Fraunhofer Institute for Translational Medicine and Pharmacology ITMP, Theodor-Stern-Kai 7, 60596 Frankfurt am Main, Germany.
Translational Center for Regenerative Therapies, Fraunhofer Institute for Silicate Research ISC, Neunerplatz 2, 97082 Würzburg, Germany.
Int J Mol Sci. 2022 Dec 19;23(24):16207. doi: 10.3390/ijms232416207.
Chronic wounds exhibit elevated levels of inflammatory cytokines, resulting in the release of proteolytic enzymes which delay wound-healing processes. In recent years, rifampicin has gained significant attention in the treatment of chronic wounds due to an interesting combination of antibacterial and anti-inflammatory effects. Unfortunately, rifampicin is sensitive to hydrolysis and oxidation. As a result, no topical drug product for wound-healing applications has been approved. To address this medical need two nanostructured hydrogel formulations of rifampicin were developed. The liposomal vesicles were embedded into hydroxypropyl methylcellulose (HPMC) gel or a combination of hyaluronic acid and marine collagen. To protect rifampicin from degradation in aqueous environments, a freeze-drying method was developed. Before freeze-drying, two well-defined hydrogel preparations were obtained. After freeze-drying, the visual appearance, chemical stability, residual moisture content, and redispersion time of both preparations were within acceptable limits. However, the morphological characterization revealed an increase in the vesicle size for collagen-hyaluronic acid hydrogel. This was confirmed by subsequent release studies. Interactions of marine collagen with phosphatidylcholine were held responsible for this effect. The HPMC hydrogel formulation remained stable over 6 months of storage. Moving forward, this product fulfills all criteria to be evaluated in preclinical and clinical studies.
慢性伤口表现出高水平的炎症细胞因子,导致蛋白水解酶的释放,从而延迟伤口愈合过程。近年来,利福平由于具有有趣的抗菌和抗炎作用组合,在慢性伤口治疗中受到了极大关注。不幸的是,利福平对水解和氧化敏感。因此,没有批准用于伤口愈合应用的局部药物产品。为了解决这一医疗需求,开发了两种利福平的纳米结构水凝胶制剂。将脂质体囊泡嵌入羟丙基甲基纤维素(HPMC)凝胶或透明质酸和海洋胶原的混合物中。为了防止利福平在水介质中降解,开发了一种冷冻干燥方法。在冷冻干燥之前,获得了两种定义明确的水凝胶制剂。冷冻干燥后,两种制剂的外观、化学稳定性、残余水分含量和再分散时间均在可接受范围内。然而,形态学特征表明胶原-透明质酸水凝胶中囊泡尺寸增加。随后的释放研究证实了这一点。海洋胶原与磷脂酰胆碱的相互作用是造成这种效应的原因。HPMC 水凝胶制剂在储存 6 个月后仍保持稳定。展望未来,该产品符合在临床前和临床研究中进行评估的所有标准。