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Optimization of electron transfer dissociation via informed selection of reagents and operating parameters.


ABSTRACT: Electron transfer dissociation (ETD) has improved the mass spectrometric analysis of proteins and peptides with labile post-translational modifications and larger intact masses. Here, the parameters governing the reaction rate of ETD are examined experimentally. Currently, due to reagent injection and isolation events as well as longer reaction times, ETD spectra require significantly more time to acquire than collision-induced dissociation (CID) spectra (>100 ms), resulting in a trade-off in the dynamic range of tandem MS analyses when ETD-based methods are compared to CID-based methods. Through fine adjustment of reaction parameters and the selection of reagents with optimal characteristics, we demonstrate a drastic reduction in the time taken per ETD event. In fact, ETD can be performed with optimal efficiency in nearly the same time as CID at low precursor charge state (z = +3) and becomes faster at higher charge state (z > +3).

SUBMITTER: Compton PD 

PROVIDER: S-EPMC3277643 | biostudies-literature | 2012 Feb

REPOSITORIES: biostudies-literature

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Optimization of electron transfer dissociation via informed selection of reagents and operating parameters.

Compton Philip D PD   Strukl Joseph V JV   Bai Dina L DL   Shabanowitz Jeffrey J   Hunt Donald F DF  

Analytical chemistry 20120106 3


Electron transfer dissociation (ETD) has improved the mass spectrometric analysis of proteins and peptides with labile post-translational modifications and larger intact masses. Here, the parameters governing the reaction rate of ETD are examined experimentally. Currently, due to reagent injection and isolation events as well as longer reaction times, ETD spectra require significantly more time to acquire than collision-induced dissociation (CID) spectra (>100 ms), resulting in a trade-off in th  ...[more]

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