Gold nanoparticles as a part of a photothermal therapy system.

Bibliographic Details
Main Author: Ferreira-Gonçalves, T.
Publication Date: 2021
Other Authors: Costa, E., Coelho, J. M. P., Gaspar, M. M., Ascenção, L., Faísca, P., Figueiredo, I.V., García-González, C.A., Ferreira, D., Ferreira, H., Reis, C.P.
Format: Conference object
Language: eng
Source: Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)
Download full: http://hdl.handle.net/10174/32001
Summary: Introduction Photothermal therapy (PTT) is attracting increased attention for the treatment of superficial localized tumors, relying on the induction of local hyperthermia of tumor cells upon their irradiation with light beams1. PTT efficacy depends, however, on the heat generated and, on the depth reached by the light. Some strategies to improve PTT efficacy includes the use of the near infrared (NIR, 650 to 900 nm) radiation to enhance the penetration depth of the light, combined with gold nanoparticles (AuNPs) to enhance the photothermal effect2. Experimental Methods Core AuNPs were synthesized by a novel method using tetrachloroauric acid and a mixture of reducing agents, and subsequently coated with a combination of hyaluronic and oleic acids, for improving the NPs biocompatibility, biodegradability, and lifetime. This coating also promotes the binding of specific cell receptors of the tumor cells. The particles were physico-chemically characterized, and in vitro and in vivo tests were carried out in breast cancer models to assess their safety and efficacy, when applied alone or combined with NIR irradiation3. Results and Discussion AuNPs presented a predominant spherical morphology with sizes under 350 nm, polydispersity index lower than 0.4 and enhanced absorbance in the NIR. The particles showed no toxicity in vitro and promising efficacy in vivo when administering the NPs in situ and later irradiating them externally. Histopathological analysis of tumors treated with both AuNPs and laser irradiation showed the presence of necrosis in most of the tumors and no effect or practically absence in healthy surrounding cells, which are very encouraging outcomes. Conclusion The results are promising, however, there is still room for improving the system, namely by reducing even more the invasiveness of the treatment through the combined use of aerogels structures. Aerogel’s unique properties4 make them ideal candidates to minimize the exposure of healthy tissues to laser radiation, acting as light and thermal insulators, as well as to incorporate the nanoparticles into their skeletal structure and thus potentiating a topical application of the particles. For these reasons, some exploratory methods were carried to produce and design aerogels structures for PTT applications.
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spelling Gold nanoparticles as a part of a photothermal therapy system.Gold nanoparticlesphotothermal therapyIntroduction Photothermal therapy (PTT) is attracting increased attention for the treatment of superficial localized tumors, relying on the induction of local hyperthermia of tumor cells upon their irradiation with light beams1. PTT efficacy depends, however, on the heat generated and, on the depth reached by the light. Some strategies to improve PTT efficacy includes the use of the near infrared (NIR, 650 to 900 nm) radiation to enhance the penetration depth of the light, combined with gold nanoparticles (AuNPs) to enhance the photothermal effect2. Experimental Methods Core AuNPs were synthesized by a novel method using tetrachloroauric acid and a mixture of reducing agents, and subsequently coated with a combination of hyaluronic and oleic acids, for improving the NPs biocompatibility, biodegradability, and lifetime. This coating also promotes the binding of specific cell receptors of the tumor cells. The particles were physico-chemically characterized, and in vitro and in vivo tests were carried out in breast cancer models to assess their safety and efficacy, when applied alone or combined with NIR irradiation3. Results and Discussion AuNPs presented a predominant spherical morphology with sizes under 350 nm, polydispersity index lower than 0.4 and enhanced absorbance in the NIR. The particles showed no toxicity in vitro and promising efficacy in vivo when administering the NPs in situ and later irradiating them externally. Histopathological analysis of tumors treated with both AuNPs and laser irradiation showed the presence of necrosis in most of the tumors and no effect or practically absence in healthy surrounding cells, which are very encouraging outcomes. Conclusion The results are promising, however, there is still room for improving the system, namely by reducing even more the invasiveness of the treatment through the combined use of aerogels structures. Aerogel’s unique properties4 make them ideal candidates to minimize the exposure of healthy tissues to laser radiation, acting as light and thermal insulators, as well as to incorporate the nanoparticles into their skeletal structure and thus potentiating a topical application of the particles. For these reasons, some exploratory methods were carried to produce and design aerogels structures for PTT applications.31st Conference of the European Society for Biomaterials2022-05-03T14:48:36Z2022-05-032021-09-09T00:00:00Zinfo:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/conferenceObjecthttp://hdl.handle.net/10174/32001http://hdl.handle.net/10174/32001engFerreira-Gonçalves T., Costa E., Coelho J.M.P., Gaspar M.M., Ascensão L., Faísca P. , Figueiredo I.V.V, Garcia-González C.A., Ferreira D., Ferreira H., Reis C.P. , (2021). Gold nanoparticles as a part of a photothermal therapy system.. 31st Conference of the European Society for Biomaterials and 43rd Annual Congress of the Iberian Society of Biomechanics and Biomaterials (fully virtual), 621-622https://eventclass.org/contxt_esb2021/scientific/online-program/sequential#e10naonaonaondndndndndndndnddavid.ferreira@uevora.ptndnd232Ferreira-Gonçalves, T.Costa, E.Coelho, J. M. P.Gaspar, M. M.Ascenção, L.Faísca, P.Figueiredo, I.V.García-González, C.A.Ferreira, D.Ferreira, H.Reis, C.P.info:eu-repo/semantics/openAccessreponame:Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)instname:Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informaçãoinstacron:RCAAP2024-01-03T19:32:12Zoai:dspace.uevora.pt:10174/32001Portal AgregadorONGhttps://www.rcaap.pt/oai/openaireopendoar:71602024-03-20T01:21:04.672377Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos) - Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informaçãofalse
dc.title.none.fl_str_mv Gold nanoparticles as a part of a photothermal therapy system.
