Drug Delivery Research Group, University Institute of Pharmaceutical Sciences, Punjab University, Chandigarh, 160014, India; Novel Drug Delivery Research Laboratory, Adina Institute of Pharmaceutical Sciences, Sagar, 470002, India.
Pharmaceutical Nanotechnology Division, Adina Institute of Pharmaceutical Sciences, Sagar, 470002, India.
Int J Pharm. 2015 Nov 10;495(1):220-233. doi: 10.1016/j.ijpharm.2015.08.028. Epub 2015 Aug 28.
The current study was embarked upon to develop "optimized" alginate coated chitosan microparticles (ACMs) loaded with Diphtheria toxoid (DTx) employing formulation by design approach. The developed system was characterized for particle size, zeta potential, surface morphology, acidic degradation protection studies, in process stability studies, storage stability studies and in-vivo uptake studies. Microparticles with minimum of average size of 5 μm (PDI, 0.184) were chosen after optimizing the composition and process conditions. The optimized chitosan microparticles were subjected to alginate coating for better protection of loaded antigen till it reached to uptake site i.e. M cells in the Peyer's patches (PPs) and transport of higher amount antigen to the PPs. The zeta-potential values for uncoated chitosan microparticles and ACMs were found to be +29 ± 3.3 mV and -32.6 ± 4.2 mV, respectively. This change of zeta potential, for uncoated to coated, can be explained by the fact that the coating of alginate on chitosan microparticles led to negative side of the zeta potential by virtue of its predominance on the surface. The developed ACMs were able to transport the antigen effectively to the M cell as revealed by confocal laser scanning microscopy. Further, DTx-loaded ACMs demonstrated significant immune responses at serum IgG as well as mucosal sIgA level.
本研究旨在采用设计型配方方法,开发载有白喉类毒素 (DTx) 的“优化”海藻酸钠包被壳聚糖微球 (ACMs)。所开发的系统经过粒径、Zeta 电位、表面形态、酸性降解保护研究、过程稳定性研究、储存稳定性研究和体内摄取研究的表征。在优化成分和工艺条件后,选择具有最小平均粒径 5μm(PDI,0.184)的微球。为了更好地保护负载的抗原,直到它到达摄取部位,即派尔氏斑 (PPs) 中的 M 细胞,并将更多的抗原转运到 PPs,对优化的壳聚糖微球进行了海藻酸钠包衣。未包被壳聚糖微球和 ACMs 的 Zeta 电位值分别为+29±3.3 mV 和-32.6±4.2 mV。这种 Zeta 电位从未包被到包被的变化可以用这样一个事实来解释,即海藻酸钠在壳聚糖微球上的优势导致了海藻酸钠在壳聚糖微球上的优势,从而导致了 Zeta 电位的负向。通过共聚焦激光扫描显微镜揭示,开发的 ACMs 能够将抗原有效地转运到 M 细胞。此外,负载 DTx 的 ACMs 在血清 IgG 以及粘膜 sIgA 水平上均表现出显著的免疫反应。