Priming the Liver Endocytic Pathway to Accelerate Hepatobiliary Clearance of Nanoparticles

内吞作用 内吞循环 化学 纳米医学 聚乙二醇化 启动(农业) 胞吐 细胞内 癌症研究 细胞生物学 药理学 纳米颗粒 内体 受体介导的内吞作用 肝病 氯丙嗪 肝细胞 生物物理学 生物化学 药物输送 胶体金 细胞毒性 药代动力学 体内分布 纳米技术
作者
Yunfeng Ren,Fang Mei,Huixu Lu,Yazhe Liang,Rui Zheng,Ziyuan Wang,Fengying Liang,Bujie Du,Xingya Jiang
出处
期刊:ACS Nano [American Chemical Society]
卷期号:20 (9): 7805-7816 被引量:3
标识
DOI:10.1021/acsnano.5c20532
摘要

Prolonged hepatic accumulation represents a major obstacle for clinical translation of many nanomedicines, particularly for those not easily biodegradable. While many strategies such as PEGylation have been developed to reduce or delay the liver uptake of nanoparticles, strategies that expedite nanoparticle elimination after liver uptake are rarely reported. Herein, we report a broadly applicable strategy to accelerate hepatobiliary elimination of diverse nanoparticles through priming of the liver endocytic pathway. Inspired by our findings that smaller gold nanoparticles exhibit inherently faster hepatobiliary clearance due to size-dependent endocytic pathways, we discovered that inhibition of clathrin-mediated endocytosis (CME) significantly enhances nanoparticle exocytosis from hepatocytes and macrophages. Mechanistically, we found that CME inhibition alters nanoparticle intracellular trafficking, diverting endocytosed nanoparticles from the lysosomal pathway to the Golgi apparatus for faster exocytosis. Using the clinically approved drug chlorpromazine as a CME inhibitor, we demonstrated that priming the liver with chlorpromazine markedly accelerated hepatobiliary clearance and reduced hepatic retention of various nanoparticles ranging from inorganic to organic ones in mice. Moreover, in a murine tumor model, we showed that hepatic CME inhibition accelerated hepatobiliary elimination of the model nanomedicine without compromising its disease targeting efficacy. Our discovery highlights a versatile strategy for accelerating hepatobiliary elimination of nanoparticles, which is expected to synergize with previous strategies for overcoming nonspecific liver accumulation of nanomedicines.
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