Institute of Pharmacy, Martin Luther University Halle-Wittenberg, Wolfgang-Langenbeck-Str. 4, D-06120, Halle (Saale), Germany.
Department of Chemistry, Institute of Organic Chemistry, University of Cologne, Greinstr. 4, D-50939, Kӧln, Germany.
J Am Soc Mass Spectrom. 2017 Oct;28(10):2039-2053. doi: 10.1007/s13361-017-1744-6. Epub 2017 Jul 17.
The chemical cross-linking/mass spectrometry (MS) approach is a growing research field in structural proteomics that allows gaining insights into protein conformations. It relies on creating distance constraints between cross-linked amino acid side chains that can further be used to derive protein structures. Currently, the most urgent task for designing novel cross-linking principles is an unambiguous and automated assignment of the created cross-linked products. Here, we introduce the homobifunctional, amine-reactive, and water soluble cross-linker azobisimidoester (ABI) as a prototype of a novel class of cross-linkers. The ABI-linker possesses an innovative modular scaffold combining the benefits of collisional activation lability with open shell chemistry. This MS-cleavable cross-linker can be efficiently operated via free radical initiated peptide sequencing (FRIPS) in positive ionization mode. Our proof-of-principle study challenges the gas phase behavior of the ABI-linker for the three amino acids, lysine, leucine, and isoleucine, as well as the model peptide thymopentin. The isomeric amino acids leucine and isoleucine could be discriminated by their characteristic side chain fragments. Collisional activation experiments were conducted via positive electrospray ionization (ESI) on two Orbitrap mass spectrometers. The ABI-mediated formation of odd electron product ions in MS/MS and MS experiments was evaluated and compared with a previously described azo-based cross-linker. All cross-linked products were amenable to automated analysis by the MeroX software, underlining the future potential of the ABI-linker for structural proteomics studies. Graphical Abstract ᅟ.
化学交联/质谱 (MS) 方法是结构蛋白质组学中一个不断发展的研究领域,可深入了解蛋白质构象。它依赖于在交联氨基酸侧链之间创建距离约束,这些约束可进一步用于推导蛋白质结构。目前,设计新型交联原理的最紧迫任务是明确且自动分配所创建的交联产物。在这里,我们介绍了同双功能、伯胺反应性和水溶性交联剂叠氮亚氨基二酯 (ABI),它是一类新型交联剂的原型。ABI 接头具有创新的模块化支架,结合了碰撞激活易变性和开壳化学的优势。这种可 MS 裂解的交联剂可以通过自由基引发的肽测序 (FRIPS) 在正离子模式下高效操作。我们的原理验证研究挑战了 ABI 接头在三种氨基酸(赖氨酸、亮氨酸和异亮氨酸)以及模型肽胸腺五肽中的气相行为。特征性侧链片段可区分异构氨基酸亮氨酸和异亮氨酸。通过正电喷雾电离 (ESI) 在两个轨道阱质谱仪上进行了碰撞激活实验。通过 MS/MS 和 MS 实验评估并比较了 ABI 介导的奇数电子产物离子的形成与先前描述的偶氮基交联剂。所有交联产物均可通过 MeroX 软件进行自动分析,这突显了 ABI 接头在结构蛋白质组学研究中的未来潜力。