4.5 Article

Nonthermal excitation effects mediated by sub-terahertz radiation on hydrogen exchange in ubiquitin

期刊

BIOPHYSICAL JOURNAL
卷 120, 期 12, 页码 2386-2393

出版社

CELL PRESS
DOI: 10.1016/j.bpj.2021.04.013

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资金

  1. JSPS KAKENHI [18K18731, 20H03298]
  2. Research Foundation for Opto-Science and Technology
  3. RIKEN-AIST Joint Research Fund
  4. Grants-in-Aid for Scientific Research [18K18731, 20H03298] Funding Source: KAKEN

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The study found that subterahertz irradiation can accelerate the hydrogen-deuterium exchange in the interior and hydrophobic surfaces of ubiquitin, but decelerate the exchange rate in the surface loop and short helix regions, which is qualitatively contradictory to the effect induced by increased temperature.
Water dynamics in the hydration layers of biomolecules play crucial roles in a wide range of biological functions. A hydrated protein contains multiple components of diffusional and vibrational dynamics of water and protein, which may be coupled at similar to 0.1-THz frequency (10-ps timescale) at room temperature. However, the microscopic description of biomolecular functions based on various modes of protein-water-coupled motions remains elusive. A novel approach for perturbing the hydration dynamics in the subterahertz frequency range and probing them at the atomic level is therefore warranted. In this study, we investigated the effect of klystron-based, intense 0.1-THz excitation on the slow dynamics of ubiquitin using NMR-based measurements of hydrogen-deuterium exchange. We demonstrated that the subterahertz irradiation accelerated the hydrogen-deuterium exchange of the amides located in the interior of the protein and hydrophobic surfaces while decelerating this exchange in the amides located in the surface loop and short 3(10) helix regions. This subterahertz-radiation-induced effect was qualitatively contradictory to the increased-temperature-induced effect. Our results suggest that the heterogeneous water dynamics occurring at the protein-water interface include components that are nonthermally excited by the subterahertz radiation. Such subterahertz-excited components may be linked to the slow function-related dynamics of the protein.

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