Purushothaman Jaganathan R, Rizwanullah Md
Department of Orthopedics, Saveetha Medical College and Hospital, Saveetha Institute of Medical and Technical Sciences (SIMATS) Saveetha University, Chennai, IND.
Center for Global Health Research, Saveetha Medical College and Hospital, Saveetha Institute of Medical and Technical Sciences (SIMATS) Saveetha University, Chennai, IND.
Cureus. 2024 Aug 28;16(8):e68063. doi: 10.7759/cureus.68063. eCollection 2024 Aug.
Ferulic acid (FA), a phenolic compound abundant in the cell walls of seeds, leaves, and roots of various fruits, vegetables, cereals, and grains, is renowned for its wide range of biological activities, including antioxidant, anti-inflammatory, antimicrobial, and anticancer properties. Despite its therapeutic potential, the clinical application of FA is hindered by challenges such as poor water solubility, limited bioavailability, rapid metabolism, and instability under physiological conditions. To address these issues, nanotechnology has emerged as a transformative approach, enhancing FA's pharmacokinetic profile. Various nanoparticle-based systems, including polymer-based and lipid-based nanoparticles, have been developed to encapsulate FA. These systems have demonstrated significant improvements in FA's solubility, stability, and bioavailability, with studies showing enhanced antioxidant activity and controlled release profiles. Further, the surface engineering of these nanoparticles provides targeted drug/phytochemical delivery potential. The targeted delivery of drugs/phytochemicals significantly enhances the therapeutic efficacy and minimizes systemic side effects. This review explores the therapeutic potential of FA, the limitations in its clinical application, and the advancements in nanoparticle-based delivery systems that are paving the way for its effective therapeutic use.
阿魏酸(FA)是一种酚类化合物,在各种水果、蔬菜、谷物和粮食的种子、叶子及根部的细胞壁中大量存在,因其具有广泛的生物活性而闻名,包括抗氧化、抗炎、抗菌和抗癌特性。尽管FA具有治疗潜力,但其临床应用受到诸如水溶性差、生物利用度有限、代谢迅速以及在生理条件下不稳定等挑战的阻碍。为了解决这些问题,纳米技术已成为一种变革性方法,可改善FA的药代动力学特征。已开发出各种基于纳米颗粒的系统,包括基于聚合物和基于脂质的纳米颗粒,用于包封FA。这些系统已证明在FA的溶解度、稳定性和生物利用度方面有显著改善,研究表明其抗氧化活性增强且具有控释特性。此外,这些纳米颗粒的表面工程提供了靶向药物/植物化学物质递送的潜力。药物/植物化学物质的靶向递送显著提高了治疗效果,并将全身副作用降至最低。本综述探讨了FA的治疗潜力、其临床应用中的局限性以及基于纳米颗粒的递送系统的进展,这些进展为其有效治疗应用铺平了道路。
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