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Photochemistry of P,N-bidentate rhenium(i) tricarbonyl complexes: reactive species generation and potential application for antibacterial photodynamic therapy

In this work, we describe the photoisomerization of facial rhenium(i) tricarbonyl complexes bearing P,N-bidentate pyridyl/phosphine ligands with different chelating rings and anions: RePNBr, RePNTfO, and RePNNBr, which are triggered under irradiation at 365 nm in solutions. The apparent photodegrada...

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Autores principales: Acosta, Alison, Antipán, Javier, Fernández, Mariano, Prado, Gaspar, Sandoval-Altamirano, Catalina, Günther, Germán, Gutiérrez-Urrutia, Izabook, Poblete-Castro, Ignacio, Vega, Andrés, Pizarro, Nancy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9041655/
https://www.ncbi.nlm.nih.gov/pubmed/35495525
http://dx.doi.org/10.1039/d1ra06416a
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author Acosta, Alison
Antipán, Javier
Fernández, Mariano
Prado, Gaspar
Sandoval-Altamirano, Catalina
Günther, Germán
Gutiérrez-Urrutia, Izabook
Poblete-Castro, Ignacio
Vega, Andrés
Pizarro, Nancy
author_facet Acosta, Alison
Antipán, Javier
Fernández, Mariano
Prado, Gaspar
Sandoval-Altamirano, Catalina
Günther, Germán
Gutiérrez-Urrutia, Izabook
Poblete-Castro, Ignacio
Vega, Andrés
Pizarro, Nancy
author_sort Acosta, Alison
collection PubMed
description In this work, we describe the photoisomerization of facial rhenium(i) tricarbonyl complexes bearing P,N-bidentate pyridyl/phosphine ligands with different chelating rings and anions: RePNBr, RePNTfO, and RePNNBr, which are triggered under irradiation at 365 nm in solutions. The apparent photodegradation rate constants (k(app)) depend on the coordinating ability of the solvent, being lowest in acetonitrile. The k(app) value increases as the temperature rises, suggesting a reactive IL excited state thermally populated from the MLCT excited state involved. Using the Eyring equation, positive activation enthalpies (ΔH(≠)) accompanied by high negative values for the activation entropy (ΔS(≠)) were obtained. These results suggest whatever the P,N-ligand or anion, the reaction proceeds through a strongly solvated or a compact transition state, which is compatible with an associative mechanism for the photoisomerization. A 100-fold decrease in the log(10) CFU value is observed for E. coli and S. aureus in irradiated solutions of the compounds, which follows the same tendency as their singlet oxygen generation quantum yield: RePNBr > RePNTfO > RePNNBr, while no antibacterial activity is observed in the darkness. This result indicates that the generation of singlet oxygen plays a key role in the antibacterial capacity of these complexes.
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spelling pubmed-90416552022-04-28 Photochemistry of P,N-bidentate rhenium(i) tricarbonyl complexes: reactive species generation and potential application for antibacterial photodynamic therapy Acosta, Alison Antipán, Javier Fernández, Mariano Prado, Gaspar Sandoval-Altamirano, Catalina Günther, Germán Gutiérrez-Urrutia, Izabook Poblete-Castro, Ignacio Vega, Andrés Pizarro, Nancy RSC Adv Chemistry In this work, we describe the photoisomerization of facial rhenium(i) tricarbonyl complexes bearing P,N-bidentate pyridyl/phosphine ligands with different chelating rings and anions: RePNBr, RePNTfO, and RePNNBr, which are triggered under irradiation at 365 nm in solutions. The apparent photodegradation rate constants (k(app)) depend on the coordinating ability of the solvent, being lowest in acetonitrile. The k(app) value increases as the temperature rises, suggesting a reactive IL excited state thermally populated from the MLCT excited state involved. Using the Eyring equation, positive activation enthalpies (ΔH(≠)) accompanied by high negative values for the activation entropy (ΔS(≠)) were obtained. These results suggest whatever the P,N-ligand or anion, the reaction proceeds through a strongly solvated or a compact transition state, which is compatible with an associative mechanism for the photoisomerization. A 100-fold decrease in the log(10) CFU value is observed for E. coli and S. aureus in irradiated solutions of the compounds, which follows the same tendency as their singlet oxygen generation quantum yield: RePNBr > RePNTfO > RePNNBr, while no antibacterial activity is observed in the darkness. This result indicates that the generation of singlet oxygen plays a key role in the antibacterial capacity of these complexes. The Royal Society of Chemistry 2021-09-27 /pmc/articles/PMC9041655/ /pubmed/35495525 http://dx.doi.org/10.1039/d1ra06416a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Acosta, Alison
Antipán, Javier
Fernández, Mariano
Prado, Gaspar
Sandoval-Altamirano, Catalina
Günther, Germán
Gutiérrez-Urrutia, Izabook
Poblete-Castro, Ignacio
Vega, Andrés
Pizarro, Nancy
Photochemistry of P,N-bidentate rhenium(i) tricarbonyl complexes: reactive species generation and potential application for antibacterial photodynamic therapy
title Photochemistry of P,N-bidentate rhenium(i) tricarbonyl complexes: reactive species generation and potential application for antibacterial photodynamic therapy
title_full Photochemistry of P,N-bidentate rhenium(i) tricarbonyl complexes: reactive species generation and potential application for antibacterial photodynamic therapy
title_fullStr Photochemistry of P,N-bidentate rhenium(i) tricarbonyl complexes: reactive species generation and potential application for antibacterial photodynamic therapy
title_full_unstemmed Photochemistry of P,N-bidentate rhenium(i) tricarbonyl complexes: reactive species generation and potential application for antibacterial photodynamic therapy
title_short Photochemistry of P,N-bidentate rhenium(i) tricarbonyl complexes: reactive species generation and potential application for antibacterial photodynamic therapy
title_sort photochemistry of p,n-bidentate rhenium(i) tricarbonyl complexes: reactive species generation and potential application for antibacterial photodynamic therapy
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9041655/
https://www.ncbi.nlm.nih.gov/pubmed/35495525
http://dx.doi.org/10.1039/d1ra06416a
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