3D protein-MOF lattices. The protocol is divided into two major sections: (1) the development of a Cys-reactive HA molecule for protein derivatization and self-assembly of protein-HA conjugates into polyhedral cages and (2) the synthesis of ditopic HA bridging ligands for the construction of ferritin-based protein-MOFs using symmetric metal-binding protein nodes. Protein cages are analyzed using analytical ultracentrifugation, transmission electron microscopy and single-crystal X-ray diffraction techniques. HA-mediated protein-MOFs are formed in sitting-drop vapor diffusion crystallization trays and are probed via single-crystal X-ray diffraction and multi-crystal small-angle X-ray scattering measurements. Ligand synthesis, construction of HA-mediated assemblies, and post-assembly analysis as described in this protocol can be performed by a graduate-level researcher within 6 weeks.

摘要

蛋白质自组装成复杂的多组分组装体是所有生命系统的标志,并催生了广泛的努力,以构建具有新兴功能特性的新型合成蛋白质结构。自然界中的蛋白质组装是通过多个蛋白质表面通过复杂的非共价蛋白质-蛋白质相互作用选择性缔合形成的,这是在从头设计多蛋白系统中准确复制的一项具有挑战性的任务。在本方案中,我们描述了使用金属配位羟肟酸 (HA) 基序来指导多面体形蛋白质结构和 3D 结晶蛋白质-金属有机骨架 (protein-MOF) 的金属介导组装。该策略已通过使用不对称细胞色素 cb 单体通过选择性、同时结合 Fe 和 Zn 离子来形成多面体形笼来实施。此外,使用双齿 HA 链接剂作为桥连配体与金属结合蛋白节点结合,允许构建结晶 3D 蛋白质-MOF 晶格。该方案分为两个主要部分:(1)开发用于蛋白质衍生化和蛋白质-HA 缀合物自组装成多面体形笼的 Cys 反应性 HA 分子,(2)合成双齿 HA 桥连配体用于使用对称金属结合蛋白节点构建基于铁蛋白的蛋白质-MOF。使用分析超速离心、透射电子显微镜和单晶 X 射线衍射技术分析蛋白质笼。在坐滴蒸汽扩散结晶托盘中形成 HA 介导的蛋白质-MOF,并通过单晶 X 射线衍射和多晶小角 X 射线散射测量进行探测。如本方案所述,配体合成、HA 介导的组装构建和组装后分析可以由研究生水平的研究人员在 6 周内完成。

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