Antoniraj M Gover, Ayyavu Mahesh, Henry Linda Jeeva Kumari, Nageshwar Rao Goutham, Natesan Subramanian, Sundar D Sathish, Kandasamy Ruckmani
a Department of Pharmaceutical Technology , Centre for Excellence in Nanobio Translational Research (CENTRE), Anna University , BIT Campus , Tiruchirappalli , India.
b Centre for Excellence in Genomic Sciences, School of Biological Sciences , Madurai Kamaraj University , Madurai , India.
Drug Dev Ind Pharm. 2018 Mar;44(3):365-376. doi: 10.1080/03639045.2017.1371741. Epub 2017 Dec 5.
Biodegradable materials like chitosan (CH) and methoxy polyethylene glycol (mPEG) are widely being used as drug delivery carriers for various therapeutic applications. In this study, copolymer (CH-g-mPEG) of CH and carboxylic acid terminated mPEG was synthesized by carbodiimide-mediated acid amine reaction. The resultant hydrophilic copolymer was characterized by Fourier transform infrared spectroscopy and H NMR studies, revealing its relevant functional bands and proton peaks, respectively. Blank polymeric nanoparticles (B-PNPs) and 5-fluorouracil loaded polymeric nanoparticles (5-FU-PNPs) were formulated by ionic gelation method. Furthermore, folic acid functionalized FA-PNPs and FA-5-FU-PNPs were prepared for folate receptor-targeted drug delivery. FA-5-FU-PNPs were characterized by particle size, zeta potential, and in vitro drug release studies, resulting in 197.7 nm, +29.9 mv, and sustained drug release of 88% in 24 h, respectively. Cytotoxicity studies were performed for FA-PNPs and FA-5-FU-PNPs in MCF-7 cell line, which exhibited a cell viability of 80 and 41%, respectively. In vitro internalization studies were carried out for 5-FU-PNPs and FA-5-FU-PNPs which demonstrated increased cellular uptake of FA-5-FU-PNPs by receptor-mediated transport. Significant (p < .01) reduction (1.5-fold) of reactive oxygen species (ROS) accumulation was observed in lipopolysaccharides-stimulated RAW264.7 macrophages, revealing its potent antioxidant property. From the obtained results, it is concluded that folic acid functionalization of 5-FU-PNPs is an ideal approach for sustained and targeted drug delivery, thereby influencing better therapeutic effect.
壳聚糖(CH)和甲氧基聚乙二醇(mPEG)等可生物降解材料正被广泛用作各种治疗应用的药物递送载体。在本研究中,通过碳二亚胺介导的酸胺反应合成了CH与羧酸封端的mPEG的共聚物(CH-g-mPEG)。所得亲水性共聚物通过傅里叶变换红外光谱和核磁共振氢谱研究进行表征,分别揭示了其相关的官能团谱带和质子峰。通过离子凝胶法制备了空白聚合物纳米颗粒(B-PNPs)和负载5-氟尿嘧啶的聚合物纳米颗粒(5-FU-PNPs)。此外,制备了叶酸功能化的FA-PNPs和FA-5-FU-PNPs用于叶酸受体靶向药物递送。通过粒径、zeta电位和体外药物释放研究对FA-5-FU-PNPs进行表征,结果分别为197.7 nm、+29.9 mV,且在24小时内药物持续释放率为88%。对FA-PNPs和FA-5-FU-PNPs在MCF-7细胞系中进行了细胞毒性研究,其细胞活力分别为80%和41%。对5-FU-PNPs和FA-5-FU-PNPs进行了体外内化研究,结果表明FA-5-FU-PNPs通过受体介导的转运增加了细胞摄取。在脂多糖刺激的RAW264.7巨噬细胞中观察到活性氧(ROS)积累显著(p < 0.01)减少(1.5倍),揭示了其强大的抗氧化性能。从所得结果得出结论,5-FU-PNPs的叶酸功能化是实现持续和靶向药物递送的理想方法,并由此产生更好的治疗效果。