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Water stable, red emitting, carbon nanoparticles stimulate 3D cell invasion via clathrin-mediated endocytic uptake

Bright fluorescent nanoparticles with excitation and emission towards the red end of the spectrum are highly desirable in the field of bioimaging. We present here a new class of organic carbon-based nanoparticles (CNPs) with a robust quantum yield and fluorescence towards the red region of the spect...

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Autores principales: Singh, Udisha, Teja, Aditya Guduru, Walia, Shanka, Vaswani, Payal, Dalvi, Sameer, Bhatia, Dhiraj
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418831/
https://www.ncbi.nlm.nih.gov/pubmed/36133687
http://dx.doi.org/10.1039/d1na00813g
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author Singh, Udisha
Teja, Aditya Guduru
Walia, Shanka
Vaswani, Payal
Dalvi, Sameer
Bhatia, Dhiraj
author_facet Singh, Udisha
Teja, Aditya Guduru
Walia, Shanka
Vaswani, Payal
Dalvi, Sameer
Bhatia, Dhiraj
author_sort Singh, Udisha
collection PubMed
description Bright fluorescent nanoparticles with excitation and emission towards the red end of the spectrum are highly desirable in the field of bioimaging. We present here a new class of organic carbon-based nanoparticles (CNPs) with a robust quantum yield and fluorescence towards the red region of the spectrum. Using organic substrates such as para-phenylenediamine (PPDA) dispersed in diphenyl ether under reflux conditions, we achieved scalable amounts of CNPs with an average size of 27 nm. These CNPs were readily taken up by different mammalian cells, and we show that they prefer clathrin-mediated endocytosis for their cellular entry route. Not only can these CNPs be specifically taken up by cells, but they also stimulate cellular processes such as cell invasion from 3D spheroid models. This new class of CNPs, which have sizes similar to those of proteinaceous ligands, hold immense potential for their surface functionalization. These could be explored as promising bioimaging agents for biomedical imaging and intracellular drug delivery.
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spelling pubmed-94188312022-09-20 Water stable, red emitting, carbon nanoparticles stimulate 3D cell invasion via clathrin-mediated endocytic uptake Singh, Udisha Teja, Aditya Guduru Walia, Shanka Vaswani, Payal Dalvi, Sameer Bhatia, Dhiraj Nanoscale Adv Chemistry Bright fluorescent nanoparticles with excitation and emission towards the red end of the spectrum are highly desirable in the field of bioimaging. We present here a new class of organic carbon-based nanoparticles (CNPs) with a robust quantum yield and fluorescence towards the red region of the spectrum. Using organic substrates such as para-phenylenediamine (PPDA) dispersed in diphenyl ether under reflux conditions, we achieved scalable amounts of CNPs with an average size of 27 nm. These CNPs were readily taken up by different mammalian cells, and we show that they prefer clathrin-mediated endocytosis for their cellular entry route. Not only can these CNPs be specifically taken up by cells, but they also stimulate cellular processes such as cell invasion from 3D spheroid models. This new class of CNPs, which have sizes similar to those of proteinaceous ligands, hold immense potential for their surface functionalization. These could be explored as promising bioimaging agents for biomedical imaging and intracellular drug delivery. RSC 2022-01-26 /pmc/articles/PMC9418831/ /pubmed/36133687 http://dx.doi.org/10.1039/d1na00813g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Singh, Udisha
Teja, Aditya Guduru
Walia, Shanka
Vaswani, Payal
Dalvi, Sameer
Bhatia, Dhiraj
Water stable, red emitting, carbon nanoparticles stimulate 3D cell invasion via clathrin-mediated endocytic uptake
title Water stable, red emitting, carbon nanoparticles stimulate 3D cell invasion via clathrin-mediated endocytic uptake
title_full Water stable, red emitting, carbon nanoparticles stimulate 3D cell invasion via clathrin-mediated endocytic uptake
title_fullStr Water stable, red emitting, carbon nanoparticles stimulate 3D cell invasion via clathrin-mediated endocytic uptake
title_full_unstemmed Water stable, red emitting, carbon nanoparticles stimulate 3D cell invasion via clathrin-mediated endocytic uptake
title_short Water stable, red emitting, carbon nanoparticles stimulate 3D cell invasion via clathrin-mediated endocytic uptake
title_sort water stable, red emitting, carbon nanoparticles stimulate 3d cell invasion via clathrin-mediated endocytic uptake
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418831/
https://www.ncbi.nlm.nih.gov/pubmed/36133687
http://dx.doi.org/10.1039/d1na00813g
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