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Ultrafast spectroscopy reveals subnanosecond peptide conformational dynamics and validates molecular dynamics simulation
Author(s) -
S. Spörlein,
Heiko Carstens,
Helmut Satzger,
Christian Renner,
Raymond Behrendt,
Luis Moroder,
Paul Tavan,
Wolfgang Zinth,
Josef Wachtveitl
Publication year - 2002
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.122238799
Subject(s) - photoisomerization , chromophore , molecular dynamics , femtosecond , azobenzene , relaxation (psychology) , spectroscopy , isomerization , chemistry , peptide , chemical physics , ultrashort pulse , femtochemistry , photochemistry , materials science , computational chemistry , molecule , optics , physics , laser , quantum mechanics , psychology , social psychology , biochemistry , organic chemistry , catalysis
Femtosecond time-resolved spectroscopy on model peptides with built-in light switches combined with computer simulation of light-triggered motions offers an attractive integrated approach toward the understanding of peptide conformational dynamics. It was applied to monitor the light-induced relaxation dynamics occurring on subnanosecond time scales in a peptide that was backbone-cyclized with an azobenzene derivative as optical switch and spectroscopic probe. The femtosecond spectra permit the clear distinguishing and characterization of the subpicosecond photoisomerization of the chromophore, the subsequent dissipation of vibrational energy, and the subnanosecond conformational relaxation of the peptide. The photochemical cis/trans-isomerization of the chromophore and the resulting peptide relaxations have been simulated with molecular dynamics calculations. The calculated reaction kinetics, as monitored by the energy content of the peptide, were found to match the spectroscopic data. Thus we verify that all-atom molecular dynamics simulations can quantitatively describe the subnanosecond conformational dynamics of peptides, strengthening confidence in corresponding predictions for longer time scales.

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