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Acidic Nanoparticles Are Trafficked to Lysosomes and Restore an Acidic Lysosomal pH and Degradative Function to Compromised ARPE-19 Cells

Lysosomal enzymes function optimally in acidic environments, and elevation of lysosomal pH can impede their ability to degrade material delivered to lysosomes through autophagy or phagocytosis. We hypothesize that abnormal lysosomal pH is a key aspect in diseases of accumulation and that restoring l...

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Autores principales: Baltazar, Gabriel C., Guha, Sonia, Lu, Wennan, Lim, Jason, Boesze-Battaglia, Kathleen, Laties, Alan M., Tyagi, Puneet, Kompella, Uday B., Mitchell, Claire H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3525582/
https://www.ncbi.nlm.nih.gov/pubmed/23272048
http://dx.doi.org/10.1371/journal.pone.0049635
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author Baltazar, Gabriel C.
Guha, Sonia
Lu, Wennan
Lim, Jason
Boesze-Battaglia, Kathleen
Laties, Alan M.
Tyagi, Puneet
Kompella, Uday B.
Mitchell, Claire H.
author_facet Baltazar, Gabriel C.
Guha, Sonia
Lu, Wennan
Lim, Jason
Boesze-Battaglia, Kathleen
Laties, Alan M.
Tyagi, Puneet
Kompella, Uday B.
Mitchell, Claire H.
author_sort Baltazar, Gabriel C.
collection PubMed
description Lysosomal enzymes function optimally in acidic environments, and elevation of lysosomal pH can impede their ability to degrade material delivered to lysosomes through autophagy or phagocytosis. We hypothesize that abnormal lysosomal pH is a key aspect in diseases of accumulation and that restoring lysosomal pH will improve cell function. The propensity of nanoparticles to end up in the lysosome makes them an ideal method of delivering drugs to lysosomes. This study asked whether acidic nanoparticles could traffic to lysosomes, lower lysosomal pH and enhance lysosomal degradation by the cultured human retinal pigmented epithelial cell line ARPE-19. Acidic nanoparticles composed of poly (DL-lactide-co-glycolide) (PLGA) 502 H, PLGA 503 H and poly (DL-lactide) (PLA) colocalized to lysosomes of ARPE-19 cells within 60 min. PLGA 503 H and PLA lowered lysosomal pH in cells compromised by the alkalinizing agent chloroquine when measured 1 hr. after treatment, with acidification still observed 12 days later. PLA enhanced binding of Bodipy-pepstatin-A to the active site of cathepsin D in compromised cells. PLA also reduced the cellular levels of opsin and the lipofuscin-like autofluorescence associated with photoreceptor outer segments. These observations suggest the acidification produced by the nanoparticles was functionally effective. In summary, acid nanoparticles lead to a rapid and sustained lowering of lysosomal pH and improved degradative activity.
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spelling pubmed-35255822012-12-27 Acidic Nanoparticles Are Trafficked to Lysosomes and Restore an Acidic Lysosomal pH and Degradative Function to Compromised ARPE-19 Cells Baltazar, Gabriel C. Guha, Sonia Lu, Wennan Lim, Jason Boesze-Battaglia, Kathleen Laties, Alan M. Tyagi, Puneet Kompella, Uday B. Mitchell, Claire H. PLoS One Research Article Lysosomal enzymes function optimally in acidic environments, and elevation of lysosomal pH can impede their ability to degrade material delivered to lysosomes through autophagy or phagocytosis. We hypothesize that abnormal lysosomal pH is a key aspect in diseases of accumulation and that restoring lysosomal pH will improve cell function. The propensity of nanoparticles to end up in the lysosome makes them an ideal method of delivering drugs to lysosomes. This study asked whether acidic nanoparticles could traffic to lysosomes, lower lysosomal pH and enhance lysosomal degradation by the cultured human retinal pigmented epithelial cell line ARPE-19. Acidic nanoparticles composed of poly (DL-lactide-co-glycolide) (PLGA) 502 H, PLGA 503 H and poly (DL-lactide) (PLA) colocalized to lysosomes of ARPE-19 cells within 60 min. PLGA 503 H and PLA lowered lysosomal pH in cells compromised by the alkalinizing agent chloroquine when measured 1 hr. after treatment, with acidification still observed 12 days later. PLA enhanced binding of Bodipy-pepstatin-A to the active site of cathepsin D in compromised cells. PLA also reduced the cellular levels of opsin and the lipofuscin-like autofluorescence associated with photoreceptor outer segments. These observations suggest the acidification produced by the nanoparticles was functionally effective. In summary, acid nanoparticles lead to a rapid and sustained lowering of lysosomal pH and improved degradative activity. Public Library of Science 2012-12-18 /pmc/articles/PMC3525582/ /pubmed/23272048 http://dx.doi.org/10.1371/journal.pone.0049635 Text en © 2012 Baltazar et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Baltazar, Gabriel C.
Guha, Sonia
Lu, Wennan
Lim, Jason
Boesze-Battaglia, Kathleen
Laties, Alan M.
Tyagi, Puneet
Kompella, Uday B.
Mitchell, Claire H.
Acidic Nanoparticles Are Trafficked to Lysosomes and Restore an Acidic Lysosomal pH and Degradative Function to Compromised ARPE-19 Cells
title Acidic Nanoparticles Are Trafficked to Lysosomes and Restore an Acidic Lysosomal pH and Degradative Function to Compromised ARPE-19 Cells
title_full Acidic Nanoparticles Are Trafficked to Lysosomes and Restore an Acidic Lysosomal pH and Degradative Function to Compromised ARPE-19 Cells
title_fullStr Acidic Nanoparticles Are Trafficked to Lysosomes and Restore an Acidic Lysosomal pH and Degradative Function to Compromised ARPE-19 Cells
title_full_unstemmed Acidic Nanoparticles Are Trafficked to Lysosomes and Restore an Acidic Lysosomal pH and Degradative Function to Compromised ARPE-19 Cells
title_short Acidic Nanoparticles Are Trafficked to Lysosomes and Restore an Acidic Lysosomal pH and Degradative Function to Compromised ARPE-19 Cells
title_sort acidic nanoparticles are trafficked to lysosomes and restore an acidic lysosomal ph and degradative function to compromised arpe-19 cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3525582/
https://www.ncbi.nlm.nih.gov/pubmed/23272048
http://dx.doi.org/10.1371/journal.pone.0049635
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