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使用人工神经网络优化用于同时测定固定剂量复方制剂中利福平、异烟肼和吡嗪酰胺的稳定性指示高效液相色谱法。

Optimization of a stability-indicating HPLC method for the simultaneous determination of rifampicin, isoniazid, and pyrazinamide in a fixed-dose combination using artificial neural networks.

作者信息

Glass B D, Agatonovic-Kustrin S, Chen Y-J, Wisch M H

机构信息

School of Pharmacy and Molecular Sciences, James Cook University, Townsville, QLD 4811, Australia.

出版信息

J Chromatogr Sci. 2007 Jan;45(1):38-44. doi: 10.1093/chromsci/45.1.38.

Abstract

The aim of this study is to develop and optimize a simple and reliable high-performance liquid chromatography (HPLC) method for the simultaneous determination of rifampicin (RIF), isoniazid (INH), and pyrazinamide (PZA) in a fixed-dose combination. The method is developed and optimized using an artificial neural network (ANN) for data modeling. Retention times under different experimental conditions (solvent, buffer type, and pH) and using four different column types (referred to as the input and testing data) are used to train, validate, and test the ANN model. The developed model is then used to maximize HPLC performance by optimizing separation. The sensitivity of the separation (retention time) to the changes in column type, concentration, and type of solvent and buffer in the mobile phase are investigated. Acetonitrile (ACN) as a solvent and tetrabutylammonium hydroxide (tBAH), used to adjust pH, have the greatest influence on the chromatographic separation of PZA and INH and are used for the final optimization. The best separation and reasonably short retention times are produced on the micro-bondapak C18, 4.6 x 250-mm column, 10 microm/125 A using ACN-tBAH (42.5:57.5, v/v) (0.0002M) as the mobile phase, and optimized at a final pH of 3.10.

摘要

本研究的目的是开发并优化一种简单可靠的高效液相色谱(HPLC)方法,用于同时测定固定剂量复方制剂中的利福平(RIF)、异烟肼(INH)和吡嗪酰胺(PZA)。该方法通过使用人工神经网络(ANN)进行数据建模来开发和优化。利用不同实验条件(溶剂、缓冲液类型和pH值)下以及使用四种不同柱型(作为输入和测试数据)时的保留时间来训练、验证和测试ANN模型。然后,利用所开发的模型通过优化分离来最大化HPLC性能。研究了分离(保留时间)对柱型、浓度以及流动相中溶剂和缓冲液类型变化的灵敏度。乙腈(ACN)作为溶剂以及用于调节pH值的氢氧化四丁基铵(tBAH)对PZA和INH的色谱分离影响最大,并用于最终优化。使用ACN - tBAH(42.5:57.5,v/v)(0.0002M)作为流动相,在4.6×250 - mm的微键合硅胶C18柱(10微米/125 Å)上可实现最佳分离且保留时间合理,并在最终pH值为3.10时进行了优化。

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