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Osmium(ii) tethered half-sandwich complexes: pH-dependent aqueous speciation and transfer hydrogenation in cells

Aquation is often acknowledged as a necessary step for metallodrug activity inside the cell. Hemilabile ligands can be used for reversible metallodrug activation. We report a new family of osmium(ii) arene complexes of formula [Os(η(6)-C(6)H(5)(CH(2))(3)OH)(XY)Cl](+/0) (1–13) bearing the hemilabile...

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Autores principales: Infante-Tadeo, Sonia, Rodríguez-Fanjul, Vanessa, Habtemariam, Abraha, Pizarro, Ana M.
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/PMC8278929/
https://www.ncbi.nlm.nih.gov/pubmed/34349898
http://dx.doi.org/10.1039/d1sc01939b
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author Infante-Tadeo, Sonia
Rodríguez-Fanjul, Vanessa
Habtemariam, Abraha
Pizarro, Ana M.
author_facet Infante-Tadeo, Sonia
Rodríguez-Fanjul, Vanessa
Habtemariam, Abraha
Pizarro, Ana M.
author_sort Infante-Tadeo, Sonia
collection PubMed
description Aquation is often acknowledged as a necessary step for metallodrug activity inside the cell. Hemilabile ligands can be used for reversible metallodrug activation. We report a new family of osmium(ii) arene complexes of formula [Os(η(6)-C(6)H(5)(CH(2))(3)OH)(XY)Cl](+/0) (1–13) bearing the hemilabile η(6)-bound arene 3-phenylpropanol, where XY is a neutral N,N or an anionic N,O(−) bidentate chelating ligand. Os–Cl bond cleavage in water leads to the formation of the hydroxido/aqua adduct, Os–OH(H). In spite of being considered inert, the hydroxido adduct unexpectedly triggers rapid tether ring formation by attachment of the pendant alcohol–oxygen to the osmium centre, resulting in the alkoxy tethered complex [Os(η(6)-arene-O-κ(1))(XY)](n+). Complexes 1C–13C of formula [Os(η(6):κ(1)-C(6)H(5)(CH(2))(3)OH/O)(XY)](+) are fully characterised, including the X-ray structure of cation 3C. Tether-ring formation is reversible and pH dependent. Osmium complexes bearing picolinate N,O-chelates (9–12) catalyse the hydrogenation of pyruvate to lactate. Intracellular lactate production upon co-incubation of complex 11 (XY = 4-Me-picolinate) with formate has been quantified inside MDA-MB-231 and MCF7 breast cancer cells. The tether Os–arene complexes presented here can be exploited for the intracellular conversion of metabolites that are essential in the intricate metabolism of the cancer cell.
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spelling pubmed-82789292021-08-03 Osmium(ii) tethered half-sandwich complexes: pH-dependent aqueous speciation and transfer hydrogenation in cells Infante-Tadeo, Sonia Rodríguez-Fanjul, Vanessa Habtemariam, Abraha Pizarro, Ana M. Chem Sci Chemistry Aquation is often acknowledged as a necessary step for metallodrug activity inside the cell. Hemilabile ligands can be used for reversible metallodrug activation. We report a new family of osmium(ii) arene complexes of formula [Os(η(6)-C(6)H(5)(CH(2))(3)OH)(XY)Cl](+/0) (1–13) bearing the hemilabile η(6)-bound arene 3-phenylpropanol, where XY is a neutral N,N or an anionic N,O(−) bidentate chelating ligand. Os–Cl bond cleavage in water leads to the formation of the hydroxido/aqua adduct, Os–OH(H). In spite of being considered inert, the hydroxido adduct unexpectedly triggers rapid tether ring formation by attachment of the pendant alcohol–oxygen to the osmium centre, resulting in the alkoxy tethered complex [Os(η(6)-arene-O-κ(1))(XY)](n+). Complexes 1C–13C of formula [Os(η(6):κ(1)-C(6)H(5)(CH(2))(3)OH/O)(XY)](+) are fully characterised, including the X-ray structure of cation 3C. Tether-ring formation is reversible and pH dependent. Osmium complexes bearing picolinate N,O-chelates (9–12) catalyse the hydrogenation of pyruvate to lactate. Intracellular lactate production upon co-incubation of complex 11 (XY = 4-Me-picolinate) with formate has been quantified inside MDA-MB-231 and MCF7 breast cancer cells. The tether Os–arene complexes presented here can be exploited for the intracellular conversion of metabolites that are essential in the intricate metabolism of the cancer cell. The Royal Society of Chemistry 2021-06-10 /pmc/articles/PMC8278929/ /pubmed/34349898 http://dx.doi.org/10.1039/d1sc01939b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Infante-Tadeo, Sonia
Rodríguez-Fanjul, Vanessa
Habtemariam, Abraha
Pizarro, Ana M.
Osmium(ii) tethered half-sandwich complexes: pH-dependent aqueous speciation and transfer hydrogenation in cells
title Osmium(ii) tethered half-sandwich complexes: pH-dependent aqueous speciation and transfer hydrogenation in cells
title_full Osmium(ii) tethered half-sandwich complexes: pH-dependent aqueous speciation and transfer hydrogenation in cells
title_fullStr Osmium(ii) tethered half-sandwich complexes: pH-dependent aqueous speciation and transfer hydrogenation in cells
title_full_unstemmed Osmium(ii) tethered half-sandwich complexes: pH-dependent aqueous speciation and transfer hydrogenation in cells
title_short Osmium(ii) tethered half-sandwich complexes: pH-dependent aqueous speciation and transfer hydrogenation in cells
title_sort osmium(ii) tethered half-sandwich complexes: ph-dependent aqueous speciation and transfer hydrogenation in cells
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8278929/
https://www.ncbi.nlm.nih.gov/pubmed/34349898
http://dx.doi.org/10.1039/d1sc01939b
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