title Gold nanoparticles as a part of a photothermal therapy system.
spellingShingle Gold nanoparticles as a part of a photothermal therapy system.
Ferreira-Gonçalves, T.
Gold nanoparticles
photothermal therapy
title_short Gold nanoparticles as a part of a photothermal therapy system.
title_full Gold nanoparticles as a part of a photothermal therapy system.
title_fullStr Gold nanoparticles as a part of a photothermal therapy system.
title_full_unstemmed Gold nanoparticles as a part of a photothermal therapy system.
title_sort Gold nanoparticles as a part of a photothermal therapy system.
author Ferreira-Gonçalves, T.
author_facet Ferreira-Gonçalves, T.
Costa, E.
Coelho, J. M. P.
Gaspar, M. M.
Ascenção, L.
Faísca, P.
Figueiredo, I.V.
García-González, C.A.
Ferreira, D.
Ferreira, H.
Reis, C.P.
author_role author
author2 Costa, E.
Coelho, J. M. P.
Gaspar, M. M.
Ascenção, L.
Faísca, P.
Figueiredo, I.V.
García-González, C.A.
Ferreira, D.
Ferreira, H.
Reis, C.P.
author2_role author
author
author
author
author
author
author
author
author
author
dc.contributor.author.fl_str_mv Ferreira-Gonçalves, T.
Costa, E.
Coelho, J. M. P.
Gaspar, M. M.
Ascenção, L.
Faísca, P.
Figueiredo, I.V.
García-González, C.A.
Ferreira, D.
Ferreira, H.
Reis, C.P.
dc.subject.por.fl_str_mv Gold nanoparticles
photothermal therapy
topic Gold nanoparticles
photothermal therapy
description Introduction Photothermal therapy (PTT) is attracting increased attention for the treatment of superficial localized tumors, relying on the induction of local hyperthermia of tumor cells upon their irradiation with light beams1. PTT efficacy depends, however, on the heat generated and, on the depth reached by the light. Some strategies to improve PTT efficacy includes the use of the near infrared (NIR, 650 to 900 nm) radiation to enhance the penetration depth of the light, combined with gold nanoparticles (AuNPs) to enhance the photothermal effect2. Experimental Methods Core AuNPs were synthesized by a novel method using tetrachloroauric acid and a mixture of reducing agents, and subsequently coated with a combination of hyaluronic and oleic acids, for improving the NPs biocompatibility, biodegradability, and lifetime. This coating also promotes the binding of specific cell receptors of the tumor cells. The particles were physico-chemically characterized, and in vitro and in vivo tests were carried out in breast cancer models to assess their safety and efficacy, when applied alone or combined with NIR irradiation3. Results and Discussion AuNPs presented a predominant spherical morphology with sizes under 350 nm, polydispersity index lower than 0.4 and enhanced absorbance in the NIR. The particles showed no toxicity in vitro and promising efficacy in vivo when administering the NPs in situ and later irradiating them externally. Histopathological analysis of tumors treated with both AuNPs and laser irradiation showed the presence of necrosis in most of the tumors and no effect or practically absence in healthy surrounding cells, which are very encouraging outcomes. Conclusion The results are promising, however, there is still room for improving the system, namely by reducing even more the invasiveness of the treatment through the combined use of aerogels structures. Aerogel’s unique properties4 make them ideal candidates to minimize the exposure of healthy tissues to laser radiation, acting as light and thermal insulators, as well as to incorporate the nanoparticles into their skeletal structure and thus potentiating a topical application of the particles. For these reasons, some exploratory methods were carried to produce and design aerogels structures for PTT applications.
publishDate 2021
dc.date.none.fl_str_mv 2021-09-09T00:00:00Z
2022-05-03T14:48:36Z
2022-05-03
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dc.relation.none.fl_str_mv Ferreira-Gonçalves T., Costa E., Coelho J.M.P., Gaspar M.M., Ascensão L., Faísca P. , Figueiredo I.V.V, Garcia-González C.A., Ferreira D., Ferreira H., Reis C.P. , (2021). Gold nanoparticles as a part of a photothermal therapy system.. 31st Conference of the European Society for Biomaterials and 43rd Annual Congress of the Iberian Society of Biomechanics and Biomaterials (fully virtual), 621-622
https://eventclass.org/contxt_esb2021/scientific/online-program/sequential#e10
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publisher.none.fl_str_mv 31st Conference of the European Society for Biomaterials
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