Department of Chemical Engineering, National Institute of Technology, Tiruchirappalli 620015, India.
Department of Chemical Engineering, National Institute of Technology, Tiruchirappalli 620015, India..
Int J Biol Macromol. 2020 May 15;151:293-304. doi: 10.1016/j.ijbiomac.2020.02.172. Epub 2020 Feb 18.
A novel progesterone-receptor targeted nanohybrid carrier based delivery of hesperidin was investigated in the present work. Casein‑calcium ferrite nanohybrid carrier was synthesized using desolvation followed by ionic-gelation. The citrus peel extracted hesperidin drug (CHD) was encapsulated in the carrier via pH based coacervation, after which the targeting ligand progesterone was conjugated through activate ester procedure. The carrier formulation was characterized using techniques like XRD, FTIR, SEM, VSM and DLS. The bioactive components in CHD were analyzed using HPLC. Taguchi optimization gave a maximum of 89.54% hesperidin encapsulation in the carrier. Incorporation of superparamagnetic calcium ferrite nanoparticles resulted in improved drug encapsulation and magnetic induced drug delivery. The carrier exhibited a stimuli-responsive drug release behavior, with good stability at physiological pH (7.4) and a higher release under acidic pH (5.4 and 1.2) favoring anticancer applications. The drug release followed Fickian diffusion mechanism as predicted by different kinetic models. Cell viability assay on L929 fibroblast cells verified the biocompatibility of the formulation. The specific recognition and targeted chemotherapy rendered by the progesterone-conjugated carrier enhanced the cytotoxicity of CHD against SKOV-3 ovarian and MDA-MB-231 breast cancer cells, resulting in a significant 30-fold reduction in the (Half-maximal inhibitory concentration) IC values.
本工作研究了一种基于孕激素受体靶向的新型纳米杂化载体递送橙皮苷。采用去溶剂化-离子凝胶化法合成了酪蛋白-钙铁氧体纳米杂化载体。通过 pH 共凝聚将从柑橘皮中提取的橙皮苷药物(CHD)包封在载体中,然后通过激活酯法将靶向配体孕激素连接到载体上。采用 XRD、FTIR、SEM、VSM 和 DLS 等技术对载体配方进行了表征。采用 HPLC 分析 CHD 中的生物活性成分。Taguchi 优化给出了载体中橙皮苷最大包封率 89.54%。超顺磁性钙铁氧体纳米粒子的加入提高了药物的包封率和磁诱导药物释放。载体表现出刺激响应性药物释放行为,在生理 pH(7.4)下具有良好的稳定性,在酸性 pH(5.4 和 1.2)下具有更高的释放率,有利于抗癌应用。药物释放遵循菲克扩散机制,这与不同动力学模型的预测一致。L929 成纤维细胞的细胞活力测定验证了该配方的生物相容性。孕激素缀合载体的特异性识别和靶向化疗增强了 CHD 对 SKOV-3 卵巢和 MDA-MB-231 乳腺癌细胞的细胞毒性,导致(半数最大抑制浓度)IC 值显著降低 30 倍。