工程蛋白前酰化:一种选择性蛋白质修饰的新兴工具。

IF 4.3 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Sneha Venkatachalapathy, Caitlin Lichtenfels, Carston R Wagner, Mark D Distefano
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引用次数: 0

摘要

戊烯基转移酶催化类异戊二烯与位于蛋白质c端附近的半胱氨酸残基的附着,包括那些含有“CaaX”四肽基元的蛋白质。该酶家族包括法尼基转移酶(FTase),香叶基香叶基转移酶I型(GGTase I)和GGTase II型(GGTase II)。CaaX基序大致由半胱氨酸(C)、两个脂肪残基(a)和一个可变残基(X)组成,它决定了法尼化和I型香叶基酰化的底物特异性。本文主要综述了fase介导的蛋白质修饰策略,以组装具有治疗价值的蛋白质。首先,讨论了蛋白质戊酰化的过程和FTase活性位点的结构特征。接下来是探索fase催化的单体蛋白质和肽的生物偶联,强调其效率、模块化和工业生物学应用的潜力。该方法在多聚体蛋白质结构的设计和组装中具有更广泛的适用性,促进了具有增强功能、稳定性和治疗潜力的复杂生物分子结构的发展。最后,研究了FTase诱变策略,扩大了底物范围,适应了广泛的生物技术和治疗应用的不同功能群。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Engineering protein prenylation: an emerging tool for selective protein modification.

Prenyltransferases catalyze the attachment of isoprenoids to cysteine residues located near the C-termini of proteins including those containing a 'CaaX' tetrapeptide motif. This enzyme family includes farnesyl transferase (FTase), geranylgeranyltransferase type I (GGTase I), and GGTase type II (GGTase II). The CaaX motif broadly consists of cysteine (C), two aliphatic residues (a), and a variable residue (X), which determines substrate specificity for farnesylation and type I geranylgeranylation. This review primarily focuses on FTase-mediated protein modification strategies for assembling therapeutically valuable proteins. First, the process of protein prenylation and the structural features of the FTase active site are discussed. This is followed by an exploration of FTase-catalyzed bioconjugation of monomeric proteins and peptides, emphasizing its efficiency, modularity, and potential for industrial biological applications. The broader applicability of this approach is then highlighted in the design and assembly of multimeric protein structures, facilitating the development of complex biomolecular architectures with enhanced functionality, stability, and therapeutic potential. Finally, FTase mutagenesis strategies are examined that expand substrate scope, accommodating diverse functional groups for a wide range of biotechnological and therapeutic applications.

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来源期刊
Biochemical Society transactions
Biochemical Society transactions 生物-生化与分子生物学
CiteScore
7.80
自引率
0.00%
发文量
351
审稿时长
3-6 weeks
期刊介绍: Biochemical Society Transactions is the reviews journal of the Biochemical Society. Publishing concise reviews written by experts in the field, providing a timely snapshot of the latest developments across all areas of the molecular and cellular biosciences. Elevating our authors’ ideas and expertise, each review includes a perspectives section where authors offer comment on the latest advances, a glimpse of future challenges and highlighting the importance of associated research areas in far broader contexts.
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