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Extein 残基在蛋白质反式剪接的限速步骤中起着密切的作用。

Extein residues play an intimate role in the rate-limiting step of protein trans-splicing.

机构信息

Department of Chemistry, Princeton University, Frick Laboratory, Princeton, New Jersey 08544, USA.

出版信息

J Am Chem Soc. 2013 Apr 17;135(15):5839-47. doi: 10.1021/ja401015p. Epub 2013 Apr 2.

Abstract

Split inteins play an important role in modern protein semisynthesis techniques. These naturally occurring protein splicing domains can be used for in vitro and in vivo protein modification, peptide and protein cyclization, segmental isotopic labeling, and the construction of biosensors. The most well-characterized family of split inteins, the cyanobacterial DnaE inteins, show particular promise, as many of these can splice proteins in less than 1 min. Despite this fact, the activity of these inteins is context-dependent: certain peptide sequences surrounding their ligation junction (called local N- and C-exteins) are strongly preferred, while other sequences cause a dramatic reduction in the splicing kinetics and yield. These sequence constraints limit the utility of inteins, and thus, a more detailed understanding of their participation in protein splicing is needed. Here we present a thorough kinetic analysis of the relationship between C-extein composition and split intein activity. The results of these experiments were used to guide structural and molecular dynamics studies, which revealed that the motions of catalytic residues are constrained by the second C-extein residue, likely forcing them into an active conformation that promotes rapid protein splicing. Together, our structural and functional studies also highlight a key region of the intein structure that can be re-engineered to increase intein promiscuity.

摘要

分裂整合酶在现代蛋白质半合成技术中发挥着重要作用。这些天然存在的蛋白质剪接结构域可用于体外和体内蛋白质修饰、肽和蛋白质环化、片段同位素标记以及生物传感器的构建。最具代表性的分裂整合酶家族是蓝藻 DnaE 整合酶,它们具有很大的应用潜力,因为其中许多整合酶可以在不到 1 分钟的时间内剪接蛋白质。尽管如此,这些整合酶的活性是依赖于上下文的:它们连接点周围的某些肽序列(称为局部 N-和 C-外显子)被强烈偏好,而其他序列则导致剪接动力学和产率的显著降低。这些序列限制限制了整合酶的用途,因此需要更详细地了解它们在蛋白质剪接中的参与。在这里,我们对 C-外显子组成与分裂整合酶活性之间的关系进行了全面的动力学分析。这些实验的结果被用来指导结构和分子动力学研究,揭示了催化残基的运动受到第二个 C-外显子残基的限制,可能迫使它们进入一个促进快速蛋白质剪接的活性构象。总之,我们的结构和功能研究还突出了整合酶结构中的一个关键区域,该区域可进行重新设计以增加整合酶的通用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a9e/3630739/a92ec36b70fc/ja-2013-01015p_0002.jpg

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