Veeramachaneni Rathna J, Donelan Chelsee A, Tomcho Kayce A, Aggarwal Shaili, Lapinsky David J, Cascio Michael
Department of Chemistry and Biochemistry, Duquesne University Pittsburgh, Pittsburgh, Pennsylvania.
Department of Chemistry and Biochemistry, Duquesne University Pittsburgh, Pittsburgh, Pennsylvania; Department of Chemistry, Ohio Wesleyan University, Delaware, Ohio.
Biophys Rep (N Y). 2024 Dec 11;4(4):100184. doi: 10.1016/j.bpr.2024.100184. Epub 2024 Oct 10.
By identifying distance constraints, chemical cross-linking coupled with mass spectrometry (CX-MS) can be a powerful complementary technique to other structural methods by interrogating macromolecular protein complexes under native-like conditions. In this study, we developed a CX-MS approach to identify the sites of chemical cross-linking from a single targeted location within the human α1 glycine receptor (α1 GlyR) in its apo state. The human α1 GlyR belongs to the family of pentameric ligand-gated ion channel receptors that function in fast neurotransmission. A single chemically reactive cysteine was reintroduced into a Cys null α1 GlyR construct at position 41 within the extracellular domain of human α1 homomeric GlyR overexpressed in a baculoviral system. After purification and reconstitution into vesicles, methanethiosulfonate-benzophenone-alkyne, a heterotrifunctional cross-linker, was site specifically attached to Cys41 via disulfide bond formation. The resting receptor was then subjected to UV photocross-linking. Afterward, monomeric and oligomeric α1 GlyR bands from SDS-PAGE gels were trypsinized and analyzed by tandem MS in bottom-up studies. Dozens of intrasubunit and intersubunit sites of α1 GlyR cross-linking were differentiated and identified from single gel bands of purified protein, showing the utility of this experimental approach to identify a diverse array of distance constraints of the α1 GlyR in its resting state. These studies highlight CX-MS as an experimental approach to identify chemical cross-links within full-length integral membrane protein assemblies in a native-like lipid environment.
通过识别距离限制,化学交联结合质谱分析(CX-MS)可以成为一种强大的补充技术,通过在类似天然条件下研究大分子蛋白质复合物,来补充其他结构方法。在本研究中,我们开发了一种CX-MS方法,用于从处于无配体状态的人α1甘氨酸受体(α1 GlyR)内的单个靶向位置识别化学交联位点。人α1 GlyR属于五聚体配体门控离子通道受体家族,在快速神经传递中发挥作用。在杆状病毒系统中过表达的人α1同聚甘氨酸受体的细胞外结构域内的第41位,将单个化学反应性半胱氨酸重新引入到无半胱氨酸的α1 GlyR构建体中。纯化并重构到囊泡中后,通过形成二硫键,将异三功能交联剂甲硫基磺酸酯-二苯甲酮-炔烃位点特异性地连接到Cys41上。然后对静息受体进行紫外光交联。之后,对SDS-PAGE凝胶上的单体和寡聚体α1 GlyR条带进行胰蛋白酶消化,并在自下而上的研究中通过串联质谱进行分析。从纯化蛋白的单个凝胶条带中区分并鉴定出了数十个α1 GlyR交联的亚基内和亚基间位点,显示了这种实验方法在识别α1 GlyR静息状态下各种距离限制方面的实用性。这些研究突出了CX-MS作为一种在类似天然脂质环境中识别全长整合膜蛋白组装体内化学交联的实验方法。