BCDA College of Pharmacy & Technology, 78, Jessore Road (S), Hridaypur, Barasat, Kolkata - 7000127, India.
Department of Chemistry, University of North Bengal, Raja Rammohunpur, Dist. - Darjeeling, West Bengal, Pin - 734013, India.
Curr Drug Deliv. 2020;17(5):422-437. doi: 10.2174/1567201817666200317124022.
This study was focused on the formulation of the multi-unit extended-release peroral delivery device of lamotrigine for better management of epilepsy.
The single-unit extended-release peroral preparations often suffer from all-or-none effect. A significant number of multi-unit delivery systems have been reported as a solution to this problem. But most of them are found to be composed of synthetic, semi-synthetic or their combination having physiological toxicity as well as negative environmental impact. Therefore, fabrication and formulation of multi-unit extended-release peroral preparations with natural, non-toxic, biodegradable polymers employing green manufacturing processes are being appreciated worldwide.
Lamotrigine-loaded extended-release multi-unit beads have been fabricated with the incorporation of a natural polysaccharide Cassia fistula seed gum in calcium-cross-linked alginate matrix employing a simple green process and 23 full factorial design.
The total polymer concentration, polymer ratio and [CaCl2] were considered as independent formulation variables with two different levels of each for the experiment-design. The extended-release beads were then prepared by the ionotropic gelation method using calcium chloride as the crosslinkerions provider. The beads were then evaluated for drug encapsulation efficiency and drug release. ANOVA of all the dependent variables such as DEE, cumulative % drug release at 2h, 5h, 12h, rate constant and dissolution similarity factor (f2) was done by 23 full factorial design using Design-Expert software along with numerical optimization of the independent variables in order to meet USP-reference release profile.
The optimized batch showed excellent outcomes with DEE of 84.7 ± 2.7 (%), CPR2h of 8.41± 2.96 (%), CPR5h of 36.8± 4.7 (%), CPR12h of 87.3 ± 3.64 (%) and f2 of 65.9.
This approach of the development of multi-unit oral devices utilizing natural polysaccharides might be inspiring towards the world-wide effort for green manufacturing of sustained-release drug products by the QbD route.
本研究专注于拉莫三嗪多单位延长释放口服递药装置的制剂开发,以更好地管理癫痫。
单单位延长释放口服制剂常存在全有或全无效应。已报道了许多多单位递药系统作为解决此问题的方案。但其中大多数制剂由合成、半合成或其组合组成,具有生理毒性和负面环境影响。因此,全球范围内都在欣赏使用天然、无毒、可生物降解聚合物以及采用绿色制造工艺来制备和配方设计多单位延长释放口服制剂。
使用简单的绿色工艺和 23 个完全因子设计,在藻酸钠基质中掺入天然多糖瓜儿豆胶,制备载拉莫三嗪的延长释放多单位珠粒。
将总聚合物浓度、聚合物比和[CaCl2]视为独立的制剂变量,每个变量有两个不同水平,用于实验设计。然后通过离子凝胶化法使用氯化钙作为交联剂离子来制备延长释放珠粒。然后评估珠粒的药物包封效率和药物释放。使用 Design-Expert 软件对所有依赖变量(如 DEE、2h、5h、12h 的累积%药物释放、速率常数和溶出相似因子(f2))进行方差分析,采用 23 个完全因子设计,并对独立变量进行数值优化,以符合 USP 参考释放曲线。
优化批显示出优异的结果,DEE 为 84.7±2.7(%),CPR2h 为 8.41±2.96(%),CPR5h 为 36.8±4.7(%),CPR12h 为 87.3±3.64(%),f2 为 65.9。
这种利用天然多糖开发多单位口服装置的方法可能会为全球范围内通过 QbD 路线实现缓释药物产品的绿色制造提供灵感。