CAS Key Laboratory of Separation Science for Analytical Chemistry, National Chromatographic R. & A. Center, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian116023, Liaoning, China.
University of Chinese Academy of Sciences, Beijing100039, China.
Anal Chem. 2022 Sep 13;94(36):12398-12406. doi: 10.1021/acs.analchem.2c02205. Epub 2022 Aug 29.
The coverage of chemical crosslinking coupled with mass spectrometry (CXMS) is of great importance to determine its ability for deciphering protein structures. At present, -hydroxysuccinimidyl (NHS) ester-based crosslinkers targeting lysines have been predominantly used in CXMS. However, they are not always effective for some proteins with few lysines. Other amino acid residues such as carboxyl could be crosslinked to complement lysines and improve the crosslinking coverage of CXMS, but the low intrinsic chemical reactivity of carboxyl compromises the application of carboxyl-selective crosslinkers for complex samples. To enhance the crosslinking efficiency targeting acidic residues and realize in-depth crosslinking analysis of complex samples, we developed three new alkynyl-enrichable carboxyl-selective crosslinkers with different reactive groups such as hydrazide, amino, and aminooxy. The crosslinking efficiencies of the three crosslinkers were systematically evaluated, giving the best reactivity of the amino-functionalized crosslinker BAP. Furthermore, BAP was extended to the crosslinking analysis of lysate in combination with efficient crosslink enrichment. A total of 1291 D/E-D/E crosslinks involved in 392 proteins were identified under a false discovery rate (FDR) of ≤1%. Obvious structural complementarity of BAP was exhibited to the lysine-targeting crosslinker, facilitating the capability of CXMS for protein structure elucidation. To the best of our knowledge, this was the first time for the carboxyl-selective crosslinker to achieve proteome-wide crosslinking analysis of the whole cell lysate. Collectively, we believe that this work not only expands on a promising toolkit of CXMS targeting acidic residues but also provides a valuable guideline to advance the performance of carboxyl-selective crosslinkers.
化学交联结合质谱(CXMS)的覆盖范围对于确定其解析蛋白质结构的能力非常重要。目前,基于 - 羟基琥珀酰亚胺(NHS)酯的交联剂主要用于 CXMS 中针对赖氨酸的交联。然而,对于一些赖氨酸较少的蛋白质,它们并不总是有效。其他氨基酸残基,如羧基,可以交联以补充赖氨酸并提高 CXMS 的交联覆盖率,但羧基的内在低化学反应性限制了羧基选择性交联剂在复杂样品中的应用。为了提高针对酸性残基的交联效率并实现复杂样品的深入交联分析,我们开发了三种带有不同反应基团的新的炔基富集羧基选择性交联剂,如酰肼、氨基和氨氧基。系统评估了这三种交联剂的交联效率,得到了氨基官能化交联剂 BAP 的最佳反应性。此外,BAP 与有效的交联富集相结合,扩展到了裂解物的交联分析。在误报率(FDR)≤1%的条件下,鉴定出涉及 392 种蛋白质的 1291 个 D/E-D/E 交联。BAP 与针对赖氨酸的交联剂表现出明显的结构互补性,提高了 CXMS 解析蛋白质结构的能力。据我们所知,这是首次使用羧基选择性交联剂对整个细胞裂解物进行蛋白质组范围的交联分析。总之,我们相信这项工作不仅扩展了针对酸性残基的 CXMS 的有前途的工具包,而且为推进羧基选择性交联剂的性能提供了有价值的指导。