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MMP-2-Controlled Transforming Micelles for Heterogeneic Targeting and Programmable Cancer Therapy.


ABSTRACT: Herein, through the active-peptide-functionalization, we developed a nanoscale micelles system (named HEKM) which consists of tumor microenvironment-regulated shape-changing with specific recognition abilities for enhanced cellular targeting, internalization and therapy of heterogeneic tumors. As a result, HEKMs could recognize and bind the tumor heterogeneity marker EGFR-HER2 complex, which led to an enhanced tumor targeting effect. In particular, HEKMs could self-assemble into nanorods under normal physiological conditions while transform into nanospheres in the tumor extracellular microenvironment by a sensitive response to matrix metalloproteinase-2 (MMP-2). The nanorods could prolong the blood circulation time while the nanospheres could accelerate tissue penetration in tumors. In vivo dual-modal targeted imaging was realized by FRET-fluorophore conjugation and gadolinium loading in HEKMs. Tumor cell apoptosis was achieved by proapoptotic element integration. The in vitro and in vivo studies both demonstrated that these rationally designed, shape-changing and targeting micelles could achieve maximized drug efficacy and minimum side effects.

SUBMITTER: Wang Z 

PROVIDER: S-EPMC6485184 | biostudies-literature | 2019

REPOSITORIES: biostudies-literature

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MMP-2-Controlled Transforming Micelles for Heterogeneic Targeting and Programmable Cancer Therapy.

Wang Zihua Z   Wang Yuehua Y   Jia Xiangqian X   Han Qiuju Q   Qian Yixia Y   Li Qian Q   Xiang Junfeng J   Wang Qian Q   Hu Zhiyuan Z   Wang Weizhi W  

Theranostics 20190228 6


Herein, through the active-peptide-functionalization, we developed a nanoscale micelles system (named HEKM) which consists of tumor microenvironment-regulated shape-changing with specific recognition abilities for enhanced cellular targeting, internalization and therapy of heterogeneic tumors. As a result, HEKMs could recognize and bind the tumor heterogeneity marker EGFR-HER2 complex, which led to an enhanced tumor targeting effect. In particular, HEKMs could self-assemble into nanorods under n  ...[more]

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