Department of Physiology and Biophysics , University of California , Irvine , California 92697 , United States.
Department of Chemistry , University of California , Irvine , California 92697 , United States.
Anal Chem. 2018 Jun 19;90(12):7600-7607. doi: 10.1021/acs.analchem.8b01287. Epub 2018 Jun 5.
Cross-linking mass spectrometry (XL-MS) has become an emerging technology for defining protein-protein interactions (PPIs) and elucidating architectures of large protein complexes. Up to now, the most widely used cross-linking reagents target lysines. Although such reagents have been successfully applied to map PPIs at the proteome-wide scale, comprehensive PPI profiling would require additional cross-linking chemistries. Cysteine is one of the most reactive amino acids and an attractive target for cross-linking owing to its unique role in protein structures. Although sulfhydryl-reactive cross-linkers are commercially available, their applications in XL-MS studies remain sparse, likely due to the difficulty in identifying cysteine cross-linked peptides. Previously, we developed a new class of sulfoxide-containing MS-cleavable cross-linkers to enable fast and accurate identification of cross-linked peptides using multistage tandem mass spectrometry (MS ). Here, we present the development of a new sulfoxide-containing MS-cleavable homobifunctional cysteine-reactive cross-linker, bismaleimide sulfoxide (BMSO). We demonstrate that BMSO-cross-linked peptides display the same characteristic fragmentation pattern during collision-induced dissociation (CID) as other sulfoxide-containing MS-cleavable cross-linked peptides, thus permitting their simplified analysis and unambiguous identification by MS . Additionally, we show that BMSO can complement amine- and acidic-residue-reactive reagents for mapping protein-interaction regions. Collectively, this work not only enlarges the toolbox of MS-cleavable cross-linkers with diverse chemistries, but more importantly expands our capacity and capability of studying PPIs in general.
交联质谱(XL-MS)已成为定义蛋白质-蛋白质相互作用(PPIs)和阐明大型蛋白质复合物结构的新兴技术。到目前为止,使用最广泛的交联试剂靶向赖氨酸。尽管这些试剂已成功应用于在全蛋白质组范围内绘制 PPI,但全面的 PPI 分析还需要其他交联化学物质。半胱氨酸是反应性最强的氨基酸之一,由于其在蛋白质结构中的独特作用,是交联的理想目标。尽管巯基反应性交联剂可商购,但由于鉴定半胱氨酸交联肽的困难,它们在 XL-MS 研究中的应用仍然很少。此前,我们开发了一类新的含氧化砜的 MS 可切割交联剂,可用于使用多级串联质谱(MS/MS)快速准确地鉴定交联肽。在这里,我们介绍了一种新的含氧化砜的 MS 可切割的同双功能半胱氨酸反应性交联剂,双马来酰亚胺氧化砜(BMSO)的开发。我们证明 BMSO 交联肽在碰撞诱导解离(CID)过程中显示出与其他含氧化砜的 MS 可切割交联肽相同的特征碎裂模式,从而可以简化它们的分析并通过 MS 进行明确鉴定。此外,我们还表明 BMSO 可以补充胺和酸性残基反应性试剂,用于绘制蛋白质相互作用区域。总的来说,这项工作不仅扩大了具有不同化学性质的 MS 可切割交联剂的工具包,而且更重要的是提高了我们研究一般 PPI 的能力和能力。