TY - JOUR
T1 - Myoglobin-CO Substate Structures and Dynamics
T2 - Multidimensional Vibrational Echoes and Molecular Dynamics Simulations
AU - Merchant, Kusai A.
AU - Noid, W. G.
AU - Akiyama, Ryo
AU - Finkelstein, Ilya J.
AU - Goun, Alexei
AU - McClain, Brian L.
AU - Loring, Roger F.
AU - Fayer, M. D.
PY - 2003/11/12
Y1 - 2003/11/12
N2 - Spectrally resolved infrared stimulated vibrational echo data were obtained for sperm whale carbonmonoxymyoglobin (MbCO) at 300 K. The measured dephasing dynamics of the CO ligand are in agreement with dephasing dynamics calculated with molecular dynamics (MD) simulations for MbCO with the residue histidine-64 (His64) having its imidazole ε nitrogen protonated (N ε-H). The two conformational substate structures B ε and Rε observed in the MD simulations are assigned to the spectroscopic A1 and A3 conformational substates of MbCO, respectively, based on the agreement between the experimentally measured and calculated dephasing dynamics for these substates. In the A1 substate, the Nε-H proton and N δ of His64 are approximately equidistant from the CO ligand, while in the A3 substate, the Nε-H of His64 is oriented toward the CO, and the Nδ is on the surface of the protein. The MD simulations show that dynamics of His64 represent the major source of vibrational dephasing of the CO ligand in the A3 state on both femtosecond and picosecond time scales. Dephasing in the A1 state is controlled by His64 on femtosecond time scales, and by the rest of the protein and the water solvent on longer time scales.
AB - Spectrally resolved infrared stimulated vibrational echo data were obtained for sperm whale carbonmonoxymyoglobin (MbCO) at 300 K. The measured dephasing dynamics of the CO ligand are in agreement with dephasing dynamics calculated with molecular dynamics (MD) simulations for MbCO with the residue histidine-64 (His64) having its imidazole ε nitrogen protonated (N ε-H). The two conformational substate structures B ε and Rε observed in the MD simulations are assigned to the spectroscopic A1 and A3 conformational substates of MbCO, respectively, based on the agreement between the experimentally measured and calculated dephasing dynamics for these substates. In the A1 substate, the Nε-H proton and N δ of His64 are approximately equidistant from the CO ligand, while in the A3 substate, the Nε-H of His64 is oriented toward the CO, and the Nδ is on the surface of the protein. The MD simulations show that dynamics of His64 represent the major source of vibrational dephasing of the CO ligand in the A3 state on both femtosecond and picosecond time scales. Dephasing in the A1 state is controlled by His64 on femtosecond time scales, and by the rest of the protein and the water solvent on longer time scales.
UR - http://www.scopus.com/inward/record.url?scp=0242407234&partnerID=8YFLogxK
U2 - 10.1021/ja035654x
DO - 10.1021/ja035654x
M3 - Article
C2 - 14599220
AN - SCOPUS:0242407234
SN - 0002-7863
VL - 125
SP - 13804
EP - 13818
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 45
ER -