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正交凝胶法合成载药纳米胶束的核壳水凝胶用于多功能口服药物递送。

Orthogonal Gelations to Synthesize Core-Shell Hydrogels Loaded with Nanoemulsion-Templated Drug Nanoparticles for Versatile Oral Drug Delivery.

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA, 02139, USA.

Campus for Research Excellence and Technological Enterprise, Singapore, 138602, Singapore.

出版信息

Adv Healthc Mater. 2023 Dec;12(31):e2301667. doi: 10.1002/adhm.202301667. Epub 2023 Aug 10.

Abstract

Hydrophobic active pharmaceutical ingredients (APIs) are ubiquitous in the drug development pipeline, but their poor bioavailability often prevents their translation into drug products. Industrial processes to formulate hydrophobic APIs are expensive, difficult to optimize, and not flexible enough to incorporate customizable drug release profiles into drug products. Here, a novel, dual-responsive gelation process that exploits orthogonal thermo-responsive and ion-responsive gelations is introduced. This one-step "dual gelation" synthesizes core-shell (methylcellulose-alginate) hydrogel particles and encapsulates drug-laden nanoemulsions in the hydrogel matrices. In situ crystallization templates drug nanocrystals inside the polymeric core, while a kinetically stable amorphous solid dispersion is templated in the shell. Drug release is explored as a function of particle geometry, and programmable release is demonstrated for various therapeutic applications including delayed pulsatile release and sequential release of a model fixed-dose combination drug product of ibuprofen and fenofibrate. Independent control over drug loading between the shell and the core is demonstrated. This formulation approach is shown to be a flexible process to develop drug products with biocompatible materials, facile synthesis, and precise drug release performance. This work suggests and applies a novel method to leverage orthogonal gel chemistries to generate functional core-shell hydrogel particles.

摘要

疏水性活性药物成分(APIs)在药物开发管道中无处不在,但它们较差的生物利用度常常阻碍了它们转化为药物产品。用于配制疏水性 API 的工业工艺昂贵、难以优化,并且不够灵活,无法将可定制的药物释放曲线纳入药物产品中。在这里,引入了一种新颖的、双响应凝胶化过程,该过程利用了正交的温度响应和离子响应凝胶化。这种一步“双重凝胶化”合成了核壳(甲基纤维素-海藻酸盐)水凝胶颗粒,并将载药纳米乳液包封在水凝胶基质中。原位结晶模板在聚合物核内形成药物纳米晶体,而壳中则形成动力学稳定的无定形固体分散体。研究了药物释放作为颗粒几何形状的函数,并针对各种治疗应用(包括延迟脉冲释放和布洛芬和非诺贝特固定剂量组合药物产品的顺序释放)展示了可编程释放。证明了在壳和核之间独立控制药物负载的能力。该制剂方法是一种开发具有生物相容性材料、简便合成和精确药物释放性能的药物产品的灵活方法。这项工作提出并应用了一种新方法,利用正交凝胶化学来生成功能性核壳水凝胶颗粒。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0ebe/11469203/e933fe5f2627/ADHM-12-2301667-g004.jpg

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