融合蛋白构建连接体的性质、设计和功能综述。

IF 3.2 4区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Hadis Chatrdooz, Javad Sargolzaei
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引用次数: 0

摘要

连接子是自然产生的短氨基酸序列,用于分离蛋白质内的结构域。重组DNA技术的出现使得通过引入人工连接物将两个相互作用的伙伴结合在一起成为可能,这种连接物通常允许产生稳定和功能性的蛋白质。富含甘氨酸的连接物对于瞬时相互作用是有用的,特别是在相互作用弱的情况下,通过共价连接蛋白质并形成稳定的蛋白质-蛋白质复合物。这些连接体也被用来产生共价稳定的二聚体,并连接两个独立的结构域,从而产生配体结合位点或识别序列。使用核磁共振方法、冷冻电子显微镜技术和x射线晶体学描述了共价连接蛋白复合物的各种结构;此外,本文还研究了利用连接体生成稳定的蛋白质-蛋白质复合物、提高蛋白质溶解度和获得蛋白质二聚体的几种结构,并讨论了融合蛋白中连接体的设计和工程。因此,连接子设计和优化的主要因素之一是其灵活性,它可以直接影响融合蛋白结构域之间的物理距离,并描述连接子在表达过程中保持稳定构象的倾向。综述了融合蛋白空间结构预测的设计和生物信息学研究进展。为了模拟空间结构和药物分子设计,未来的研究将集中在各种相关模型上。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Overview of Property, Design, and Functionality of Linkers for Fusion Protein Construction.

Linkers are naturally occurring short amino acid sequences that are used to separate domains within a protein. The advent of recombinant DNA technology has made it possible to combine two interacting partners by introducing artificial linkers that often, allow for the production of stable and functional proteins. Glycine-rich linkers are useful for transient interactions, especially where the interaction is weak, by covalently linking proteins and forming a stable protein-protein complex. These linkers have also been used to generate covalently stable dimers and to connect two independent domains that create a ligand binding site or recognition sequence. Various structures of covalently linked protein complexes have been described using nuclear magnetic resonance methods, cryo-electron microscopy techniques, and X-ray crystallography; in addition, several structures where linkers have been used to generate stable protein-protein complexes, improve protein solubility, and obtain protein dimers are investigated, and also the design and engineering of the linker in fusion proteins is discussed. Therefore, one of the main factors for linker design and optimization is their flexibility, which can directly contribute to the physical distance between the domains of a fusion protein and describe the tendency of a linker to maintain a stable conformation during expression. We summarize the research on design and bioinformatics can be used to predict the spatial structure of the fusion protein. To perform simulations of spatial structures and drug molecule design, future research will concentrate on various correlation models.

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来源期刊
Proteins-Structure Function and Bioinformatics
Proteins-Structure Function and Bioinformatics 生物-生化与分子生物学
CiteScore
5.90
自引率
3.40%
发文量
172
审稿时长
3 months
期刊介绍: PROTEINS : Structure, Function, and Bioinformatics publishes original reports of significant experimental and analytic research in all areas of protein research: structure, function, computation, genetics, and design. The journal encourages reports that present new experimental or computational approaches for interpreting and understanding data from biophysical chemistry, structural studies of proteins and macromolecular assemblies, alterations of protein structure and function engineered through techniques of molecular biology and genetics, functional analyses under physiologic conditions, as well as the interactions of proteins with receptors, nucleic acids, or other specific ligands or substrates. Research in protein and peptide biochemistry directed toward synthesizing or characterizing molecules that simulate aspects of the activity of proteins, or that act as inhibitors of protein function, is also within the scope of PROTEINS. In addition to full-length reports, short communications (usually not more than 4 printed pages) and prediction reports are welcome. Reviews are typically by invitation; authors are encouraged to submit proposed topics for consideration.
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