Mild hyperthermia via gold nanoparticles and visible light irradiation for enhanced siRNA and ASO delivery in 2D and 3D tumour spheroids

Abstract Background The delivery of therapeutic nucleic acids, such as small interfering RNA (siRNA) and antisense oligonucleotides (ASO) into cells, is widely used in gene therapy. Gold nanoparticles (AuNPs) have proved to be effective in delivering silencing moieties with high efficacy. Moreover,...

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Main Authors: Daniela Ferreira, Alexandra R. Fernandes, Pedro V. Baptista
Format: Article
Language:English
Published: BMC 2024-03-01
Series:Cancer Nanotechnology
Subjects:
Online Access:https://doi.org/10.1186/s12645-024-00256-4
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author Daniela Ferreira
Alexandra R. Fernandes
Pedro V. Baptista
author_facet Daniela Ferreira
Alexandra R. Fernandes
Pedro V. Baptista
author_sort Daniela Ferreira
collection DOAJ
description Abstract Background The delivery of therapeutic nucleic acids, such as small interfering RNA (siRNA) and antisense oligonucleotides (ASO) into cells, is widely used in gene therapy. Gold nanoparticles (AuNPs) have proved to be effective in delivering silencing moieties with high efficacy. Moreover, AuNPs offer the possibility of spatial–temporal triggering of cell uptake through light irradiation due to their unique optical properties. Our study focuses on the use of AuNPs as improved vectorisation agents through mild photothermy triggered by visible light irradiation. This method promotes the transfection of oligonucleotides for gene silencing in 2D cells and more complex 3D spheroids. Results Improving gene silencing strategies in 3D cell cultures is crucial since it provides more effective in vitro models to study cellular responses that closely resemble the in vivo tumour microenvironment. We demonstrate the potential of mild photothermy by effectively silencing the GFP gene in 2D cell cultures: HCT116 and MCF-7. Then we showed that mild photothermy could be effectively used for silencing the c-MYC oncogene transcript, which is greatly overexpressed in cancer cells. A decrease of 25% and 30% in c-MYC expression was observed in HCT116 2D cells and 7-day 3D spheroids, respectively. Conclusions In summary, our findings offer a novel transfection approach for gene therapy applications in 2D and 3D tumour models. This approach is based on the use of mild photothermy mediated by AuNPs combined with visible laser irradiation that might pave the way for the spatial–temporal control of gene modulation.
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spelling doaj.art-7d4c069a376c45f1806b063c1c12eba42024-03-24T12:10:29ZengBMCCancer Nanotechnology1868-69581868-69662024-03-0115112210.1186/s12645-024-00256-4Mild hyperthermia via gold nanoparticles and visible light irradiation for enhanced siRNA and ASO delivery in 2D and 3D tumour spheroidsDaniela Ferreira0Alexandra R. Fernandes1Pedro V. Baptista2Associate Laboratory i4HB—Institute for Health and Bioeconomy, NOVA School of Science and Technology, NOVA University LisbonAssociate Laboratory i4HB—Institute for Health and Bioeconomy, NOVA School of Science and Technology, NOVA University LisbonAssociate Laboratory i4HB—Institute for Health and Bioeconomy, NOVA School of Science and Technology, NOVA University LisbonAbstract Background The delivery of therapeutic nucleic acids, such as small interfering RNA (siRNA) and antisense oligonucleotides (ASO) into cells, is widely used in gene therapy. Gold nanoparticles (AuNPs) have proved to be effective in delivering silencing moieties with high efficacy. Moreover, AuNPs offer the possibility of spatial–temporal triggering of cell uptake through light irradiation due to their unique optical properties. Our study focuses on the use of AuNPs as improved vectorisation agents through mild photothermy triggered by visible light irradiation. This method promotes the transfection of oligonucleotides for gene silencing in 2D cells and more complex 3D spheroids. Results Improving gene silencing strategies in 3D cell cultures is crucial since it provides more effective in vitro models to study cellular responses that closely resemble the in vivo tumour microenvironment. We demonstrate the potential of mild photothermy by effectively silencing the GFP gene in 2D cell cultures: HCT116 and MCF-7. Then we showed that mild photothermy could be effectively used for silencing the c-MYC oncogene transcript, which is greatly overexpressed in cancer cells. A decrease of 25% and 30% in c-MYC expression was observed in HCT116 2D cells and 7-day 3D spheroids, respectively. Conclusions In summary, our findings offer a novel transfection approach for gene therapy applications in 2D and 3D tumour models. This approach is based on the use of mild photothermy mediated by AuNPs combined with visible laser irradiation that might pave the way for the spatial–temporal control of gene modulation.https://doi.org/10.1186/s12645-024-00256-4Mild hyperthermyGold nanoparticlesGene silencingLaser irradiationTherapeutic nucleic acids transfection3D tumour spheroids
spellingShingle Daniela Ferreira
Alexandra R. Fernandes
Pedro V. Baptista
Mild hyperthermia via gold nanoparticles and visible light irradiation for enhanced siRNA and ASO delivery in 2D and 3D tumour spheroids
Cancer Nanotechnology
Mild hyperthermy
Gold nanoparticles
Gene silencing
Laser irradiation
Therapeutic nucleic acids transfection
3D tumour spheroids
title Mild hyperthermia via gold nanoparticles and visible light irradiation for enhanced siRNA and ASO delivery in 2D and 3D tumour spheroids
title_full Mild hyperthermia via gold nanoparticles and visible light irradiation for enhanced siRNA and ASO delivery in 2D and 3D tumour spheroids
title_fullStr Mild hyperthermia via gold nanoparticles and visible light irradiation for enhanced siRNA and ASO delivery in 2D and 3D tumour spheroids
title_full_unstemmed Mild hyperthermia via gold nanoparticles and visible light irradiation for enhanced siRNA and ASO delivery in 2D and 3D tumour spheroids
title_short Mild hyperthermia via gold nanoparticles and visible light irradiation for enhanced siRNA and ASO delivery in 2D and 3D tumour spheroids
title_sort mild hyperthermia via gold nanoparticles and visible light irradiation for enhanced sirna and aso delivery in 2d and 3d tumour spheroids
topic Mild hyperthermy
Gold nanoparticles
Gene silencing
Laser irradiation
Therapeutic nucleic acids transfection
3D tumour spheroids
url https://doi.org/10.1186/s12645-024-00256-4
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