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Enhancing Passive Transport of Micro/Nano Particles into Cells by Oxidized Carbon Black

[Image: see text] Uses of micro-/nano-sized particles to deliver biologically active entities into cells are common for medical therapeutics and prophylactics and also for cellular experiments. Enhancing cellular uptake and avoiding destruction by lysosomes are desirable for general particulate drug...

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Autores principales: Amornwachirabodee, Kittima, Khramchantuk, Supaporn, Pienpinijtham, Prompong, Israsena, Nipan, Palaga, Tanapat, Wanichwecharungruang, Supason
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6044846/
https://www.ncbi.nlm.nih.gov/pubmed/30023963
http://dx.doi.org/10.1021/acsomega.8b00487
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author Amornwachirabodee, Kittima
Khramchantuk, Supaporn
Pienpinijtham, Prompong
Israsena, Nipan
Palaga, Tanapat
Wanichwecharungruang, Supason
author_facet Amornwachirabodee, Kittima
Khramchantuk, Supaporn
Pienpinijtham, Prompong
Israsena, Nipan
Palaga, Tanapat
Wanichwecharungruang, Supason
author_sort Amornwachirabodee, Kittima
collection PubMed
description [Image: see text] Uses of micro-/nano-sized particles to deliver biologically active entities into cells are common for medical therapeutics and prophylactics and also for cellular experiments. Enhancing cellular uptake and avoiding destruction by lysosomes are desirable for general particulate drug delivery systems. Here, we show that the relatively nontoxic, negatively charged oxidized carbon black particles (OCBs) can enhance cellular penetration of micro- and nano-particles. Experiments with retinal-grafted chitosan particles (PRPs) with hydrodynamic sizes of 1200 ± 51.5, 540 ± 29.0, and 430 ± 11.0 nm (three-sized model particles) indicate that only the sub-micron-sized particles can penetrate the first layer of multilayered liposomes. However, in the presence of OCBs, the micron-sized PRPs and the two submicron-sized PRPs can rapidly enter the interiors of all layers of the multilayered liposomes. Very low cellular uptakes of micro- and submicron-sized PRPs into keratinocytes cells are usually observed. However, in the presence of OCBs, faster and higher cellular uptakes of all of the three-sized PRPs are clearly noticed. Intracellular traffic monitoring of PRP uptake into HepG2 cells in the presence of OCBs revealed that the PRPs did not co-localize with endosomes, suggesting a nonendocytic uptake process. This demonstration of OCB’s ability to enhance cellular uptake of micro- and submicron-particles should open up an easy strategy to effectively send various carriers into cells.
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spelling pubmed-60448462018-07-16 Enhancing Passive Transport of Micro/Nano Particles into Cells by Oxidized Carbon Black Amornwachirabodee, Kittima Khramchantuk, Supaporn Pienpinijtham, Prompong Israsena, Nipan Palaga, Tanapat Wanichwecharungruang, Supason ACS Omega [Image: see text] Uses of micro-/nano-sized particles to deliver biologically active entities into cells are common for medical therapeutics and prophylactics and also for cellular experiments. Enhancing cellular uptake and avoiding destruction by lysosomes are desirable for general particulate drug delivery systems. Here, we show that the relatively nontoxic, negatively charged oxidized carbon black particles (OCBs) can enhance cellular penetration of micro- and nano-particles. Experiments with retinal-grafted chitosan particles (PRPs) with hydrodynamic sizes of 1200 ± 51.5, 540 ± 29.0, and 430 ± 11.0 nm (three-sized model particles) indicate that only the sub-micron-sized particles can penetrate the first layer of multilayered liposomes. However, in the presence of OCBs, the micron-sized PRPs and the two submicron-sized PRPs can rapidly enter the interiors of all layers of the multilayered liposomes. Very low cellular uptakes of micro- and submicron-sized PRPs into keratinocytes cells are usually observed. However, in the presence of OCBs, faster and higher cellular uptakes of all of the three-sized PRPs are clearly noticed. Intracellular traffic monitoring of PRP uptake into HepG2 cells in the presence of OCBs revealed that the PRPs did not co-localize with endosomes, suggesting a nonendocytic uptake process. This demonstration of OCB’s ability to enhance cellular uptake of micro- and submicron-particles should open up an easy strategy to effectively send various carriers into cells. American Chemical Society 2018-06-25 /pmc/articles/PMC6044846/ /pubmed/30023963 http://dx.doi.org/10.1021/acsomega.8b00487 Text en Copyright © 2018 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Amornwachirabodee, Kittima
Khramchantuk, Supaporn
Pienpinijtham, Prompong
Israsena, Nipan
Palaga, Tanapat
Wanichwecharungruang, Supason
Enhancing Passive Transport of Micro/Nano Particles into Cells by Oxidized Carbon Black
title Enhancing Passive Transport of Micro/Nano Particles into Cells by Oxidized Carbon Black
title_full Enhancing Passive Transport of Micro/Nano Particles into Cells by Oxidized Carbon Black
title_fullStr Enhancing Passive Transport of Micro/Nano Particles into Cells by Oxidized Carbon Black
title_full_unstemmed Enhancing Passive Transport of Micro/Nano Particles into Cells by Oxidized Carbon Black
title_short Enhancing Passive Transport of Micro/Nano Particles into Cells by Oxidized Carbon Black
title_sort enhancing passive transport of micro/nano particles into cells by oxidized carbon black
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6044846/
https://www.ncbi.nlm.nih.gov/pubmed/30023963
http://dx.doi.org/10.1021/acsomega.8b00487
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