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Updated: Sep 27, 2025

Inactivation of Pathogens via Visible-Light Photolysis of Riboflavin-5′-Phosphate
Published on: April 6, 2022
A DFT study on the degradation mechanism of vitamin B2
Shinichi Yamabe1, Noriko Tsuchida2, Shoko Yamazaki1
1Department of Chemistry, Nara University of Education, Takabatake-cho, Nara 630-8528, Japan.
Abstract:
Degradation reaction paths starting from riboflavin (RF) were investigated using DFT (density functional theory) as the first attempt to reveal their elementary processes. Photochemical reactions were followed in the lowest triplet spin state, "(T)". Two intermediates [Int1(T) and Int2(T)] were found in the course, RF(T) → FMF (7,8-dimethyl-10-formylflavin, T). From FMF(T), there are two degradation channels. Release of ketene(T) and carbon monoxide leads to LC (lumichrome, S0) and LF (lumiflavin, T), respectively. The base-catalyzed (ground state) degradation of FMF was investigated with HO-(H2O)3. The Grotthuss-type proton transfer along hydrogen bonds controlled the degradation reaction. All the transition states of cleavage of C-C and C-N covalent bonds were determined, and the degradation mechanism was clarified.
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