Přehled o publikaci
2024
Structure-Photoreactivity Relationship Study of Substituted 3-Hydroxyflavones and 3-Hydroxyflavothiones for Improving Carbon Monoxide Photorelease
JÉZÉQUEL, Yann Anton; Filip SVĚRÁK; Andrea RAMUNDO; Vojtěch OREL; Marek MARTÍNEK et al.Základní údaje
Originální název
Structure-Photoreactivity Relationship Study of Substituted 3-Hydroxyflavones and 3-Hydroxyflavothiones for Improving Carbon Monoxide Photorelease
Autoři
JÉZÉQUEL, Yann Anton; Filip SVĚRÁK; Andrea RAMUNDO; Vojtěch OREL; Marek MARTÍNEK a Petr KLÁN
Vydání
Journal of Organic Chemistry, WASHINGTON, AMER CHEMICAL SOC, 2024, 0022-3263
Další údaje
Jazyk
angličtina
Typ výsledku
Článek v odborném periodiku
Stát vydavatele
Spojené státy
Utajení
není předmětem státního či obchodního tajemství
Odkazy
Označené pro přenos do RIV
Ano
Kód RIV
RIV/00216224:14310/24:00136660
Organizace
Přírodovědecká fakulta – Masarykova univerzita – Repozitář
UT WoS
EID Scopus
Klíčová slova anglicky
INTRAMOLECULAR PROTON-TRANSFER; EXCITED-STATE; CHARGE-TRANSFER; DISSOCIATION-CONSTANTS; METAL-COMPLEXES; TRANSFER ESIPT; SINGLET; OXYGEN; LIGHT; OXIDATION
Návaznosti
GA21-01799S, projekt VaV. MUNI/A/1604/2023, interní kód Repo. 857560, interní kód Repo. RECETOX RI II, velká výzkumná infrastruktura.
Změněno: 24. 6. 2025 00:50, RNDr. Daniel Jakubík
Anotace
V originále
Carbon monoxide (CO) is notorious for its toxic effects but is also recognized as a gasotransmitter with considerable therapeutic potential. Due to the inherent challenges in its delivery, the utilization of organic CO photoreleasing molecules (photoCORMs) represents an interesting alternative to CO administration characterized by high spatial and temporal precision of release. This paper focused on the design, synthesis, and photophysical and photochemical studies of 20 3-hydroxyflavone (flavonol) and 3-hydroxyflavothione derivatives as photoCORMs. Newly synthesized compounds bearing various electron-donating and electron-withdrawing groups show bathochromically shifted absorption maxima and considerably enhanced CO release yields compared to the parent unsubstituted flavonol, exceeding 0.8 equiv of released CO in derivatives exhibiting excited states with a charge-transfer character. Until now, such outcomes have been limited to flavonol derivatives possessing a pi-extended aromatic system. In addition, thione analogs of flavonols, 3-hydroxyflavothiones, show substantial bathochromic shifts of their absorption maxima and enhanced photosensitivity but provide lower yields of CO formation. Our study elucidates in detail the mechanism of CO photorelease from flavonols and flavothiones, utilizing steady-state and time-resolved spectroscopies and photoproduct analyses, with a particular emphasis on unraveling the structure-photoreactivity relationship and understanding competing side processes.