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Terahertz underdamped vibrational motion governs protein-ligand binding in solution. | LitMetric

AI Article Synopsis

  • Low-frequency collective vibrational modes in proteins may play a key role in biochemical reactions and energy transport, but evidence of these modes is limited.
  • This study uses advanced femtosecond optical Kerr-effect spectroscopy to analyze lysozyme and its inhibitor complex, revealing that specific vibrational modes become stronger and change frequency when the inhibitor binds.
  • The findings suggest that the vibrational characteristics of proteins are more complex than previously thought, impacting our understanding of how proteins interact with molecules and affecting broader biochemical processes.

Article Abstract

Low-frequency collective vibrational modes in proteins have been proposed as being responsible for efficiently directing biochemical reactions and biological energy transport. However, evidence of the existence of delocalized vibrational modes is scarce and proof of their involvement in biological function absent. Here we apply extremely sensitive femtosecond optical Kerr-effect spectroscopy to study the depolarized Raman spectra of lysozyme and its complex with the inhibitor triacetylchitotriose in solution. Underdamped delocalized vibrational modes in the terahertz frequency domain are identified and shown to blue-shift and strengthen upon inhibitor binding. This demonstrates that the ligand-binding coordinate in proteins is underdamped and not simply solvent-controlled as previously assumed. The presence of such underdamped delocalized modes in proteins may have significant implications for the understanding of the efficiency of ligand binding and protein-molecule interactions, and has wider implications for biochemical reactivity and biological function.

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Source
http://dx.doi.org/10.1038/ncomms4999DOI Listing

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