Miniprotein Design: Past, Present, and Prospects

被引:66
作者
Baker, Emily G. [1 ]
Bartlett, Gail J. [1 ]
Goff, Kathryn L. Porter [1 ]
Woolfson, Derek N. [1 ,2 ,3 ,4 ]
机构
[1] Univ Bristol, Sch Chem, Bristol BS8 1TS, Avon, England
[2] Univ Bristol, Sch Biochem, Biomed Sci Bldg, Bristol BS8 1TD, Avon, England
[3] Univ Bristol, BrisSynBio, Life Sci Bldg,Tyndall Ave, Bristol BS8 1TQ, Avon, England
[4] Univ Bristol, Bristol BioDesign Inst, Life Sci Bldg,Tyndall Ave, Bristol BS8 1TQ, Avon, England
基金
英国生物技术与生命科学研究理事会; 英国工程与自然科学研究理事会; 欧洲研究理事会;
关键词
DE-NOVO DESIGN; VILLIN HEADPIECE SUBDOMAIN; CATION-PI INTERACTIONS; BETA-HAIRPIN PEPTIDES; ZINC-FINGER PROTEINS; STRUCTURAL-ANALYSIS; MINIATURE PROTEIN; AQUEOUS-SOLUTION; HIGH-AFFINITY; DOMAIN;
D O I
10.1021/acs.accounts.7b00186
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The design and study of miniproteins, that is, polypeptide chains <40 amino acids in length that adopt defined and stable 3D structures, is resurgent. Miniproteins offer possibilities for reducing the complexity of larger proteins and so present new routes to studying sequence-to-structure and sequence-to-stability relationships in proteins generally. They also provide modules for protein design by pieces and, with this, prospects for building more-complex or even entirely new protein structures. In addition, miniproteins are useful scaffolds for templating functional domains, for example, those involved in protein-protein interactions, catalysis, and biomolecular binding, leading to potential applications in biotechnology and medicine. Here we select examples from almost four decades of miniprotein design, development, and dissection. Simply because of the word limit for this Account, we focus on miniproteins that are cooperatively folded monomers in solution and not stabilized by cross-linking or metal binding. In these cases, the optimization of noncovalent interactions is even more critical for the maintenance of the folded states than in larger proteins. Our chronology and catalogue highlights themes in miniproteins, which we explore further and begin to put on a firmer footing through an analysis of the miniprotein structures that have been deposited in the Protein Data Bank (PDB) thus far. Specifically, and compared with larger proteins, miniproteins generally have a lower proportion of residues in regular secondary structure elements (alpha helices, beta strands, and polyproline-II helices) and, concomitantly, more residues in well-structured loops. This allows distortions of the backbone enabling mini-hydrophobic cores to be made. This also contrasts with larger proteins, which can achieve hydrophobic cores through tertiary contacts between distant regions of sequence. On average, miniproteins have a higher proportion of aromatic residues than larger proteins, and specifically electron-rich Trp and Tyr, which are often found in combination with Pro and Arg to render networks of CH-pi or cation-pi interactions. Miniproteins also have a higher proportion of the long-chain charged amino acids (Arg, Glu, and Lys), which presumably reflects salt-bridge formation and their greater surface area-to-volume ratio. Together, these amino-acid preferences appear to support greater densities of noncovalent interactions in miniproteins compared with larger proteins. We anticipate that with recent developments such as parametric protein design, it will become increasingly routine to use computation to generate and evaluate models for miniproteins in silico ahead of experimental studies. This could include accessing new structures comprising secondary structure elements linked in previously unseen configurations. The improved understanding of the noncovalent interactions that stabilize the folded states of such miniproteins that we are witnessing through both in-depth bioinformatics analyses and experimental testing will feed these computational protein designs. With this in mind, we can expect a new and exciting era for miniprotein design, study, and application.
引用
收藏
页码:2085 / 2092
页数:8
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