AI Article Synopsis

  • Ultraviolet photodissociation (UVPD) mass spectrometry is effective for analyzing intact proteins, but secondary dissociation of fragment ions can limit sequence coverage, especially in protein midsections.
  • A new technique called fragment ion protection (FIP) modulates the trajectories of fragment ions using notched waveforms to reduce secondary dissociation, leading to more large fragment ions being identified.
  • In this study, applying a stepped-FIP strategy improved the detection of fragment ions in the middle sections of protein sequences, significantly increasing the identification of sequence ions in larger proteins like glutamate dehydrogenase.

Article Abstract

Ultraviolet photodissociation (UVPD) mass spectrometry has gained attention in recent years for its ability to provide high sequence coverage of intact proteins. However, secondary dissociation of fragment ions, in which fragment ions subjected to multiple laser pulses decompose into small products, is a common phenomenon during UVPD that contributes to limited coverage in the midsection of protein sequences. To counter secondary dissociation, a method involving the application of notched waveforms to modulate the trajectories of fragment ions away from the laser beam, termed fragment ion protection (FIP), was previously developed to reduce the probability of secondary dissociation. This, in turn, increased the number of identified large fragment ions. In the present study, FIP was applied to UVPD of large proteins ranging in size from 29 to 55 kDa, enhancing the abundances of large fragment ions. A stepped-FIP strategy was implemented in which UVPD mass spectra were collected using multiple different amplitudes of the FIP waveforms and then the results from the mass spectra were combined. By using stepped-FIP, the number of fragment ions in the midsections of the sequences increased for all proteins. For example, whereas no fragment ions were identified in the middle section of the sequence for glutamate dehydrogenase (55 kDa, 55+ charge state), 10 sequence ions were identified by using UVPD-FIP.

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Source
http://dx.doi.org/10.1021/jasms.1c00296DOI Listing

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