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甲氧基聚乙二醇-聚乳酸介导的P-糖蛋白外排抑制机制及聚乳酸链长度对P-糖蛋白抑制活性的影响

Inhibition mechanism of P-glycoprotein mediated efflux by mPEG-PLA and influence of PLA chain length on P-glycoprotein inhibition activity.

作者信息

Li Wenjing, Li Xinru, Gao Yajie, Zhou Yanxia, Ma Shujin, Zhao Yong, Li Jinwen, Liu Yan, Wang Xinglin, Yin Dongdong

机构信息

Department of Pharmaceutics, School of Pharmaceutical Sciences, Peking University , Beijing 100191, China.

出版信息

Mol Pharm. 2014 Jan 6;11(1):71-80. doi: 10.1021/mp4004223. Epub 2013 Nov 22.

Abstract

The present study aimed to investigate the effect of monomethoxy poly(ethylene glycol)-block-poly(D,L-lactic acid) (mPEG-PLA) on the activity of P-glycoprotein (P-gp) in Caco-2 cells and further unravel the relationship between PLA chain length in mPEG-PLA and influence on P-gp efflux and the action mechanism. The transport results of rhodamine 123 (R123) across Caco-2 cell monolayers suggested that mPEG-PLA unimers were responsible for its P-gp inhibitory effect. Furthermore, transport studies of R123 revealed that the inhibitory potential of P-gp efflux by mPEG-PLA analogues was strongly correlated with their structural features and showed that the hydrophilic mPEG-PLA copolymers with an intermediate PLA chain length and 10.20 of hydrophilic-lipophilic balance were more effective at inhibiting P-gp efflux in Caco-2 cells. The fluorescence polarization measurement results ruled out the plasma membrane fluidization as a contributor for inhibition of P-gp by mPEG-PLA. Concurrently, mPEG-PLA inhibited neither basal P-gp ATPase (ATP is adenosine triphosphate) activity nor substrate stimulated P-gp ATPase activity, suggesting that mPEG-PLA seemed not to be a substrate of P-gp and a competitive inhibitor. No evident alteration in P-gp surface level was detected by flow cytometry upon exposure of the cells to mPEG-PLA. The depletion of intracellular ATP, which was likely to be a result of partial inhibition of cellular metabolism, was directly correlated with inhibitory potential for P-gp mediated efflux by mPEG-PLA analogues. Hence, intracellular ATP-depletion appeared to be possible explanation to the inhibition mechanism of P-gp by mPEG-PLA. Taken together, the establishment of a relationship between PLA chain length and impact on P-gp efflux activity and interpretation of action mechanism of mPEG-PLA on P-gp are of fundamental importance and will facilitate future development of mPEG-PLA in the drug delivery area.

摘要

本研究旨在探讨甲氧基聚(乙二醇)-嵌段-聚(D,L-乳酸)(mPEG-PLA)对Caco-2细胞中P-糖蛋白(P-gp)活性的影响,并进一步揭示mPEG-PLA中聚乳酸(PLA)链长度与P-gp外排影响之间的关系及其作用机制。罗丹明123(R123)跨Caco-2细胞单层的转运结果表明,mPEG-PLA单聚物是其P-gp抑制作用的原因。此外,R123的转运研究表明,mPEG-PLA类似物对P-gp外排的抑制潜力与其结构特征密切相关,且表明具有中等PLA链长度和亲水亲油平衡值为10.20的亲水性mPEG-PLA共聚物在抑制Caco-2细胞中P-gp外排方面更有效。荧光偏振测量结果排除了质膜流化是mPEG-PLA抑制P-gp的原因。同时,mPEG-PLA既不抑制基础P-gp三磷酸腺苷(ATP)酶活性,也不抑制底物刺激的P-gp ATP酶活性,这表明mPEG-PLA似乎不是P-gp的底物和竞争性抑制剂。通过流式细胞术检测发现,细胞暴露于mPEG-PLA后,P-gp表面水平没有明显变化。细胞内ATP的消耗可能是细胞代谢部分抑制的结果,与mPEG-PLA类似物对P-gp介导外排的抑制潜力直接相关。因此,细胞内ATP消耗似乎是mPEG-PLA抑制P-gp机制的一种可能解释。综上所述,建立PLA链长度与对P-gp外排活性影响之间的关系以及解释mPEG-PLA对P-gp的作用机制至关重要,将有助于mPEG-PLA在药物递送领域的未来发展。

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