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research article

Fragmentation mechanism of UV-excited peptides in the gas phase

Zabuga, Aleksandra  
•
Kamrath, Michael Zachary  
•
Boyarkin, Oleg V.  
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2014
Journal of Chemical Physics

We present evidence that following near-UV excitation, protonated tyrosine- or phenylalanine–containing peptides undergo intersystem crossing to produce a triplet species. This pathway competes with direct dissociation from the excited electronic state and with dissociation from the electronic ground state subsequent to internal conversion. We employ UV-IR double-resonance photofragment spectroscopy to record conformer-specific vibrational spectra of cold peptides pre-excited to their S1 electronic state. The absorption of tunable IR light by these electronically excited peptides leads to a drastic increase in fragmentation, selectively enhancing the loss of neutral phenylalanine or tyrosine side-chain, which are not the lowest dissociation channels in the ground electronic state. The recorded IR spectra evolve upon increasing the time delay between the UV and IR pulses, reflecting the dynamics of the intersystem crossing on a timescale of ∼80 ns and <10 ns for phenylalanine- and tyrosine-containing peptides, respectively. Once in the triplet state, phenylalanine-containing peptides may live for more than 100 ms, unless they absorb IR photons and undergo dissociation by the loss of an aromatic side-chain. We discuss the mechanism of this fragmentation channel and its possible implications for photofragment spectroscopy and peptide photostability.

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Type
research article
DOI
10.1063/1.4897158
Web of Science ID

WOS:000344346000026

Author(s)
Zabuga, Aleksandra  
Kamrath, Michael Zachary  
Boyarkin, Oleg V.  
Rizzo, Thomas R.  
Date Issued

2014

Publisher

American Institute of Physics

Published in
Journal of Chemical Physics
Volume

141

Article Number

154309

Subjects

ion spectroscopy

•

ultraviolet spectra

•

mass spectrometry

•

photodissociation

•

infrared spectra

•

biomolecules

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LCPM  
Available on Infoscience
October 23, 2014
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/107558
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