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Porous Silicon Nanoneedles Modulate Endocytosis to Deliver Biological Payloads

Owing to their ability to efficiently deliver biological cargo and sense the intracellular milieu, vertical arrays of high aspect ratio nanostructures, known as nanoneedles, are being developed as minimally invasive tools for cell manipulation. However, little is known of the mechanisms of cargo tra...

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Autores principales: Gopal, Sahana, Chiappini, Ciro, Penders, Jelle, Leonardo, Vincent, Seong, Hyejeong, Rothery, Stephen, Korchev, Yuri, Shevchuk, Andrew, Stevens, Molly M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6606440/
https://www.ncbi.nlm.nih.gov/pubmed/30680803
http://dx.doi.org/10.1002/adma.201806788
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author Gopal, Sahana
Chiappini, Ciro
Penders, Jelle
Leonardo, Vincent
Seong, Hyejeong
Rothery, Stephen
Korchev, Yuri
Shevchuk, Andrew
Stevens, Molly M.
author_facet Gopal, Sahana
Chiappini, Ciro
Penders, Jelle
Leonardo, Vincent
Seong, Hyejeong
Rothery, Stephen
Korchev, Yuri
Shevchuk, Andrew
Stevens, Molly M.
author_sort Gopal, Sahana
collection PubMed
description Owing to their ability to efficiently deliver biological cargo and sense the intracellular milieu, vertical arrays of high aspect ratio nanostructures, known as nanoneedles, are being developed as minimally invasive tools for cell manipulation. However, little is known of the mechanisms of cargo transfer across the cell membrane-nanoneedle interface. In particular, the contributions of membrane piercing, modulation of membrane permeability and endocytosis to cargo transfer remain largely unexplored. Here, combining state-of-the-art electron and scanning ion conductance microscopy with molecular biology techniques, it is shown that porous silicon nanoneedle arrays concurrently stimulate independent endocytic pathways which contribute to enhanced biomolecule delivery into human mesenchymal stem cells. Electron microscopy of the cell membrane at nanoneedle sites shows an intact lipid bilayer, accompanied by an accumulation of clathrin-coated pits and caveolae. Nanoneedles enhance the internalization of biomolecular markers of endocytosis, highlighting the concurrent activation of caveolae- and clathrin-mediated endocytosis, alongside macropinocytosis. These events contribute to the nanoneedle-mediated delivery (nanoinjection) of nucleic acids into human stem cells, which distribute across the cytosol and the endolysosomal system. This data extends the understanding of how nanoneedles modulate biological processes to mediate interaction with the intracellular space, providing indications for the rational design of improved cell-manipulation technologies.
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spelling pubmed-66064402019-07-02 Porous Silicon Nanoneedles Modulate Endocytosis to Deliver Biological Payloads Gopal, Sahana Chiappini, Ciro Penders, Jelle Leonardo, Vincent Seong, Hyejeong Rothery, Stephen Korchev, Yuri Shevchuk, Andrew Stevens, Molly M. Adv Mater Article Owing to their ability to efficiently deliver biological cargo and sense the intracellular milieu, vertical arrays of high aspect ratio nanostructures, known as nanoneedles, are being developed as minimally invasive tools for cell manipulation. However, little is known of the mechanisms of cargo transfer across the cell membrane-nanoneedle interface. In particular, the contributions of membrane piercing, modulation of membrane permeability and endocytosis to cargo transfer remain largely unexplored. Here, combining state-of-the-art electron and scanning ion conductance microscopy with molecular biology techniques, it is shown that porous silicon nanoneedle arrays concurrently stimulate independent endocytic pathways which contribute to enhanced biomolecule delivery into human mesenchymal stem cells. Electron microscopy of the cell membrane at nanoneedle sites shows an intact lipid bilayer, accompanied by an accumulation of clathrin-coated pits and caveolae. Nanoneedles enhance the internalization of biomolecular markers of endocytosis, highlighting the concurrent activation of caveolae- and clathrin-mediated endocytosis, alongside macropinocytosis. These events contribute to the nanoneedle-mediated delivery (nanoinjection) of nucleic acids into human stem cells, which distribute across the cytosol and the endolysosomal system. This data extends the understanding of how nanoneedles modulate biological processes to mediate interaction with the intracellular space, providing indications for the rational design of improved cell-manipulation technologies. 2019-03-01 2019-01-24 /pmc/articles/PMC6606440/ /pubmed/30680803 http://dx.doi.org/10.1002/adma.201806788 Text en https://creativecommons.org/licenses/by/4.0/ This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.(https://creativecommons.org/licenses/by/4.0/)
spellingShingle Article
Gopal, Sahana
Chiappini, Ciro
Penders, Jelle
Leonardo, Vincent
Seong, Hyejeong
Rothery, Stephen
Korchev, Yuri
Shevchuk, Andrew
Stevens, Molly M.
Porous Silicon Nanoneedles Modulate Endocytosis to Deliver Biological Payloads
title Porous Silicon Nanoneedles Modulate Endocytosis to Deliver Biological Payloads
title_full Porous Silicon Nanoneedles Modulate Endocytosis to Deliver Biological Payloads
title_fullStr Porous Silicon Nanoneedles Modulate Endocytosis to Deliver Biological Payloads
title_full_unstemmed Porous Silicon Nanoneedles Modulate Endocytosis to Deliver Biological Payloads
title_short Porous Silicon Nanoneedles Modulate Endocytosis to Deliver Biological Payloads
title_sort porous silicon nanoneedles modulate endocytosis to deliver biological payloads
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6606440/
https://www.ncbi.nlm.nih.gov/pubmed/30680803
http://dx.doi.org/10.1002/adma.201806788
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