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Subresidue-Resolution Footprinting of Ligand-Protein Interactions by Carbene Chemistry and Ion Mobility-Mass Spectrometry

机译:次次蛋白分辨率分辨率的配体 - 蛋白质相互作用通过卡宾化学和离子迁移率 - 质谱法

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摘要

The knowledge of ligand-protein interactions is essential for understanding fundamental biological processes and for the rational design of drugs that target such processes. Carbene footprinting efficiently labels proteinaceous residues and has been used with mass spectrometry (MS) to map ligand-protein interactions. Nevertheless, previous footprinting studies are typically performed at the residue level, and therefore, the resolution may not be high enough to couple with conventional crystallography techniques. Herein we developed a subresidue footprinting strategy based on the discovery that carbene labeling produces subresidue peptide isomers and the intensity changes of these isomers in response to ligand binding can be exploited to delineate ligand-protein topography at the subresidue level. The established workflow combines carbene footprinting, extended liquid chromatographic separation, and ion mobility (IM)-MS for efficient separation and identification of subresidue isomers. Analysis of representative subresidue isomers located within the binding cleft of lysozyme and those produced from an amyloid-beta segment have both uncovered structural information heretofore unavailable by residue-level footprinting. Lastly, a "real-world" application shows that the reactivity changes of subresidue isomers at Phe399 can identify the interactive nuances between estrogen-related receptor a, a potential drug target for cancer and metabolic diseases, with its three ligands. These findings have significant implications for drug design. Taken together, we envision the subresidue-level resolution enabled by IM-MS-coupled carbene footprinting can bridge the gap between structural MS and the more-established biophysical tools and ultimately facilitate diverse applications for fundamental research and pharmaceutical development.
机译:配体 - 蛋白质相互作用的知识对于了解基本生物过程和针对靶向此类过程的药物的合理设计至关重要。卡宾脚印有效地标记蛋白质残留物,并已与质谱(MS)一起使用以映射配体 - 蛋白质相互作用。然而,先前的脚印研究通常在残留水平上进行,因此,分辨率可能不足以与传统的晶体学技术一起加注。在此,基于发现基于卡贝替肽肽异构体的发现基于发现的次态型策略,并且可以利用响应于配体结合的这些异构体的强度变化来描绘次蛋白水平下的配体 - 蛋白质。建立的工作流程将卡宾脚印,延伸的液相色谱分离和离子迁移率(IM) - 用于有效分离和鉴定次次次体异构体。分析位于溶菌酶结合裂缝中的代表性亚粒子异构体和由淀粉样蛋白-β段产生的那些,其迄今为止迄今为止迄今为止不可用的揭示结构信息。最后,“真实世界”的应用表明,PHE399的次次次法异构体的反应性变化可以鉴定雌激素相关受体A之间的互动细胞,癌症和代谢疾病的潜在药物靶标,其三种配体。这些发现对药物设计具有显着影响。我们一起设想了IM-MS耦合的卡宾脚印能够弥合结构MS和更成熟的生物物理工具之间的差距,最终促进基本研究和药物发展的多样化应用。

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  • 来源
    《Analytical chemistry》 |2020年第1期|共10页
  • 作者单位

    China Pharmaceut Univ Sch Pharm Tongjiaxiang 24 Nanjing 210009 Jiangsu Peoples R China;

    China Pharmaceut Univ Key Lab Drug Metab &

    Pharmacokinet State Key Lab Nat Med Tongjiaxiang 24 Nanjing 210009 Jiangsu Peoples R China;

    Univ Wisconsin Sch Pharm 777 Highland Ave Madison WI 53706 USA;

    China Pharmaceut Univ Sch Pharm Tongjiaxiang 24 Nanjing 210009 Jiangsu Peoples R China;

    China Pharmaceut Univ Key Lab Drug Metab &

    Pharmacokinet State Key Lab Nat Med Tongjiaxiang 24 Nanjing 210009 Jiangsu Peoples R China;

    China Pharmaceut Univ Sch Pharm Tongjiaxiang 24 Nanjing 210009 Jiangsu Peoples R China;

    China Pharmaceut Univ Key Lab Drug Metab &

    Pharmacokinet State Key Lab Nat Med Tongjiaxiang 24 Nanjing 210009 Jiangsu Peoples R China;

    Univ Wisconsin Sch Pharm 777 Highland Ave Madison WI 53706 USA;

    China Pharmaceut Univ Key Lab Drug Metab &

    Pharmacokinet State Key Lab Nat Med Tongjiaxiang 24 Nanjing 210009 Jiangsu Peoples R China;

    Univ Wisconsin Sch Pharm 777 Highland Ave Madison WI 53706 USA;

    China Pharmaceut Univ Sch Pharm Tongjiaxiang 24 Nanjing 210009 Jiangsu Peoples R China;

    China Pharmaceut Univ Key Lab Drug Metab &

    Pharmacokinet State Key Lab Nat Med Tongjiaxiang 24 Nanjing 210009 Jiangsu Peoples R China;

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  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

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