| Literature DB >> 26276344 |
Naoki Fujii1, Misao Mizuno1, Haruto Ishikawa1, Yasuhisa Mizutani1.
Abstract
One of the challenges in physical chemistry has been understanding how energy flows in a condensed phase from the microscopic viewpoint. To address this, space-resolved information at the molecular scale is required but has been lacking due to experimental difficulties. We succeeded in the real-time mapping of the vibrational energy flow in a protein with the spatial resolution of a single amino acid residue by combining time-resolved resonance Raman spectroscopy and site-directed single-Trp mutagenesis. Anti-Stokes Raman intensities of the Trp residues at different sites exhibited different temporal evolutions, reflecting propagation of the energy released by the heme group. A classical heat transport model was not able to reproduce the entire experimental data set, showing that we need a molecular-level description to explain the energy flow in a protein. The systematic application of our general methodology to proteins with different structural motifs may provide a greatly increased understanding of the energy flow in proteins.Entities:
Keywords: anti-Stokes scattering; myoglobin; resonance Raman spectroscopy; thermal diffusion; vibrational energy relaxation
Year: 2014 PMID: 26276344 DOI: 10.1021/jz501882h
Source DB: PubMed Journal: J Phys Chem Lett ISSN: 1948-7185 Impact factor: 6.475