抗生素-非甾体抗炎药非共价反应的益处和挑战。
The Benefits and Challenges of Antibiotics-Non-Steroidal Anti-Inflammatory Drugs Non-Covalent Reaction.
机构信息
School of Pharmacy, Bandung Institute of Technology, Bandung 40132, Indonesia.
出版信息
Molecules. 2023 Apr 23;28(9):3672. doi: 10.3390/molecules28093672.
Recently, non-covalent reactions have emerged as approaches to improve the physicochemical properties of active pharmaceutical ingredients (API), including antibiotics and non-steroidal anti-inflammatory drugs (NSAIDs). This review aimed to present and discuss the non-covalent reaction products of antibiotics, including salt and neutral multi-component solid forms, by framing their substituents and molar ratios, manufacturing techniques, characterization methods, benefits, potency changes, and toxicity, and is completed with an analysis of the development of computational models used in this field. Based on the data, NSAIDs are the most-developed drugs in multi-component system preparations, followed by antibiotics, i.e., antituberculosis and fluoroquinolones. They have reacted with inorganic elements, excipients, nutraceuticals, natural products, and other drugs. However, in terms of treatments for common infections, fluoroquinolones are more frequently used. Generally, NSAIDs are acquired on an over-the-counter basis, causing inappropriate medication. In addition, the pKa differences between the two groups of medicine offer the potential for them to react non-covalently. Hence, this review highlights fluoroquinolone-NSAID multi-component solid systems, which offer some benefits. These systems can increase patient compliance and promote the appropriate monitoring of drug usage; the dual drug multi-component solids have been proven to improve the physicochemical properties of one or both components, especially in terms of solubility and stability. In addition, some reports show an enhancement of the antibiotic activity of the products. However, it is important to consider the possibility of activity changes, interaction, and toxicity when using drug combinations. Hence, these aspects also are discussed in this review. Finally, we present computational modeling, which has been utilized broadly to support multi-component system designs, including coformer screening, preparation methods, and structural modeling, as well as to predict physicochemical properties, potency, and toxicity. This integrated review is expected to be useful for further antibiotic-NSAID multi-component system development.
最近,非共价反应已成为改善活性药物成分(API)物理化学性质的方法,包括抗生素和非甾体抗炎药(NSAIDs)。本综述旨在介绍和讨论抗生素的非共价反应产物,包括盐和中性多组分固体形式,通过框定它们的取代基和摩尔比、制造技术、表征方法、益处、效力变化和毒性,并对该领域中使用的计算模型的发展进行分析。基于这些数据,在多组分体系制剂中,NSAIDs 是开发最多的药物,其次是抗生素,即抗结核药和氟喹诺酮类药物。它们与无机元素、赋形剂、营养保健品、天然产物和其他药物发生反应。然而,在治疗常见感染方面,氟喹诺酮类药物的应用更为广泛。通常情况下,NSAIDs 是非处方药,导致用药不当。此外,这两组药物的 pKa 差异为它们发生非共价反应提供了可能性。因此,本综述重点介绍了氟喹诺酮-NSAID 多组分固体系统,它们具有一些优势。这些系统可以提高患者的依从性,并促进对药物使用的适当监测;双药多组分固体已被证明可以改善一种或两种成分的物理化学性质,特别是在溶解度和稳定性方面。此外,一些报告表明产品的抗生素活性得到了增强。然而,在使用药物组合时,需要考虑到活性变化、相互作用和毒性的可能性。因此,本综述也讨论了这些方面。最后,我们介绍了计算建模,它已广泛用于支持多组分系统设计,包括共晶筛选、制备方法和结构建模,以及预测物理化学性质、效力和毒性。本综述预计将有助于进一步开发抗生素-NSAID 多组分系统。
相似文献
Int J Mol Sci. 2023-2-7
Eur J Pharm Sci. 2021-3-1
Cochrane Database Syst Rev. 2015-7-1
引用本文的文献
Front Pharmacol. 2025-4-8
本文引用的文献
Int J Mol Sci. 2023-2-7
J Med Chem. 2022-10-27
Emerg Infect Dis. 2022-9
Phys Chem Chem Phys. 2022-7-13