自聚集长效注射微晶体

Vivian R. Feig, Sanghyun Park, Pier Giuseppe Rivano, Jinhee Kim, Benjamin Muller, Ashka Patel, Caroline Dial, Sofia Gonzalez, Hannah Carlisle, Flavia Codreanu, Aaron Lopes, Ayten E. Erdogan, Niora Fabian, Ashley Guevara, Andrew Pettinari, Jason Li, Jia Liang, Gary W. Liu, Mark W. Tibbitt, Giovanni Traverso
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引用次数: 0

摘要

注射药物仓库通过简化剂量改变了我们提高服药依从性的能力。患者采用注射药物的核心是针头注射的可接受性,针规是告知患者不适的关键因素。在注射剂中最大限度地增加药物负荷,支持更长时间的药物释放,同时减少注射量和不适。在这里,为了满足这些需求,我们开发了自聚集长效注射微晶体(SLIM),这是一种含有药物微晶体的可注射制剂,可在皮下空间自聚集形成整体植入物,聚合物赋形剂与药物的比例较低(0.0625:1 w/w)。通过减少聚合物含量,SLIM支持通过低轮廓针头(25 G)注射,高载药量(293 mg ml−1)。我们在体外和体内证明,自聚集是由注射部位的溶剂交换驱动的,而交换较慢的溶剂导致微晶压实度增加和植入物孔隙度降低。我们进一步表明,自聚集增强了啮齿类动物的长期药物释放。我们预计,SLIM可以使避孕措施的低成本干预成为可能。本研究报告了自聚集可注射微晶体,用于通过低轮廓针头给药长效药物植入物,这是患者采用的关键因素。通过溶剂交换过程设计微晶自聚集,以最少的聚合物赋形剂形成仓库,证明了一种模型避孕药在啮齿动物中的长期释放增强。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Self-aggregating long-acting injectable microcrystals

Self-aggregating long-acting injectable microcrystals
Injectable drug depots have transformed our capacity to enhance medication adherence through dose simplification. Central to patient adoption of injectables is the acceptability of needle injections, with needle gauge as a key factor informing patient discomfort. Maximizing drug loading in injectables supports longer drug release while reducing injection volume and discomfort. Here, to address these requirements, we developed self-aggregating long-acting injectable microcrystals (SLIM), an injectable formulation containing drug microcrystals that self-aggregate in the subcutaneous space to form a monolithic implant with a low ratio of polymer excipient to drug (0.0625:1 w/w). By minimizing polymer content, SLIM supports injection through low-profile needles (<25 G) with high drug loading (293 mg ml−1). We demonstrate in vitro and in vivo that self-aggregation is driven by solvent exchange at the injection site and that slower-exchanging solvents result in increased microcrystal compaction and reduced implant porosity. We further show that self-aggregation enhances long-term drug release in rodents. We anticipate that SLIM could enable low-cost interventions for contraceptives. This study reports on self-aggregating injectable microcrystals for administering long-acting drug implants via low-profile needles, a key factor in patient adoption. Microcrystal self-aggregation is engineered through a solvent exchange process to form depots with minimal polymer excipient, demonstrating enhanced long-term release of a model contraceptive drug in rodents.
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