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载利福平脂质体从何释放:创伤环境的触发作用。

How wound environments trigger the release from Rifampicin-loaded liposomes.

机构信息

Fraunhofer Institute for Translational Medicine and Pharmacology ITMP, Theodor-Stern-Kai 7, 60596 Frankfurt am Main, Germany.

Department of Dermatology, Venerology, and Allergology, University Hospital, 60596 Frankfurt am Main, Germany.

出版信息

Int J Pharm. 2023 Feb 25;633:122606. doi: 10.1016/j.ijpharm.2023.122606. Epub 2023 Jan 9.

Abstract

BACKGROUND

Chronic wounds often contain high levels of proinflammatory cytokines that prolong the wound-healing process. Patients suffering from these conditions are likely to benefit from topical rifampicin therapy. Although recent research indicates considerable anti-inflammatory properties of the antibiotic, currently, there are no commercial topical wound healing products available. To address this medical need, a liposomal drug delivery system was developed. A mechanistic investigation outlined major influences of wound environments that affect the release kinetics and, as a consequence, local bioavailability.

METHODS

Liposomes were prepared using the thin-film hydration method and subsequently freeze-dried at the pilot scale to improve their stability. We investigated the influence of oxidation, plasma proteins, and lipolysis on the in vitro release of rifampicin and its two main degradation products using the Dispersion Releaser technology. A novel simulated wound fluid provided a standardized environment to study critical influences on the release. It reflects the pathophysiological environment regarding pH, buffer capacity, and protein content.

RESULTS

During storage, the liposomes efficiently protect rifampicin from degradation. After the dispersion of the vesicles in simulated wound fluid, despite the significant albumin binding (>70%), proteins have no considerable effect on the release. Also, the presence of lipase at pathophysiologically elevated concentrations did not trigger the liberation of rifampicin. Surprisingly, the oxidative environment of the wound bed represents the strongest accelerating influence and triggers the release.

CONCLUSION

A stable topical delivery system of rifampicin has been developed. Once the formulation comes in contact with simulated wound fluid, drug oxidation accelerates the release. The influence of lipases that are assumed to trigger the liberation from liposomes depends on the drug-to-lipid ratio. Considering that inflamed tissues exhibit elevated levels of oxidative stress, the trigger mechanism identified for rifampicin contributes to targeted drug delivery.

摘要

背景

慢性伤口通常含有高水平的促炎细胞因子,从而延长伤口愈合过程。患有这些疾病的患者可能会受益于局部利福平治疗。尽管最近的研究表明抗生素具有相当大的抗炎特性,但目前尚无商业上可用的局部伤口愈合产品。为了满足这一医疗需求,开发了一种脂质体药物递送系统。一项机制研究概述了影响释放动力学的伤口环境的主要影响,进而影响局部生物利用度。

方法

使用薄膜水化法制备脂质体,然后在中试规模下冷冻干燥,以提高其稳定性。我们使用Dispersion Releaser 技术研究了氧化、血浆蛋白和脂肪分解对利福平及其两种主要降解产物体外释放的影响。一种新型模拟伤口液提供了一个标准化的环境,用于研究对释放有重要影响的因素。它反映了 pH 值、缓冲能力和蛋白质含量方面的病理生理环境。

结果

在储存过程中,脂质体能有效地保护利福平免受降解。在将囊泡分散在模拟伤口液中后,尽管存在大量白蛋白结合(>70%),但蛋白质对释放没有显著影响。此外,在病理生理升高浓度下存在脂肪酶也不会触发利福平的释放。令人惊讶的是,伤口床的氧化环境代表了最强的加速影响,并触发了释放。

结论

已经开发出一种稳定的利福平局部递送系统。一旦制剂与模拟伤口液接触,药物氧化会加速释放。据假设会触发脂质体释放的脂肪酶的影响取决于药物与脂质的比例。考虑到发炎组织表现出高水平的氧化应激,为利福平确定的触发机制有助于靶向药物递送。

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