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抗菌合成二苯甲酮在可生物降解 PLGA 纳米粒中的药物传递的物理化学和体外评价。

Physicochemical and In Vitro Evaluation of Drug Delivery of an Antibacterial Synthetic Benzophenone in Biodegradable PLGA Nanoparticles.

机构信息

Department of Pharmacy, Pharmaceutical Technology and Biopharmacy, Ludwig-Maximilians-University, 81337, Munich, Germany.

Department of Pharmaceutical Sciences, Eugene Applebaum College of Pharmacy and Health Sciences, Wayne State University, Detroit, Michigan, 48201, USA.

出版信息

AAPS PharmSciTech. 2018 Nov;19(8):3561-3570. doi: 10.1208/s12249-018-1187-9. Epub 2018 Sep 25.

Abstract

Due to the increasing incidents of antimicrobial-resistant pathogens, the development of new antibiotics and their efficient formulation for suitable administration is crucial. Currently, one group of promising antimicrobial compounds are the benzophenone tetra-amides which show good activity even against gram-positive, drug-resistant pathogens. These compounds suffer from poor water solubility and bioavailability. It is therefore important to develop dosage forms which can address this disadvantage while also maintaining efficacy and potentially generating long-term exposures to minimize frequent dosing. Biodegradable nanoparticles provide one solution, and we describe here the encapsulation of the experimental benzophenone-based antibiotic, SV7. Poly-lactic-co-glycolic-acid (PLGA) nanoparticles were optimized for their physicochemical properties, their encapsulation efficiency, sustained drug release as well as antimicrobial activity. The optimized formulation contained particles smaller than 200 nm with a slightly negative zeta potential which released 39% of their drug load over 30 days. This formulation maintains the antibacterial activity of SV7 while minimizing the impact on mammalian cells.

摘要

由于抗菌药物耐药性病原体的不断增加,开发新的抗生素及其有效的配方用于适当的给药至关重要。目前,一组有前途的抗菌化合物是苯并二酮四酰胺,即使对革兰氏阳性、耐药性病原体也具有良好的活性。这些化合物的水溶性和生物利用度差。因此,开发能够解决这一缺点的剂型非常重要,同时保持疗效并可能产生长期暴露,以尽量减少频繁给药。可生物降解的纳米颗粒提供了一种解决方案,我们在这里描述了实验性苯并二酮类抗生素 SV7 的包封。聚乳酸-羟基乙酸共聚物(PLGA)纳米颗粒的理化性质、包封效率、药物持续释放和抗菌活性进行了优化。优化的配方含有小于 200nm 的颗粒,带有轻微的负 ζ 电位,在 30 天内释放 39%的药物负荷。这种配方在保持 SV7 抗菌活性的同时,最大限度地减少了对哺乳动物细胞的影响。

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