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Ultrafast energy relaxation dynamics of amide I vibrations coupled with protein-bound water molecules.


ABSTRACT: The influence of hydration water on the vibrational energy relaxation in a protein holds the key to understand ultrafast protein dynamics, but its detection is a major challenge. Here, we report measurements on the ultrafast vibrational dynamics of amide I vibrations of proteins at the lipid membrane/H2O interface using femtosecond time-resolved sum frequency generation vibrational spectroscopy. We find that the relaxation time of the amide I mode shows a very strong dependence on the H2O exposure, but not on the D2O exposure. This observation indicates that the exposure of amide I bond to H2O opens up a resonant relaxation channel and facilitates direct resonant vibrational energy transfer from the amide I mode to the H2O bending mode. The protein backbone motions can thus be energetically coupled with protein-bound water molecules. Our findings highlight the influence of H2O on the ultrafast structure dynamics of proteins.

SUBMITTER: Tan J 

PROVIDER: S-EPMC6397197 | biostudies-other | 2019 Mar

REPOSITORIES: biostudies-other

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Ultrafast energy relaxation dynamics of amide I vibrations coupled with protein-bound water molecules.

Tan Junjun J   Zhang Jiahui J   Li Chuanzhao C   Luo Yi Y   Ye Shuji S  

Nature communications 20190301 1


The influence of hydration water on the vibrational energy relaxation in a protein holds the key to understand ultrafast protein dynamics, but its detection is a major challenge. Here, we report measurements on the ultrafast vibrational dynamics of amide I vibrations of proteins at the lipid membrane/H<sub>2</sub>O interface using femtosecond time-resolved sum frequency generation vibrational spectroscopy. We find that the relaxation time of the amide I mode shows a very strong dependence on the  ...[more]

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