Reversion of pH-induced physiological drug resistance: a novel function of copolymeric nanoparticles.
AIMS: The extracellular pH of cancer cells is lower than the intracellular pH. Weakly basic anticancer drugs will be protonated extracellularly and display a decreased intracellular concentration. In this study, we show that copolymeric nanoparticles (NPs) are able to overcome this "pH-induced...
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doaj-07f9611b5e604b66a4446ec9271ecf292020-11-25T01:46:41ZengPublic Library of Science (PLoS)PLoS ONE1932-62032011-01-0169e2417210.1371/journal.pone.0024172Reversion of pH-induced physiological drug resistance: a novel function of copolymeric nanoparticles.Rutian LiLi XieZhenshu ZhuQin LiuYong HuXiqun JiangLixia YuXiaoping QianWanhua GuoYitao DingBaorui LiuAIMS: The extracellular pH of cancer cells is lower than the intracellular pH. Weakly basic anticancer drugs will be protonated extracellularly and display a decreased intracellular concentration. In this study, we show that copolymeric nanoparticles (NPs) are able to overcome this "pH-induced physiological drug resistance" (PIPDR) by delivering drugs to the cancer cells via endocytosis rather than passive diffussion. MATERIALS AND METHODS: As a model nanoparticle, Tetradrine (Tet, Pka 7.80) was incorporated into mPEG-PCL. The effectiveness of free Tet and Tet-NPs were compared at different extracellular pHs (pH values 6.8 and 7.4, respectively) by MTT assay, morphological observation and apoptotic analysis in vitro and on a murine model by tumor volume measurement, PET-CT scanning and side effect evaluation in vivo. RESULTS: The cytotoxicity of free Tet decreased prominently (P<0.05) when the extracellular pH decreased from 7.4 to 6.8. Meanwhile, the cytotoxicity of Tet-NPs was not significantly influenced by reduced pH. In vivo experiment also revealed that Tet-NPs reversed PIPDR more effectively than other existing methods and with much less side effects. CONCLUSION: The reversion of PIPDR is a new discovered mechanism of copolymeric NPs. This study emphasized the importance of cancer microenvironmental factors in anticancer drug resistance and revealed the superiority of nanoscale drug carrier from a different aspect.http://europepmc.org/articles/PMC3180282?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Rutian Li Li Xie Zhenshu Zhu Qin Liu Yong Hu Xiqun Jiang Lixia Yu Xiaoping Qian Wanhua Guo Yitao Ding Baorui Liu |
spellingShingle |
Rutian Li Li Xie Zhenshu Zhu Qin Liu Yong Hu Xiqun Jiang Lixia Yu Xiaoping Qian Wanhua Guo Yitao Ding Baorui Liu Reversion of pH-induced physiological drug resistance: a novel function of copolymeric nanoparticles. PLoS ONE |
author_facet |
Rutian Li Li Xie Zhenshu Zhu Qin Liu Yong Hu Xiqun Jiang Lixia Yu Xiaoping Qian Wanhua Guo Yitao Ding Baorui Liu |
author_sort |
Rutian Li |
title |
Reversion of pH-induced physiological drug resistance: a novel function of copolymeric nanoparticles. |
title_short |
Reversion of pH-induced physiological drug resistance: a novel function of copolymeric nanoparticles. |
title_full |
Reversion of pH-induced physiological drug resistance: a novel function of copolymeric nanoparticles. |
title_fullStr |
Reversion of pH-induced physiological drug resistance: a novel function of copolymeric nanoparticles. |
title_full_unstemmed |
Reversion of pH-induced physiological drug resistance: a novel function of copolymeric nanoparticles. |
title_sort |
reversion of ph-induced physiological drug resistance: a novel function of copolymeric nanoparticles. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2011-01-01 |
description |
AIMS: The extracellular pH of cancer cells is lower than the intracellular pH. Weakly basic anticancer drugs will be protonated extracellularly and display a decreased intracellular concentration. In this study, we show that copolymeric nanoparticles (NPs) are able to overcome this "pH-induced physiological drug resistance" (PIPDR) by delivering drugs to the cancer cells via endocytosis rather than passive diffussion. MATERIALS AND METHODS: As a model nanoparticle, Tetradrine (Tet, Pka 7.80) was incorporated into mPEG-PCL. The effectiveness of free Tet and Tet-NPs were compared at different extracellular pHs (pH values 6.8 and 7.4, respectively) by MTT assay, morphological observation and apoptotic analysis in vitro and on a murine model by tumor volume measurement, PET-CT scanning and side effect evaluation in vivo. RESULTS: The cytotoxicity of free Tet decreased prominently (P<0.05) when the extracellular pH decreased from 7.4 to 6.8. Meanwhile, the cytotoxicity of Tet-NPs was not significantly influenced by reduced pH. In vivo experiment also revealed that Tet-NPs reversed PIPDR more effectively than other existing methods and with much less side effects. CONCLUSION: The reversion of PIPDR is a new discovered mechanism of copolymeric NPs. This study emphasized the importance of cancer microenvironmental factors in anticancer drug resistance and revealed the superiority of nanoscale drug carrier from a different aspect. |
url |
http://europepmc.org/articles/PMC3180282?pdf=render |
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