Molecular mechanisms of proton-coupled electron transfer and water oxidation in Photosystem II / Shin Nakamura.
2020
QD716.O95
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Title
Molecular mechanisms of proton-coupled electron transfer and water oxidation in Photosystem II / Shin Nakamura.
Author
ISBN
9789811515842 (electronic book)
9811515840 (electronic book)
9789811515835
9811515840 (electronic book)
9789811515835
Publication Details
Singapore : Springer, 2020.
Language
English
Description
1 online resource (136 pages).
Call Number
QD716.O95
Dewey Decimal Classification
547/.23
Summary
The book reviews photosynthetic water oxidation and proton-coupled electron transfer in photosystem, focusing on the molecular vibrations of amino acid residues and water molecules. Photosynthetic water oxidation performed by plants and cyanobacteria is essential for the sustenance of life on Earth, not only as an electron source for synthesizing sugars from CO2, but also as an O2 source in the atmosphere. Water oxidation takes place at the Mn4CaO5cluster in photosystem II, where a series of electron transfer reactions coupled with proton transfer occur using light energy. The author addresses the unresolved mechanisms of photosynthetic water oxidation and relevant proton-coupled electron transfer reactions using a combined approach of experimental and computational methods such as Fourier transform infrared difference spectroscopy and quantum chemical calculations. The results show that protonation and hydrogen-bond structures of water molecules and amino acid residues in the protein play important roles in regulation of the electron and proton transfer reactions. These findings and the methodology make a significant contribution to our understanding the molecular mechanism of photosynthetic water oxidation.
Note
"Doctoral thesis accepted by Nagoya University, Nagoya, Japan."
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Springer theses.
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