Broadening the Utility of Farnesyltransferase-Catalyzed Protein Labeling Using Norbornene–Tetrazine Click Chemistry

IF 3.9 2区 化学 Q1 BIOCHEMICAL RESEARCH METHODS
Shelby A. Auger, Sneha Venkatachalapathy, Kiall Francis G. Suazo, Yiao Wang, Alexander W. Sarkis, Kaitlyn Bernhagen, Katarzyna Justyna, Jonas V. Schaefer, James W. Wollack, Andreas Plückthun, Ling Li and Mark D. Distefano*, 
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引用次数: 0

Abstract

Bioorthogonal chemistry has gained widespread use in the study of many biological systems of interest, including protein prenylation. Prenylation is a post-translational modification, in which one or two 15- or 20-carbon isoprenoid chains are transferred onto cysteine residues near the C-terminus of a target protein. The three main enzymes─protein farnesyltransferase (FTase), geranylgeranyl transferase I (GGTase I), and geranylgeranyl transferase II (GGTase II)─that catalyze this process have been shown to tolerate numerous structural modifications in the isoprenoid substrate. This feature has previously been exploited to transfer an array of farnesyl diphosphate analogues with a range of functionalities, including an alkyne-containing analogue for copper-catalyzed bioconjugation reactions. Reported here is the synthesis of an analogue of the isoprenoid substrate embedded with norbornene functionality (C10NorOPP) that can be used for an array of applications, ranging from metabolic labeling to selective protein modification. The probe was synthesized in seven steps with an overall yield of 7% and underwent an inverse electron demand Diels–Alder (IEDDA) reaction with tetrazine-containing tags, allowing for copper-free labeling of proteins. The use of C10NorOPP for the study of prenylation was explored in the metabolic labeling of prenylated proteins in HeLa, COS-7, and astrocyte cells. Furthermore, in HeLa cells, these modified prenylated proteins were identified and quantified using label-free quantification (LFQ) proteomics with 25 enriched prenylated proteins. Additionally, the unique chemistry of C10NorOPP was utilized for the construction of a multiprotein–polymer conjugate for the targeted labeling of cancer cells. That construct was prepared using a combination of norbornene–tetrazine conjugation and azide–alkyne cycloaddition, highlighting the utility of the additional degree of orthogonality for the facile assembly of new protein conjugates with novel structures and functions.

Abstract Image

Abstract Image

利用降冰片烯-四嗪点击化学拓宽法尼基转移酶催化蛋白质标记的用途。
生物正交化学已被广泛应用于许多生物系统的研究,包括蛋白质的前酰化。前酰化是一种翻译后修饰,即在目标蛋白质 C 端附近的半胱氨酸残基上转移一或两条 15 或 20 碳异戊二烯链。催化这一过程的三种主要酶--蛋白质法尼基转移酶(FTase)、香叶基纯正甘油基转移酶 I(GGTase I)和香叶基纯正甘油基转移酶 II(GGTase II)--已被证明可以容忍异戊二烯基底物的多种结构修饰。以前曾利用这一特点转移了一系列具有各种功能性的二磷酸法呢基类似物,包括用于铜催化生物共轭反应的含炔基类似物。本文报告的是一种嵌入降冰片烯官能团的异戊烯基底物类似物(C10NorOPP)的合成,该类似物可用于从代谢标记到选择性蛋白质修饰等一系列应用。该探针经七个步骤合成,总产率为 7%,并与含四嗪的标签发生了反电子需求 Diels-Alder (IEDDA) 反应,从而实现了蛋白质的无铜标记。通过对 HeLa、COS-7 和星形胶质细胞中的前酰化蛋白质进行代谢标记,探索了 C10NorOPP 在前酰化研究中的应用。此外,在 HeLa 细胞中,使用无标记定量(LFQ)蛋白质组学方法对 25 种富集的前酰化蛋白质进行了鉴定和定量。此外,还利用 C10NorOPP 的独特化学性质构建了一种多蛋白聚合物共轭物,用于靶向标记癌细胞。该构建物是通过降冰片烯-四嗪共轭和叠氮-炔烃环加成相结合的方法制备的,突出了额外的正交程度在轻松组装具有新结构和新功能的新蛋白质共轭物方面的实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Bioconjugate Chemistry
Bioconjugate Chemistry 生物-化学综合
CiteScore
9.00
自引率
2.10%
发文量
236
审稿时长
1.4 months
期刊介绍: Bioconjugate Chemistry invites original contributions on all research at the interface between man-made and biological materials. The mission of the journal is to communicate to advances in fields including therapeutic delivery, imaging, bionanotechnology, and synthetic biology. Bioconjugate Chemistry is intended to provide a forum for presentation of research relevant to all aspects of bioconjugates, including the preparation, properties and applications of biomolecular conjugates.
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