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Hydrogen-Bond Free Energy of Local Biological Water
  • Park, Won Woo ;
  • Lee, Kyung Min ;
  • Lee, Byeong Sung ;
  • Kim, Young Jae ;
  • Joo, Se Hun ;
  • Kwak, Sang Kyu ;
  • Yoo, Tae Hyeon ;
  • Kwon, Oh Hoon
Citations

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Publication Year
2020-04-27
Publisher
Wiley-VCH Verlag
Citation
Angewandte Chemie - International Edition, Vol.59, pp.7089-7096
Keyword
biological waterfemtochemistryhydrogen-bond free energyprotein engineeringproton transfer
Mesh Keyword
Biological waterChromophoric moietiesCoiled-coil proteinsExperimental methodologyFemtochemistryFree-energy differenceIsothermal conditionsProtein engineeringDensity Functional TheoryHydrogen BondingMolecular StructureProteinsProtonsSpectrometry, FluorescenceSurface PropertiesThermodynamicsWater
All Science Classification Codes (ASJC)
CatalysisChemistry (all)
Abstract
Here, we propose an experimental methodology based on femtosecond-resolved fluorescence spectroscopy to measure the hydrogen (H)-bond free energy of water at protein surfaces under isothermal conditions. A demonstration was conducted by installing a non-canonical isostere of tryptophan (7-azatryptophan) at the surface of a coiled-coil protein to exploit the photoinduced proton transfer of its chromophoric moiety, 7-azaindole. The H-bond free energy of this biological water was evaluated by comparing the rates of proton transfer, sensitive to the hydration environment, at the protein surface and in bulk water, and it was found to be higher than that of bulk water by 0.4 kcal mol−1. The free-energy difference is dominated by the entropic cost in the H-bond network among water molecules at the hydrophilic and charged protein surface. Our study opens a door to accessing the energetics and dynamics of local biological water to give insight into its roles in protein structure and function.
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/31230
DOI
https://doi.org/10.1002/anie.202002025
Fulltext

Type
Article
Funding
This work was supported by the National Research Foundation of Korea (NRF), funded by the Ministry of Science, ICT, and Future Planning (2014R1A1A1008289 and 2014R1A5A1009799), the Ministry of Education (2019R1A6A1A11051471), and by the Institute for Basic Science (IBS‐R020‐D1), Korea. The computational resources were provided by UNIST‐HPC and KISTI (KSC‐2016‐C2‐0062).This work was supported by the National Research Foundation of Korea (NRF), funded by the Ministry of Science, ICT, and Future Planning (2014R1A1A1008289 and 2014R1A5A1009799), the Ministry of Education (2019R1A6A1A11051471), and by the Institute for Basic Science (IBS-R020-D1), Korea. The computational resources were provided by UNIST-HPC and KISTI (KSC-2016-C2-0062).
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