Li Zeke, Chen Senbin, Binder Wolfgang H, Zhu Jintao
Hubei Engineering Research Center for Biomaterials and Medical Protective Materials, School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology (HUST), Wuhan 430074, China.
Institute of Chemistry, Martin-Luther University Halle-Wittenberg, von Danckelmann-Platz 4, D-06120, Halle (Saale), Germany.
ACS Macro Lett. 2023 Oct 17;12(10):1384-1388. doi: 10.1021/acsmacrolett.3c00493. Epub 2023 Sep 28.
One of the major goals of biomedical science is to pioneer advanced strategies toward precise and smart medicine. Hydrogen-bonding (H-bonding) assembly incorporated with an aggregation-induced emission (AIE) capability can serve as a powerful tool for developing supramolecular nanomedicine with clear tumor imaging and smart therapeutic performance. We here report a H-bonded polymeric nanoformulation with an AIE characteristic toward smart antitumor therapy. To do so, we first design a structurally novel tetraphenylethylene (TPE)-based H-bonding theranostic prodrug, TPE-(FUA), characterized by four chemotherapeutic fluorouracil-1-acetic acid (FUA) moieties arched to the TPE core. A six-arm star-shaped amphiphilic polymer vehicle, P(DAP--OEGEA), is prepared, bearing hydrophilic and biocompatible POEGEA (poly(oligo (ethylene glycol) ethyl acrylate) segments, along with a hydrophobic and H-bonding PDAP (poly(diaminopyridine acrylamide)) segment. Thanks to the establishment of the DAP/FUA H-bonding association, incorporating the TPE-(FUA) prodrug to the P(DAP--OEGEA) vehicle can yield H-bond cross-linked nanoparticles with interpenetrating networks. For the first time, AIE luminogens are interwoven into a six-arm star-shaped polymer via an intrinsic H-bonding array of the chemotherapeutic agent FUA, thus imposing an effective restriction of TPE molecular rotations. Concomitantly, encapsulated photothermal agent (IR780) via a hydrophobic interaction facilitates the formation of nanoassemblies, TPE-(FUA)/IR780@P(DAP--OEGEA), featuring synergistic cancer chemo/photothermal therapy (CT/PTT). Our study can contribute a practical solution to fulfill biomedical requirements with a conductive advance in precision nanomedicine.
生物医学科学的主要目标之一是开创先进策略以实现精准和智能医学。结合聚集诱导发光(AIE)能力的氢键(H键)组装可作为开发具有清晰肿瘤成像和智能治疗性能的超分子纳米药物的有力工具。我们在此报告一种具有AIE特性的用于智能抗肿瘤治疗的氢键聚合物纳米制剂。为此,我们首先设计了一种结构新颖的基于四苯乙烯(TPE)的氢键诊疗前药TPE-(FUA),其特征在于四个化疗药物氟尿嘧啶-1-乙酸(FUA)部分环绕在TPE核心周围。制备了一种六臂星形两亲聚合物载体P(DAP-OEGEA),它带有亲水性和生物相容性的POEGEA(聚(寡聚(乙二醇)丙烯酸乙酯)链段,以及疏水性和氢键结合的PDAP(聚(二氨基吡啶丙烯酰胺))链段。由于建立了DAP/FUA氢键缔合,将TPE-(FUA)前药与P(DAP-OEGEA)载体结合可产生具有互穿网络的氢键交联纳米颗粒。首次通过化疗药物FUA的固有氢键阵列将AIE发光体编织到六臂星形聚合物中,从而有效限制了TPE分子的旋转。同时,通过疏水相互作用封装的光热剂(IR780)促进了纳米组装体TPE-(FUA)/IR780@P(DAP-OEGEA)的形成,其具有协同癌症化疗/光热治疗(CT/PTT)功能。我们的研究可为满足生物医学需求提供一个切实可行的解决方案,推动精准纳米医学取得进展。