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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Main Authors: Rutian Li, Li Xie, Zhenshu Zhu, Qin Liu, Yong Hu, Xiqun Jiang, Lixia Yu, Xiaoping Qian, Wanhua Guo, Yitao Ding, Baorui Liu
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2011-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3180282?pdf=render
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spelling 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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