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用于治疗高血压的智能卡拉胶-刺槐豆胶水凝胶颗粒:通过析因设计和临床前评估进行优化。

Smart karaya-locust bean gum hydrogel particles for the treatment of hypertension: Optimization by factorial design and pre-clinical evaluation.

机构信息

Department of Pharmaceutics, Gupta College of Technological Sciences, Asansol, 713301, West Bengal, India(1).

Department of Pharmacy, Indira Gandhi National Tribal University, Amarkantak, Madhya Pradesh, 484887, India.

出版信息

Carbohydr Polym. 2019 Apr 15;210:274-288. doi: 10.1016/j.carbpol.2019.01.069. Epub 2019 Jan 22.

DOI:10.1016/j.carbpol.2019.01.069
PMID:30732764
Abstract

This investigation was undertaken to unveil the controlled drug delivery and preclinical anti-hypertensive potential of a novel interpenetrating biopolymer-based network of karaya gum and carboxymethyl locust bean gum (CLBG). The Williamson synthesis of CLBG was confirmed after analyzing FTIR spectra, degree of O-carboxymethyl group substitution and viscosity. The hydrogel particles (HPs) were developed using aluminium chloride solution as cross-linker. A full 3 factorial design approach was adopted for the optimization of two responses: drug entrapment efficiency and drug release (%) in simulated gastrointestinal conditions at 10 h. FE-SEM images and EDX spectra supported the formation of spherical HPs and successful entrapment of the drug in the HPs. Depending upon formulation variables, the drug entrapment efficiency of the HPs lied in the range of 84-98%. The HP matrix was chemically compatible for carvedilol phosphate as was suggested by infrared, thermal and x-ray analyses. The swelling kinetics of HPs corroborated well with the pH-dependent in vitro drug discharge characteristics. The drug release from HPs was found to follow anomalous transport mechanism with varying contribution of simple diffusion and polymer relaxation as was elucidated by Peppas-Sahlin model equation. Preclinical data suggested that the optimized HPs had an excellent blood pressure lowering activity in male Swiss albino mice up to 10 h.

摘要

本研究旨在揭示新型卡拉胶和羧甲基槐豆胶互穿生物聚合物网络的控制药物释放和临床前抗高血压潜力。通过分析 FTIR 光谱、O-羧甲基取代度和粘度,证实了 CLBG 的 Williamson 合成。使用氯化铝溶液作为交联剂制备水凝胶颗粒 (HPs)。采用完全 3 因子设计方法优化了两个响应:在模拟胃肠道条件下 10 小时的药物包封效率和药物释放 (%)。FE-SEM 图像和 EDX 光谱支持形成球形 HPs 和药物在 HPs 中的成功包封。根据制剂变量,HPs 的药物包封效率在 84-98%范围内。红外、热和 X 射线分析表明,HP 基质与卡维地洛磷酸盐在化学上是相容的。HPs 的溶胀动力学与 pH 依赖性体外药物释放特性非常吻合。Peppas-Sahlin 模型方程表明,药物从 HPs 的释放遵循异常传输机制,其中简单扩散和聚合物松弛的贡献不同。临床前数据表明,优化后的 HPs 在雄性瑞士白化小鼠中具有长达 10 小时的优异降压活性。

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