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光触发的功能化两亲性嵌段共聚物胶束的磁共振成像对比性能和药物释放速率的协同增强。

Light-triggered concomitant enhancement of magnetic resonance imaging contrast performance and drug release rate of functionalized amphiphilic diblock copolymer micelles.

机构信息

CAS Key Laboratory of Soft Matter Chemistry, Hefei National Laboratory for Physical Sciences at the Microscale, Department of Polymer Science and Engineering, University of Science and Technology of China, Hefei, Anhui 230026, China.

出版信息

Biomacromolecules. 2012 Nov 12;13(11):3877-86. doi: 10.1021/bm301425j. Epub 2012 Oct 9.

Abstract

Polymeric drug nanocarriers integrated with diagnostic and sensing functions are capable of in situ monitoring the biodistribution of chemotherapeutic drugs and imaging/contrasting agents, which enables the establishment of image-guided personalized cancer therapeutic protocols. Responsive multifunctional theranostic nanocarriers possessing external stimuli-tunable drug release rates and imaging signal intensities represent another promising direction in this field. In this work, we fabricated responsive amphiphilic diblock copolymer micelles exhibiting light-triggered hydrophobic-hydrophilic transition within micellar cores and the concomitant enhancement of magnetic resonance (MR) imaging contrast performance and release rate of physically encapsulated hydrophobic drugs. POEGMA-b-P(NIPAM-co-NBA-co-Gd) diblock copolymer covalently labeled with Gd(3+) complex (Gd) in the light-responsive block was synthesized at first, where OEGMA, NIPAM, and NBA are oligo(ethylene glycol) monomethyl ether methacrylate, N-isopropylacrylamide, and o-nitrobenzyl acrylate, respectively. The amphiphilic diblock copolymer spontaneously self-assembles in aqueous solution into micellar nanoparticles possessing hydrophobic P(NIPAM-co-NBA-co-Gd) cores and hydrophilic POEGMA coronas, which can physically encapsulate doxorubicin (Dox) as a model chemotherapeutic drug. Upon UV irradiation, hydrophobic NBA moieties within micellar cores transform into hydrophilic carboxyl derivatives, triggering micelle microstructural changes and core swelling. During this process, the microenvironment surrounding Gd(3+) complexes was subjected to a transition from being hydrophobic to hydrophilic, leading to the enhancement of MR imaging contrast performance, that is, 1.9-fold increase in longitudinal relaxivity (r(1)). In addition, the release rate of encapsulated Dox was also enhanced (65% of Dox release in 12 h upon UV irradiation versus ~47% Dox release in 25 h for the control). The reported strategy of light-triggered coenhancement of MR imaging contrast performance and drug release profiles represents a general route to the construction of next generation smart polymeric theranostic nanocarriers.

摘要

载药纳米载体与诊断和传感功能集成,能够原位监测化疗药物的生物分布和成像/对比剂,从而建立图像引导的个体化癌症治疗方案。具有外部刺激可调药物释放率和成像信号强度的响应多功能治疗纳米载体代表了该领域另一个有前途的方向。在这项工作中,我们制备了具有光触发的疏水性-亲水性转变的响应性两亲性嵌段共聚物胶束,该胶束的核心内具有光触发的疏水性-亲水性转变,同时增强了磁共振(MR)成像对比性能和物理包封的疏水性药物的释放速率。首先合成了共价标记有 Gd(3+)配合物(Gd)的光响应嵌段共聚物 POEGMA-b-P(NIPAM-co-NBA-co-Gd),其中 OEGMA、NIPAM 和 NBA 分别为聚乙二醇单甲醚甲基丙烯酸酯、N-异丙基丙烯酰胺和邻硝基苄基丙烯酰胺。两亲性嵌段共聚物在水溶液中自发自组装成具有疏水性 P(NIPAM-co-NBA-co-Gd)核和亲水性 POEGMA 冠的胶束纳米颗粒,可将阿霉素(Dox)作为模型化疗药物物理包封。紫外光照射后,胶束核内的疏水性 NBA 部分转化为亲水性羧基衍生物,触发胶束微观结构变化和核膨胀。在这个过程中,Gd(3+)配合物的微环境从疏水性转变为亲水性,导致磁共振成像对比性能增强,即纵向弛豫率(r(1))提高了 1.9 倍。此外,包封的 Dox 的释放速率也得到了增强(在紫外光照射下 12 小时内释放约 65%Dox,而对照条件下 25 小时内释放约 47%Dox)。光触发的磁共振成像对比性能和药物释放谱的协同增强策略代表了构建下一代智能聚合物治疗纳米载体的一般途径。

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