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Regulating Drug Release Behavior and Kinetics from Matrix Tablets Based on Fine Particle-Sized Ethyl Cellulose Ether Derivatives: An In Vitro and In Vivo Evaluation

机译:基于细颗粒尺寸的乙基纤维素醚衍生物调节基质片剂的药物释放行为和动力学:体内和体外评估

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摘要

The design and fabrication of sustained/controlled release dosage forms, employing new excipients capable of extending/controlling the release of drugs from the dosage forms over prolonged periods, has worked well in achieving optimally enhanced therapeutic levels of the drugs. In this sense, the objective of this study was to investigate the suitability of selected cellulose ether derivatives for use in direct compression (DC) and as efficient drug release controlling agents. Controlled release matrix tablets of ciprofloxacin were prepared at different drug-to-polymer (D : P) ratios by direct compression using a fine particle sized ethylcellulose ether derivative (ETHOCEL Standard Premium 7FP) as rate controlling polymer. The tablets obtained were evaluated for various physico-chemical characteristics and in-vitro drug release studies were conducted in phosphate buffer (pH 7.4) using PharmaTest dissolution apparatus at constant temperature of 37°C ± 0.1. Similarity factor f 2 was employed to the release profiles of test formulations and were compared with marketed ciprofloxacin conventional tablets. Drug release mechanism and the kinetics involved were investigated by fitting the release profile data to various kinetic models. It was found that with increasing the proportion of ethylcellulose ether derivative in the matrix, the drug release was significantly extended up to 24 hours. The tablets exhibited zero order or nearly zero order drug transport mechanism. In vivo drug release performance of the developed controlled release tablets and reference conventional tablets containing ciprofloxacin were determined in rabbit serum according to randomized two-way crossover study design using High Performance Liquid Chromatography. Several bioavailability parameters of both the test tablets and conventional tablets including C max⁡, T max⁡ and AUC0-t were compared which showed an optimized C max⁡ and T max⁡ (P < 0.05). A good correlation was obtained between in vitro drug release and in vivo drug absorption with correlation value (R 2 = 0.934). Relative bioavailability was found to be 93%. Reproducibility of manufacturing process and accelerated stability of the developed tablets were performed in stability chamber at 40 ± 2°C and 75 ± 5% relative humidity for a period of 6 months and were found to be stable throughout the stability period.
机译:使用能够在延长的时间内延长/控制药物从剂型中释放的新赋形剂的持续/控制释放剂型的设计和制造,在实现最佳治疗水平的药物方面表现良好。从这个意义上讲,本研究的目的是研究所选纤维素醚衍生物在直接压片(DC)中用作有效药物释放控制剂的适用性。环丙沙星的控释基质片通过使用细粒度的乙基纤维素醚衍生物(ETHOCEL Standard Premium 7FP)作为速率控制聚合物直接压制,以不同的药物与聚合物(D:P)比率制备。评价获得的片剂的各种理化特性,并使用PharmaTest溶出仪在37°C±0.1恒温下在磷酸盐缓冲液(pH 7.4)中进行体外药物释放研究。将相似因子f 2用于测试制剂的释放曲线,并将其与市售环丙沙星常规片剂进行比较。通过将释放曲线数据拟合到各种动力学模型来研究药物释放机理和涉及的动力学。发现随着基质中乙基纤维素醚衍生物的比例增加,药物释放显着延长至24小时。片剂表现出零级或接近零级的药物转运机制。根据使用高效液相色谱的随机双向转换研究设计,在兔血清中确定了开发的控释片剂和含环丙沙星的参考常规片剂的体内药物释放性能。比较了测试片剂和常规片剂的几个生物利用度参数,包括Cmax⁡,Tmax⁡和AUC0-t,它们显示了优化的Cmax⁡和Tmax⁡(P <0.05)。体外药物释放与体内药物吸收之间具有良好的相关性(R 2 = 0.934)。发现相对生物利用度为93%。在稳定室中在40±2°C和75±5%相对湿度下进行6个月的制造过程可重复性和所开发片剂的加速稳定性,发现在整个稳定期内均保持稳定。

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