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pH-Triggered Echogenicity and Contents Release from Liposomes

[Image: see text] Liposomes are representative lipid nanoparticles widely used for delivering anticancer drugs, DNA fragments, or siRNA to cancer cells. Upon targeting, various internal and external triggers have been used to increase the rate for contents release from the liposomes. Among the inter...

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Autores principales: Nahire, Rahul, Hossain, Rayat, Patel, Rupa, Paul, Shirshendu, Meghnani, Varsha, Ambre, Avinash H., Gange, Kara N., Katti, Kalpana S., Leclerc, Estelle, Srivastava, D. K., Sarkar, Kausik, Mallik, Sanku
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4224524/
https://www.ncbi.nlm.nih.gov/pubmed/25271780
http://dx.doi.org/10.1021/mp500186a
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author Nahire, Rahul
Hossain, Rayat
Patel, Rupa
Paul, Shirshendu
Meghnani, Varsha
Ambre, Avinash H.
Gange, Kara N.
Katti, Kalpana S.
Leclerc, Estelle
Srivastava, D. K.
Sarkar, Kausik
Mallik, Sanku
author_facet Nahire, Rahul
Hossain, Rayat
Patel, Rupa
Paul, Shirshendu
Meghnani, Varsha
Ambre, Avinash H.
Gange, Kara N.
Katti, Kalpana S.
Leclerc, Estelle
Srivastava, D. K.
Sarkar, Kausik
Mallik, Sanku
author_sort Nahire, Rahul
collection PubMed
description [Image: see text] Liposomes are representative lipid nanoparticles widely used for delivering anticancer drugs, DNA fragments, or siRNA to cancer cells. Upon targeting, various internal and external triggers have been used to increase the rate for contents release from the liposomes. Among the internal triggers, decreased pH within the cellular lysosomes has been successfully used to enhance the rate for releasing contents. However, imparting pH sensitivity to liposomes requires the synthesis of specialized lipids with structures that are substantially modified at a reduced pH. Herein, we report an alternative strategy to render liposomes pH sensitive by encapsulating a precursor which generates gas bubbles in situ in response to acidic pH. The disturbance created by the escaping gas bubbles leads to the rapid release of the encapsulated contents from the liposomes. Atomic force microscopic studies indicate that the liposomal structure is destroyed at a reduced pH. The gas bubbles also render the liposomes echogenic, allowing ultrasound imaging. To demonstrate the applicability of this strategy, we have successfully targeted doxorubicin-encapsulated liposomes to the pancreatic ductal carcinoma cells that overexpress the folate receptor on the surface. In response to the decreased pH in the lysosomes, the encapsulated anticancer drug is efficiently released. Contents released from these liposomes are further enhanced by the application of continuous wave ultrasound (1 MHz), resulting in substantially reduced viability for the pancreatic cancer cells (14%).
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spelling pubmed-42245242015-10-01 pH-Triggered Echogenicity and Contents Release from Liposomes Nahire, Rahul Hossain, Rayat Patel, Rupa Paul, Shirshendu Meghnani, Varsha Ambre, Avinash H. Gange, Kara N. Katti, Kalpana S. Leclerc, Estelle Srivastava, D. K. Sarkar, Kausik Mallik, Sanku Mol Pharm [Image: see text] Liposomes are representative lipid nanoparticles widely used for delivering anticancer drugs, DNA fragments, or siRNA to cancer cells. Upon targeting, various internal and external triggers have been used to increase the rate for contents release from the liposomes. Among the internal triggers, decreased pH within the cellular lysosomes has been successfully used to enhance the rate for releasing contents. However, imparting pH sensitivity to liposomes requires the synthesis of specialized lipids with structures that are substantially modified at a reduced pH. Herein, we report an alternative strategy to render liposomes pH sensitive by encapsulating a precursor which generates gas bubbles in situ in response to acidic pH. The disturbance created by the escaping gas bubbles leads to the rapid release of the encapsulated contents from the liposomes. Atomic force microscopic studies indicate that the liposomal structure is destroyed at a reduced pH. The gas bubbles also render the liposomes echogenic, allowing ultrasound imaging. To demonstrate the applicability of this strategy, we have successfully targeted doxorubicin-encapsulated liposomes to the pancreatic ductal carcinoma cells that overexpress the folate receptor on the surface. In response to the decreased pH in the lysosomes, the encapsulated anticancer drug is efficiently released. Contents released from these liposomes are further enhanced by the application of continuous wave ultrasound (1 MHz), resulting in substantially reduced viability for the pancreatic cancer cells (14%). American Chemical Society 2014-10-01 2014-11-03 /pmc/articles/PMC4224524/ /pubmed/25271780 http://dx.doi.org/10.1021/mp500186a Text en Copyright © 2014 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 Nahire, Rahul
Hossain, Rayat
Patel, Rupa
Paul, Shirshendu
Meghnani, Varsha
Ambre, Avinash H.
Gange, Kara N.
Katti, Kalpana S.
Leclerc, Estelle
Srivastava, D. K.
Sarkar, Kausik
Mallik, Sanku
pH-Triggered Echogenicity and Contents Release from Liposomes
title pH-Triggered Echogenicity and Contents Release from Liposomes
title_full pH-Triggered Echogenicity and Contents Release from Liposomes
title_fullStr pH-Triggered Echogenicity and Contents Release from Liposomes
title_full_unstemmed pH-Triggered Echogenicity and Contents Release from Liposomes
title_short pH-Triggered Echogenicity and Contents Release from Liposomes
title_sort ph-triggered echogenicity and contents release from liposomes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4224524/
https://www.ncbi.nlm.nih.gov/pubmed/25271780
http://dx.doi.org/10.1021/mp500186a
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