Kazmi Imran, Al-Abbasi Fahad A, Imam Syed Sarim, Afzal Muhammad, Nadeem Muhammad Shahid, Altayb Hisham N, Alshehri Sultan
Department of Biochemistry, Faculty of Science, King Abdulaziz University, Jeddah 21589, Saudi Arabia.
Department of Pharmaceutics, College of Pharmacy, King Saud University, Riyadh 11451, Saudi Arabia.
Polymers (Basel). 2022 Mar 26;14(7):1349. doi: 10.3390/polym14071349.
Piperine (PPN), one of the most investigated phytochemicals, is known to have excellent therapeutic efficacy against a variety of ailments including breast cancer. However, its physicochemical properties such as poor aqueous solubility restrict its clinical application. Therefore, the present investigation was designed to develop PPN encapsulated lipid polymer hybrid nanoparticles (PPN-LPHNPs) to overcome the limitation. The developed PPN-LPHNPs were optimized by the three-factor, three-level Box−Behnken design (33-BBD). The optimized PPN-LPHNPs were then evaluated for their drug release profile, cytotoxicity assay against MDA-MB-231 and MCF-7 cells, and gastrointestinal stability as well as colloidal stability. In addition, the optimized PPN-LPHNPs were evaluated for ex vivo intestinal permeation and in vivo pharmacokinetic in albino Wistar rats. As per the results, the optimized PPN-LPHNPs showed a small average particles size of <160 nm with a low (<0.3) polydispersity index, and highly positive surface charge (>+20 mV). PPN-LPHNPs revealed excellent gastrointestinal as well as colloidal stability and sustained release profiles up to 24 h. Furthermore, PPN-LPHNPs revealed excellent cytotoxicity against both MDA-MB-231 and MCF-7 cancer cells compared to the free PPN. Moreover, animal studies revealed that the PPN-LPHNPs exhibited a 6.02- and 4.55-fold higher intestinal permeation and relative oral bioavailability, respectively, in comparison to the conventional PPN suspension. Thus, our developed LPHNPs present a strong potential for improved delivery of PPN.
胡椒碱(PPN)是研究最多的植物化学物质之一,已知对包括乳腺癌在内的多种疾病具有出色的治疗效果。然而,其物理化学性质,如水溶性差,限制了其临床应用。因此,本研究旨在开发包裹胡椒碱的脂质聚合物杂化纳米颗粒(PPN-LPHNPs)以克服这一限制。通过三因素、三水平的Box-Behnken设计(33-BBD)对所开发的PPN-LPHNPs进行优化。然后对优化后的PPN-LPHNPs进行药物释放曲线评估、对MDA-MB-231和MCF-7细胞的细胞毒性测定、胃肠道稳定性以及胶体稳定性评估。此外,还对优化后的PPN-LPHNPs进行了白化Wistar大鼠的离体肠道渗透和体内药代动力学评估。根据结果,优化后的PPN-LPHNPs平均粒径小,<160 nm,多分散指数低(<0.3),表面电荷高度为正(>+20 mV)。PPN-LPHNPs显示出优异的胃肠道和胶体稳定性以及长达24小时的缓释曲线。此外,与游离PPN相比,PPN-LPHNPs对MDA-MB-231和MCF-7癌细胞均显示出优异的细胞毒性。此外,动物研究表明,与传统的PPN悬浮液相比,PPN-LPHNPs的肠道渗透率和相对口服生物利用度分别高出6.02倍和4.55倍。因此,我们开发的LPHNPs在改善PPN递送方面具有很大的潜力。