4.8 Article

Tandem Trapped Ion Mobility Spectrometry/Mass Spectrometry (tTIMS/MS) Reveals Sequence-Specific Determinants of Top-Down Protein Fragment Ion Cross Sections

期刊

ANALYTICAL CHEMISTRY
卷 94, 期 23, 页码 8146-8155

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AMER CHEMICAL SOC
DOI: 10.1021/acs.analchem.1c05171

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资金

  1. National Institutes of Health [R01GM135682]
  2. Federal Ministry of Education and Research
  3. Thuringian Ministry for Economic Affairs, Science and a Digital Society

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Top-down proteomics is a challenging but direct approach to studying proteoforms. This study utilizes ion mobility spectrometry/mass spectrometry (IMS/MS) to separate top-down fragment ions and reveals that these ions exhibit multiple stable conformations influenced by their amino acid sequence. The study also suggests that the folding process of fragment ions can lead to kinetic trapping of intermediate states in ion mobility measurements.
Top-down proteomics provides a straightforward approach to the level of proteoforms but remains technologically challenging. Using ion mobility spectrometry/mass spectrometry (IMS/MS) to separate top-down fragment ions improves signal/noise and dynamic range. Such applications, however, do not yet leverage the primary information obtained from IMS/MS, which is the characterization of the fragment ion structure by the measured momentum transfer cross sections. Here, we perform top-down analysis of intact proteins and assemblies using our tandem trapped ion mobility spectrometer/mass spectrometer (tTIMS/MS) and compile over 1400 cross section values of fragment ions. Our analysis reveals that most fragment ions exhibit multiple, stable conformations similar to those of intact polypeptides and proteins. The data further indicate that the conformational heterogeneity is strongly influenced by the amino acid sequences of the fragment ions. Moreover, time-resolved tTIMS/MS experiments reveal that conformations of top-down fragment ions can be metastable on the timescale of ion mobility measurements. Taken together, our analysis indicates that top-down fragment ions undergo a folding process in the gas phase and that this folding process can lead to kinetic trapping of intermediate states in ion mobility measurements. Hence, because the folding free energy surface of a polypeptide ion is encoded by its amino acid sequence and charge state, our analysis suggests that cross sections can be exploited as sequencespecific determinants of top-down fragment ions.

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