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In Cellulo Bioorthogonal Catalysis by Encapsulated AuPd Nanoalloys: Overcoming Intracellular Deactivation

[Image: see text] Bioorthogonal metallocatalysis has opened up a xenobiotic route to perform nonenzymatic catalytic transformations in living settings. Despite their promising features, most metals are deactivated inside cells by a myriad of reactive biomolecules, including biogenic thiols, thereby...

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Autores principales: Rubio-Ruiz, Belén, Pérez-López, Ana M., Uson, Laura, Ortega-Liebana, M. Carmen, Valero, Teresa, Arruebo, Manuel, Hueso, Jose L., Sebastian, Victor, Santamaria, Jesus, Unciti-Broceta, Asier
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9912372/
https://www.ncbi.nlm.nih.gov/pubmed/36648322
http://dx.doi.org/10.1021/acs.nanolett.2c03593
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author Rubio-Ruiz, Belén
Pérez-López, Ana M.
Uson, Laura
Ortega-Liebana, M. Carmen
Valero, Teresa
Arruebo, Manuel
Hueso, Jose L.
Sebastian, Victor
Santamaria, Jesus
Unciti-Broceta, Asier
author_facet Rubio-Ruiz, Belén
Pérez-López, Ana M.
Uson, Laura
Ortega-Liebana, M. Carmen
Valero, Teresa
Arruebo, Manuel
Hueso, Jose L.
Sebastian, Victor
Santamaria, Jesus
Unciti-Broceta, Asier
author_sort Rubio-Ruiz, Belén
collection PubMed
description [Image: see text] Bioorthogonal metallocatalysis has opened up a xenobiotic route to perform nonenzymatic catalytic transformations in living settings. Despite their promising features, most metals are deactivated inside cells by a myriad of reactive biomolecules, including biogenic thiols, thereby limiting the catalytic functioning of these abiotic reagents. Here we report the development of cytocompatible alloyed AuPd nanoparticles with the capacity to elicit bioorthogonal depropargylations with high efficiency in biological media. We also show that the intracellular catalytic performance of these nanoalloys is significantly enhanced by protecting them following two different encapsulation methods. Encapsulation in mesoporous silica nanorods resulted in augmented catalyst reactivity, whereas the use of a biodegradable PLGA matrix increased nanoalloy delivery across the cell membrane. The functional potential of encapsulated AuPd was demonstrated by releasing the potent chemotherapy drug paclitaxel inside cancer cells. Nanoalloy encapsulation provides a novel methodology to develop nanoreactors capable of mediating new-to-life reactions in cells.
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spelling pubmed-99123722023-02-11 In Cellulo Bioorthogonal Catalysis by Encapsulated AuPd Nanoalloys: Overcoming Intracellular Deactivation Rubio-Ruiz, Belén Pérez-López, Ana M. Uson, Laura Ortega-Liebana, M. Carmen Valero, Teresa Arruebo, Manuel Hueso, Jose L. Sebastian, Victor Santamaria, Jesus Unciti-Broceta, Asier Nano Lett [Image: see text] Bioorthogonal metallocatalysis has opened up a xenobiotic route to perform nonenzymatic catalytic transformations in living settings. Despite their promising features, most metals are deactivated inside cells by a myriad of reactive biomolecules, including biogenic thiols, thereby limiting the catalytic functioning of these abiotic reagents. Here we report the development of cytocompatible alloyed AuPd nanoparticles with the capacity to elicit bioorthogonal depropargylations with high efficiency in biological media. We also show that the intracellular catalytic performance of these nanoalloys is significantly enhanced by protecting them following two different encapsulation methods. Encapsulation in mesoporous silica nanorods resulted in augmented catalyst reactivity, whereas the use of a biodegradable PLGA matrix increased nanoalloy delivery across the cell membrane. The functional potential of encapsulated AuPd was demonstrated by releasing the potent chemotherapy drug paclitaxel inside cancer cells. Nanoalloy encapsulation provides a novel methodology to develop nanoreactors capable of mediating new-to-life reactions in cells. American Chemical Society 2023-01-17 /pmc/articles/PMC9912372/ /pubmed/36648322 http://dx.doi.org/10.1021/acs.nanolett.2c03593 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Rubio-Ruiz, Belén
Pérez-López, Ana M.
Uson, Laura
Ortega-Liebana, M. Carmen
Valero, Teresa
Arruebo, Manuel
Hueso, Jose L.
Sebastian, Victor
Santamaria, Jesus
Unciti-Broceta, Asier
In Cellulo Bioorthogonal Catalysis by Encapsulated AuPd Nanoalloys: Overcoming Intracellular Deactivation
title In Cellulo Bioorthogonal Catalysis by Encapsulated AuPd Nanoalloys: Overcoming Intracellular Deactivation
title_full In Cellulo Bioorthogonal Catalysis by Encapsulated AuPd Nanoalloys: Overcoming Intracellular Deactivation
title_fullStr In Cellulo Bioorthogonal Catalysis by Encapsulated AuPd Nanoalloys: Overcoming Intracellular Deactivation
title_full_unstemmed In Cellulo Bioorthogonal Catalysis by Encapsulated AuPd Nanoalloys: Overcoming Intracellular Deactivation
title_short In Cellulo Bioorthogonal Catalysis by Encapsulated AuPd Nanoalloys: Overcoming Intracellular Deactivation
title_sort in cellulo bioorthogonal catalysis by encapsulated aupd nanoalloys: overcoming intracellular deactivation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9912372/
https://www.ncbi.nlm.nih.gov/pubmed/36648322
http://dx.doi.org/10.1021/acs.nanolett.2c03593
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