Department of Pharmaceutics and Industrial Pharmacy, Faculty of Pharmacy, Cairo University, Cairo, Egypt.
School of Pharmacy, New Giza University, Giza, Egypt.
Int J Nanomedicine. 2021 Feb 11;16:1005-1019. doi: 10.2147/IJN.S297634. eCollection 2021.
Development of hyaluronic acid conjugated metformin-phospholipid sonocomplexes (HA-MPS), a biphasic complexation product compiled for enhancing both the lipophilicity and targeting potential of Metformin (MET) to CD44 receptors on pancreatic cancer.
MET was chemically conjugated to hyaluronic acid (HA) via amide coupling reaction. Then, the HA conjugated MET was physically conjugated to Lipoid™S100 via ultrasound irradiation. A combined D-optimal design was implemented to statistically optimize formulation variables. The HA-MPS were characterized through solubility studies, partition coefficient, drug content uniformity, particle size and zeta potential. The optimized HA-MPS was tested via proton nuclear magnetic resonance, infrared spectroscopy to elucidate the nature of physicochemical interactions in the complex which was further scrutinized on molecular level via molecular docking and dynamic simulation.
The solubility and partition studies showed a lipophilicity enhancement up to 67 folds as they adopted inverted micelles configuration based on the packing parameter hypothesis. The optimized HA-MPS showed 11.5 folds lower IC, extra 25% reduction in oxygen consumption rate, better reduction in hypoxia-inducible factor and reactive oxygen species in MiaPaCa-2 cells.
These results proved better internalization of MET which was reflected by abolishing hypoxic tumour microenvironment, a mainstay toward a normoxic and less resistant pancreatic cancer.
开发透明质酸结合二甲双胍-磷脂超声复合物(HA-MPS),这是一种双相复合物,旨在提高二甲双胍(MET)的亲脂性和对胰腺癌 CD44 受体的靶向性。
通过酰胺偶联反应将 MET 化学偶联到透明质酸(HA)上。然后,通过超声辐射将 HA 结合的 MET 物理偶联到 Lipoid™S100 上。采用联合 D-最优设计对制剂变量进行统计学优化。通过溶解度研究、分配系数、药物含量均匀性、粒径和 Zeta 电位对 HA-MPS 进行了表征。通过质子核磁共振、红外光谱对优化后的 HA-MPS 进行了测试,以阐明复合物中物理化学相互作用的性质,并通过分子对接和动态模拟进一步在分子水平上进行了详细研究。
溶解度和分配研究表明,亲脂性增强了 67 倍,因为它们采用了基于堆积参数假设的反胶束构型。优化后的 HA-MPS 显示出 11.5 倍的 IC 降低,耗氧率降低 25%,MiaPaCa-2 细胞中缺氧诱导因子和活性氧的减少更好。
这些结果证明了 MET 的内化更好,这反映在消除缺氧肿瘤微环境方面,这是向正常和耐药性较低的胰腺癌转变的主要原因。