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光热效应触发氢键增强聚合物胶束的药物释放。

Photothermal Effect-Triggered Drug Release from Hydrogen Bonding-Enhanced Polymeric Micelles.

机构信息

State Key Laboratory of Materials Processing and Mold Technology, School of Chemistry and Chemical Engineering , Huazhong University of Science and Technology , Wuhan 430074 , China.

Key Laboratory of Polymer Ecomaterials, Changchun Institute of Applied Chemistry , Chinese Academy of Sciences , Changchun 130022 , China.

出版信息

Biomacromolecules. 2018 Jun 11;19(6):1950-1958. doi: 10.1021/acs.biomac.7b01702. Epub 2018 Feb 12.

Abstract

Incorporation of noncovalent interactions into hydrophobic cores of polymeric micelles provides the micelles with enhanced physical stability and drug loading efficiency, however, it also creates obstacles for drug release due to the strong interactions between carriers and drugs. Herein, a series of amphiphilic block copolymers based on poly(ethylene glycol)- b-poly(l-lysine) (mPEG- b-PLL) with similar chemical structures, while different hydrogen bonding donors (urethane, urea, and thiourea groups) are synthesized, and their capacities for codelivery of anticancer drug (e.g., doxorubicin) and photothermal agent (e.g., indocyanine green) are investigated. The resulting hybrid micelles display decreased critical micelle concentrations (CMCs) and enhanced micelle stabilities due to the hydrogen bonding between urea groups in the polymers. Moreover, the strong hydrogen bonds between the urea/thiourea groups and drugs provide the carriers with enhanced drug loading efficiencies, decreased micelle sizes, however, slower drug release profiles as well. When exposed to the near-infrared laser irradiation, destabilization of the hydrogen bonding through photothermal effect triggers fast and controlled drug releases from the micelles, which dramatically promotes the aggregation of the drugs in the nuclei, resulting in an enhanced anticancer activity. These results demonstrate that the hydrogen bonding-enhanced micelles are promising carriers for controllable chemo-photothermal synergistic therapy.

摘要

将非共价相互作用纳入聚合物胶束的疏水核中,为胶束提供了增强的物理稳定性和药物装载效率,但由于载体和药物之间的强相互作用,也为药物释放带来了障碍。在此,合成了一系列基于聚乙二醇-b-聚赖氨酸(mPEG-b-PLL)的两亲嵌段共聚物,它们具有相似的化学结构,而氢键供体(氨基甲酸酯、脲和硫脲基团)不同,并研究了它们共递送抗癌药物(如阿霉素)和光热剂(如吲哚菁绿)的能力。由于聚合物中脲基之间的氢键,所得的杂化胶束显示出降低的临界胶束浓度(CMC)和增强的胶束稳定性。此外,脲/硫脲基团与药物之间的强氢键为载体提供了增强的药物装载效率、减小的胶束尺寸,但药物释放速度也较慢。当受到近红外激光照射时,通过光热效应破坏氢键的稳定性会触发药物从胶束中快速和控制释放,从而显著促进药物在核中的聚集,从而增强抗癌活性。这些结果表明,氢键增强的胶束是用于可控化学-光热协同治疗的有前途的载体。

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