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Silencing of proinflammatory NF-κB and inhibition of herpes simplex virus (HSV) replication by ultrasmall gold nanoparticles (2 nm) conjugated with small-interfering RNA

Azide-terminated ultrasmall gold nanoparticles (2 nm gold core) were covalently functionalized with alkyne-terminated small-interfering siRNA duplexes by copper-catalyzed azide–alkyne cycloaddition (CuAAC; click chemistry). The nanoparticle core was visualized by transmission electron microscopy. Th...

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Autores principales: Wolff, Natalie, Kollenda, Sebastian, Klein, Kai, Loza, Kateryna, Heggen, Marc, Brochhagen, Leonie, Witzke, Oliver, Krawczyk, Adalbert, Hilger, Ingrid, Epple, Matthias
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9595109/
https://www.ncbi.nlm.nih.gov/pubmed/36341304
http://dx.doi.org/10.1039/d2na00250g
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author Wolff, Natalie
Kollenda, Sebastian
Klein, Kai
Loza, Kateryna
Heggen, Marc
Brochhagen, Leonie
Witzke, Oliver
Krawczyk, Adalbert
Hilger, Ingrid
Epple, Matthias
author_facet Wolff, Natalie
Kollenda, Sebastian
Klein, Kai
Loza, Kateryna
Heggen, Marc
Brochhagen, Leonie
Witzke, Oliver
Krawczyk, Adalbert
Hilger, Ingrid
Epple, Matthias
author_sort Wolff, Natalie
collection PubMed
description Azide-terminated ultrasmall gold nanoparticles (2 nm gold core) were covalently functionalized with alkyne-terminated small-interfering siRNA duplexes by copper-catalyzed azide–alkyne cycloaddition (CuAAC; click chemistry). The nanoparticle core was visualized by transmission electron microscopy. The number of attached siRNA molecules per nanoparticle was determined by a combination of atomic absorption spectroscopy (AAS; for gold) and UV-Vis spectroscopy (for siRNA). Each nanoparticle carried between 6 and 10 siRNA duplex molecules which corresponds to a weight ratio of siRNA to gold of about 2.2 : 1. Different kinds of siRNA were conjugated to the nanoparticles, depending on the gene to be silenced. In general, the nanoparticles were readily taken up by cells and highly efficient in gene silencing, in contrast to free siRNA. This was demonstrated in HeLa-eGFP cells (silencing of eGFP) and in LPS-stimulated macrophages (silencing of NF-κB). Furthermore, we demonstrated that nanoparticles carrying antiviral siRNA potently inhibited the replication of Herpes simplex virus 2 (HSV-2) in vitro. This highlights the strong potential of siRNA-functionalized ultrasmall gold nanoparticles in a broad spectrum of applications, including gene silencing and treatment of viral infections, combined with a minimal dose of gold.
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spelling pubmed-95951092022-11-04 Silencing of proinflammatory NF-κB and inhibition of herpes simplex virus (HSV) replication by ultrasmall gold nanoparticles (2 nm) conjugated with small-interfering RNA Wolff, Natalie Kollenda, Sebastian Klein, Kai Loza, Kateryna Heggen, Marc Brochhagen, Leonie Witzke, Oliver Krawczyk, Adalbert Hilger, Ingrid Epple, Matthias Nanoscale Adv Chemistry Azide-terminated ultrasmall gold nanoparticles (2 nm gold core) were covalently functionalized with alkyne-terminated small-interfering siRNA duplexes by copper-catalyzed azide–alkyne cycloaddition (CuAAC; click chemistry). The nanoparticle core was visualized by transmission electron microscopy. The number of attached siRNA molecules per nanoparticle was determined by a combination of atomic absorption spectroscopy (AAS; for gold) and UV-Vis spectroscopy (for siRNA). Each nanoparticle carried between 6 and 10 siRNA duplex molecules which corresponds to a weight ratio of siRNA to gold of about 2.2 : 1. Different kinds of siRNA were conjugated to the nanoparticles, depending on the gene to be silenced. In general, the nanoparticles were readily taken up by cells and highly efficient in gene silencing, in contrast to free siRNA. This was demonstrated in HeLa-eGFP cells (silencing of eGFP) and in LPS-stimulated macrophages (silencing of NF-κB). Furthermore, we demonstrated that nanoparticles carrying antiviral siRNA potently inhibited the replication of Herpes simplex virus 2 (HSV-2) in vitro. This highlights the strong potential of siRNA-functionalized ultrasmall gold nanoparticles in a broad spectrum of applications, including gene silencing and treatment of viral infections, combined with a minimal dose of gold. RSC 2022-09-05 /pmc/articles/PMC9595109/ /pubmed/36341304 http://dx.doi.org/10.1039/d2na00250g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wolff, Natalie
Kollenda, Sebastian
Klein, Kai
Loza, Kateryna
Heggen, Marc
Brochhagen, Leonie
Witzke, Oliver
Krawczyk, Adalbert
Hilger, Ingrid
Epple, Matthias
Silencing of proinflammatory NF-κB and inhibition of herpes simplex virus (HSV) replication by ultrasmall gold nanoparticles (2 nm) conjugated with small-interfering RNA
title Silencing of proinflammatory NF-κB and inhibition of herpes simplex virus (HSV) replication by ultrasmall gold nanoparticles (2 nm) conjugated with small-interfering RNA
title_full Silencing of proinflammatory NF-κB and inhibition of herpes simplex virus (HSV) replication by ultrasmall gold nanoparticles (2 nm) conjugated with small-interfering RNA
title_fullStr Silencing of proinflammatory NF-κB and inhibition of herpes simplex virus (HSV) replication by ultrasmall gold nanoparticles (2 nm) conjugated with small-interfering RNA
title_full_unstemmed Silencing of proinflammatory NF-κB and inhibition of herpes simplex virus (HSV) replication by ultrasmall gold nanoparticles (2 nm) conjugated with small-interfering RNA
title_short Silencing of proinflammatory NF-κB and inhibition of herpes simplex virus (HSV) replication by ultrasmall gold nanoparticles (2 nm) conjugated with small-interfering RNA
title_sort silencing of proinflammatory nf-κb and inhibition of herpes simplex virus (hsv) replication by ultrasmall gold nanoparticles (2 nm) conjugated with small-interfering rna
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9595109/
https://www.ncbi.nlm.nih.gov/pubmed/36341304
http://dx.doi.org/10.1039/d2na00250g
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