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Main Authors: Barbieri, Valentino, González-Colsa, Javier, Matias, Diana, Duro-Castano, Aroa, Thapa, Anshu, Ruiz-Perez, Lorena, Albella, Pablo, Volpe, Giorgio, Battaglia, Giuseppe
Format: Preprint
Published: 2023
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Online Access:https://arxiv.org/abs/2307.16165
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author Barbieri, Valentino
González-Colsa, Javier
Matias, Diana
Duro-Castano, Aroa
Thapa, Anshu
Ruiz-Perez, Lorena
Albella, Pablo
Volpe, Giorgio
Battaglia, Giuseppe
author_facet Barbieri, Valentino
González-Colsa, Javier
Matias, Diana
Duro-Castano, Aroa
Thapa, Anshu
Ruiz-Perez, Lorena
Albella, Pablo
Volpe, Giorgio
Battaglia, Giuseppe
contents Polymersomes, vesicles self-assembled from amphiphilic polymers, are promising nanocarriers for the targeted intracellular delivery of therapeutics. Integrating inorganic light-absorbing materials with plasmonic properties, such as gold, into their membrane by in situ synthesis is a stepping stone to enable their use for photothermal therapy. Yet, it still needs to be determined whether the in situ synthesis of gold can produce polymersomes with thermoplasmonic properties without altering their morphology, stability, and nanocarrier functionality. Here we demonstrate that small gold nanoparticles can be controllably nucleated within biocompatible block-copolymer membranes to design hybrid polymersomes with a noteworthy thermoplasmonic response. The cumulative absorption of individual 2 nm gold nanoparticles can induce temperature increases in 10 K in dilute suspensions of hybrid polymersomes upon laser illumination. Furthermore, we develop a theoretical model to rationalize our observations and predict the thermoplasmonic response of our hybrid polymersomes. We finally demonstrate in vitro photothermal therapy of cancer cells, enhanced by the receptor-mediated endocytosis of our hybrid polymersomes. We envision that our nanotechnological platform can be translated to phenotypic cell targeting to precisely deliver effective photothermal agents.
format Preprint
id arxiv_https___arxiv_org_abs_2307_16165
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Designing thermoplasmonic polymersomes for photothermal therapy
Barbieri, Valentino
González-Colsa, Javier
Matias, Diana
Duro-Castano, Aroa
Thapa, Anshu
Ruiz-Perez, Lorena
Albella, Pablo
Volpe, Giorgio
Battaglia, Giuseppe
Soft Condensed Matter
Materials Science
Biological Physics
Polymersomes, vesicles self-assembled from amphiphilic polymers, are promising nanocarriers for the targeted intracellular delivery of therapeutics. Integrating inorganic light-absorbing materials with plasmonic properties, such as gold, into their membrane by in situ synthesis is a stepping stone to enable their use for photothermal therapy. Yet, it still needs to be determined whether the in situ synthesis of gold can produce polymersomes with thermoplasmonic properties without altering their morphology, stability, and nanocarrier functionality. Here we demonstrate that small gold nanoparticles can be controllably nucleated within biocompatible block-copolymer membranes to design hybrid polymersomes with a noteworthy thermoplasmonic response. The cumulative absorption of individual 2 nm gold nanoparticles can induce temperature increases in 10 K in dilute suspensions of hybrid polymersomes upon laser illumination. Furthermore, we develop a theoretical model to rationalize our observations and predict the thermoplasmonic response of our hybrid polymersomes. We finally demonstrate in vitro photothermal therapy of cancer cells, enhanced by the receptor-mediated endocytosis of our hybrid polymersomes. We envision that our nanotechnological platform can be translated to phenotypic cell targeting to precisely deliver effective photothermal agents.
title Designing thermoplasmonic polymersomes for photothermal therapy
topic Soft Condensed Matter
Materials Science
Biological Physics
url https://arxiv.org/abs/2307.16165