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增强碰撞诱导去折叠和电子捕获解离天然样蛋白离子。

Enhanced Collision Induced Unfolding and Electron Capture Dissociation of Native-like Protein Ions.

机构信息

Department of Chemistry, University of Michigan, 930 North University Avenue, Ann Arbor, Michigan 48109, United States.

Agilent Technologies, 5301 Stevens Creek Blvd, Santa Clara, California 98051, United States.

出版信息

Anal Chem. 2020 Dec 1;92(23):15489-15496. doi: 10.1021/acs.analchem.0c03372. Epub 2020 Nov 9.

Abstract

Native ion mobility-mass spectrometry (IM-MS) is capable of revealing much that remains unknown within the structural proteome, promising such information on refractory protein targets. Here, we report the development of a unique drift tube IM-MS (DTIM-MS) platform, which combines high-energy source optics for improved collision induced unfolding (CIU) experiments and an electromagnetostatic cell for electron capture dissociation (ECD). We measured a series of high precision collision cross section (CCS) values for protein and protein complex ions ranging from 6-1600 kDa, exhibiting an average relative standard deviation (RSD) of 0.43 ± 0.20%. Furthermore, we compare our CCS results to previously reported DTIM values, finding strong agreement across similarly configured instrumentation (average RSD of 0.82 ± 0.73%), and systematic differences for DTIM CCS values commonly used to calibrate traveling-wave IM separators (-3% average RSD). Our CIU experiments reveal that the modified DTIM-MS instrument described here achieves enhanced levels of ion activation when compared with any previously reported IM-MS platforms, allowing for comprehensive unfolding of large multiprotein complex ions as well as interplatform CIU comparisons. Using our modified DTIM instrument, we studied two protein complexes. The enhanced CIU capabilities enable us to study the gas phase stability of the GroEL 7-mer and 14-mer complexes. Finally, we report CIU-ECD experiments for the alcohol dehydrogenase tetramer, demonstrating improved sequence coverage by combining ECD fragmentation integrated over multiple CIU intermediates. Further improvements for such native top-down sequencing experiments were possible by leveraging IM separation, which enabled us to separate and analyze CID and ECD fragmentation simultaneously.

摘要

天然离子淌度-质谱(IM-MS)能够揭示结构蛋白质组中许多未知的信息,有望为难以处理的蛋白质靶标提供此类信息。在这里,我们报告了一种独特的漂移管 IM-MS(DTIM-MS)平台的开发,该平台结合了高能源光学,用于改进碰撞诱导解折叠(CIU)实验和用于电子捕获解离(ECD)的静电电池。我们测量了一系列范围从 6-1600 kDa 的蛋白质和蛋白质复合物离子的高精度碰撞截面(CCS)值,其平均相对标准偏差(RSD)为 0.43 ± 0.20%。此外,我们将CCS 结果与先前报道的 DTIM 值进行了比较,发现类似配置的仪器之间具有很强的一致性(平均 RSD 为 0.82 ± 0.73%),并且对于通常用于校准行波 IM 分离器的 DTIM CCS 值存在系统差异(平均 RSD 为-3%)。我们的 CIU 实验表明,与任何以前报道的 IM-MS 平台相比,这里描述的改良 DTIM-MS 仪器可实现更高水平的离子活化,从而可以全面展开大的多蛋白复合物离子以及跨平台的 CIU 比较。使用我们改良的 DTIM 仪器,我们研究了两种蛋白质复合物。增强的 CIU 能力使我们能够研究 GroEL 7-mer 和 14-mer 复合物的气相稳定性。最后,我们报告了用于醇脱氢酶四聚体的 CIU-ECD 实验,通过将多个 CIU 中间体的 ECD 碎片化进行积分,证明了更好的序列覆盖率。通过利用 IM 分离,可以进一步改善此类天然自上而下测序实验,使我们能够同时分离和分析 CID 和 ECD 碎片化。

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