PO.CH02.02 · 化学

利用串联质谱和离子-离子反应定义糖-免疫检查点配体的分子界面

Defining molecular interfaces of glyco-immune checkpoint ligands using tandem mass spectrometry and ion-ion reactions

海报缩略图:利用串联质谱和离子-离子反应定义糖-免疫检查点配体的分子界面
编号 7655 展板 9 时间 4/22 09:00–12:00 区域 Section 38 主讲 Nicholas Riley, PhD
分会场 Multi-Omics, Systems Biology, and Biological Mass Spectrometry
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作者与单位 Authors & Affiliations

Tim S. Veth, Haley M. Schramm, Nicholas M. Riley

Chemistry, University of Washington, Seattle, WA

摘要 Abstract

中文摘要
Siglec(唾液酸结合免疫球蛋白样凝集素)家族的聚糖结合免疫受体正成为癌症免疫治疗的有吸引力的靶点。Siglecs通过与含唾液酸残基的各种聚糖的复杂相互作用识别细胞表面糖蛋白,这些聚糖在众多恶性肿瘤中上调。Siglecs被其唾液酸糖配体接合会引发一个抑制性信号级联,使用与已确立的免疫检查点受体(如PD-1、CTLA-4和SIRPalpha)共享的相同免疫受体酪氨酸抑制基序(ITIM)信号结构域。我们对Siglec介导的免疫逃逸机制的理解正在迅速提高,这主要归功于定义促进Siglec配体表达的转录和代谢程序的努力。即便如此,指导Siglec配体识别的聚糖和蛋白表位的未知组合(即糖代码)仍是利用Siglecs作为治疗靶点的主要障碍。需要有助于Siglec配体识别的特定糖代码模式的分子细节,以便在肿瘤特异性微环境中靶向免疫调节糖型,同时最大限度减少脱靶效应,但这些异质性修饰状态对传统分析方法构成挑战。在此,我们描述了开发尖端质谱(MS)数据采集技术的努力,该技术结合了电子转移解离(ETD)和质子转移电荷降低(PTCR)离子-离子反应,以分析高度复杂的Siglec配体糖蛋白。我们将在线和离线MS工作流程与自下而上的糖蛋白质组学相结合,以分析已成为下一代糖免疫治疗有吸引力靶点的Siglec配体的高度异质完整糖蛋白变体。PTCR轻易地分离并电荷降低了目标蛋白变体,生成拟天然谱图。识别出目标PTCR扫描,并使用内部软件PTCRcleaner清理谱图。两种完整方法的分析均由使用sceHCD-pd-EThcD方法收集的自下而上质谱数据支持。我们还将此工作流程应用于表征其他糖基化免疫检查点配体,如PD-L1。总之,我们独特地利用离子-离子反应的新型串联MS方法能够表征高度异质的糖蛋白变体库,有助于更深入地理解糖代码的复杂性以及这些蛋白如何促成肿瘤-免疫突触的异质性。
查看英文原文 English abstract
The Siglec ( s ialic acid-binding i mmuno g lobulin-like lec tin) family of glycan-binding immune receptors are emerging as attractive targets for cancer immunotherapy. Siglecs recognize cell surface glycoproteins through complex interactions with various glycans containing sialic acid residues, which are upregulated in numerous malignancies. Engagement of Siglecs by their sialoglyco-ligands elicits an inhibitory signaling cascade using the same immunoreceptor tyrosine-based inhibitory motif (ITIM) signaling domains shared by established immune checkpoint receptors (e.g., PD-1, CTLA-4, and SIRPalpha). Our understanding of the mechanisms behind Siglec-mediated immune evasion has been rapidly improving, largely due to efforts to define transcriptional and metabolic programs that promote Siglec ligand expression. Even so, unknown combinations of glycan and protein epitopes (i.e., the glycocode) that guide Siglec ligand recognition are a major hurdle for exploiting Siglecs as therapeutic targets. Molecular details of specific glycocode patterns that contribute to Siglec ligand recognition are needed to target immune modulatory glycoforms in tumor-specific microenvironments while minimizing off-target effects, but these heterogenous modifications states challenge traditional analytical approaches. Here, we describe our efforts to develop cutting-edge mass spectrometry (MS) data acquisition technologies that incorporate electron transfer dissociation (ETD) and proton transfer charge reduction (PTCR) ion-ion reactions to profile highly complex Siglec ligand glycoproteins. We use online and offline MS workflows in combination with bottom-up glycoproteomics to profile highly heterogeneous intact glycoproteoforms of Siglec ligands that have emerged as attractive targets for next-generation glyco-immunotherapies. PTCR readily isolated and charge-reduced proteoforms of interest, generating pseudo-native spectra. PTCR scans of interest were identified, and spectra were cleaned using in-house software, PTCRcleaner. Analysis of both intact approaches was supported by bottom-up mass spectrometry data collected using a sceHCD-pd-EThcD approach. We also applied this workflow to characterize other glycosylated immune checkpoint ligands, e.g., PD-L1. Altogether, our novel tandem MS approaches that uniquely leverage ion-ion reactions enable the characterization of highly heterogeneous glycoproteoform repertoires, contributing to a deeper understanding of the complexity of the glycocode and how these proteins contribute to heterogeneity in the tumor-immune synapse.
利益披露 Disclosure
T. S. Veth, None.. H. M. Schramm, None. N. M. Riley, Thermo Fisher Scientific Other, Collaborative Research Agreement.

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