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交联化学和邻近策略的进展:解析蛋白质复合物和相互作用。

Advances in crosslinking chemistry and proximity-enabled strategies: deciphering protein complexes and interactions.

机构信息

Key Laboratory of Advanced Functional Materials of Nanjing, School of Environmental Science, Nanjing Xiaozhuang University, Nanjing, 211171, China.

出版信息

Org Biomol Chem. 2024 Sep 25;22(37):7549-7559. doi: 10.1039/d4ob01058b.

Abstract

Mass spectrometry, coupled with innovative crosslinking techniques to decode protein conformations and interactions through uninterrupted signal connections, has undergone remarkable progress in recent years. It is crucial to develop selective crosslinking reagents that minimally disrupt protein structure and dynamics, providing insights into protein network regulation and biological functions. Compared to traditional crosslinkers, new bifunctional chemical crosslinkers exhibit high selectivity and specificity in connecting proximal amino acid residues, resulting in stable molecular crosslinked products. The conjugation with specific amino acid residues like lysine, cysteine, arginine and tyrosine expands the XL-MS toolbox, enabling more precise modeling of target substrates and leading to improved data quality and reliability. Another emerging crosslinking method utilizes unnatural amino acids (UAAs) derived from proximity-enabled reactivity with specific amino acids or sulfur-fluoride exchange (SuFEx) reactions with nucleophilic residues. These UAAs are genetically encoded into proteins for the formation of specific covalent bonds. This technique combines the benefits of genetic encoding for live cell compatibility with chemical crosslinking, providing a valuable method for capturing transient and weak protein-protein interactions (PPIs) for mapping PPI coordinates and improving the pharmacological properties of proteins. With continued advancements in technology and applications, crosslinking mass spectrometry is poised to play an increasingly significant role in guiding our understanding of protein dynamics and function in the future.

摘要

近年来,质谱技术与创新的交联技术相结合,通过不间断的信号连接来解码蛋白质构象和相互作用,取得了显著进展。开发最小程度破坏蛋白质结构和动力学的选择性交联试剂至关重要,这可以深入了解蛋白质网络调节和生物学功能。与传统交联剂相比,新型双功能化学交联剂在连接邻近氨基酸残基方面具有更高的选择性和特异性,产生稳定的分子交联产物。与赖氨酸、半胱氨酸、精氨酸和酪氨酸等特定氨基酸残基的缀合扩展了 XL-MS 工具包,使目标底物的建模更加精确,并提高了数据质量和可靠性。另一种新兴的交联方法利用与特定氨基酸的接近反应或与亲核残基的硫氟交换(SuFEx)反应衍生的非天然氨基酸(UAAs)。这些 UAAs 被遗传编码到蛋白质中,以形成特定的共价键。该技术将遗传编码用于活细胞相容性与化学交联的优点相结合,为捕获瞬时和弱的蛋白质-蛋白质相互作用(PPIs)提供了一种有价值的方法,用于绘制 PPI 坐标并改善蛋白质的药理学性质。随着技术和应用的不断进步,交联质谱技术有望在未来在指导我们对蛋白质动力学和功能的理解方面发挥越来越重要的作用。

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