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A model-dependent approach to correlate accelerated with real-time release from biodegradable microspheres

机译:基于模型的方法将加速与可生物降解微球的实时释放相关联

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摘要

The purpose of this study was to determine the feasibility of applying accelerated in vitro release testing to correlate or predict long-term in vitro release of leuprolide poly(lactideco-glycolide) microspheres. Peptide release was studied using a dialysis technique at 37°C and at elevated temperatures (50°C–60°C) in 0.1 M phosphate buffered saline (PBS) pH 7.4 and 0.1 M acetate buffer pH 4.0. The data were analyzed using a modification, of the Weibull equation. Peptide release was temperature dependent and complete within 30 days at 37°C and 3 to 5 days at the elevated temperatures. In vitro release profiles at the elevated temperatures correlated well with release at 37°C. The shapes of the release profiles at all temperatures were similar. Using the modified Weibull equation, an increase in temperature was characterized by an increase in the model parameter, α, a scaling factor for the apparent rate constant. Complete release at 37°C was shortened from ∼30 days to 5 days at 50°C, 3.5 days at 55°C, 2.25 days at 60°C in PBS pH 7.4, and 3 days at 50°C in acetate buffer pH 4.0. Values for the model parameter β indicated that the shape of the release profiles at 55°C in PBS pH 7.4 (2.740) and 50°C in 0.1 M acetate buffer pH 4.0 (2.711) were similar to that at 37°C (2.577). The Ea for hydration and erosion were determined to be 42.3 and 19.4 kcal/mol, respectively. Polymer degradation was also temperature dependent and had an Ea of 31.6 kcal/mol. Short-term in vitro release studies offer the possibility of correlation with long-term release, thereby reducing the time and expense associated with longterm studies. Accelerated release methodology could be useful in the prediction of long-term release from extended release microsphere dosage forms and may serve as a quality control tool for the release of clinical or commercial batches.
机译:这项研究的目的是确定应用加速的体外释放试验来关联或预测亮丙瑞德聚丙交酯-乙交酯微球的长期体外释放的可行性。使用透析技术在37°C和升高的温度(50°C–60°C)中,在0.1 M磷酸盐缓冲液(PBS)pH 7.4和0.1 M乙酸盐缓冲液pH 4.0中研究了肽的释放。使用Weibull方程的修改对数据进行分析。肽的释放取决于温度,并在37°C下30天之内完成,在高温下3至5天之内完成。高温下的体外释放曲线与37°C下的释放密切相关。在所有温度下释放曲线的形状相似。使用改进的威布尔方程式,温度升高的特征在于模型参数α(表观速率常数的比例因子)的升高。在PBS pH 7.4中,在37°C下完全释放的时间从大约30天缩短为5天,在50°C下为3.5天,在55°C下为3.5天,在60°C下为2.25天,在50°C下为pH 4.0的乙酸盐缓冲液中减少3天。 。模型参数β的值表明,在55°C的PBS pH 7.4(2.740)和50°C在0.1 M的乙酸盐缓冲液pH 4.0(2.711)中的释放曲线形状与在37°C(2.577)时的释放曲线相似。 。测定水合和侵蚀的Ea分别为42.3和19.4kcal / mol。聚合物降解也是温度依赖性的,并且Ea为31.6kcal / mol。短期体外释放研究提供了与长期释放相关的可能性,从而减少了与长期研究相关的时间和费用。加速释放方法可用于预测缓释微球剂型的长期释放,并可作为临床或商业批次释放的质量控制工具。

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