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Modeling and simulation of breakthrough curves during purification of two chitosanases from Metarhizium anisoptiae using ion-exchange with expanded bed adsorption chromatography

机译:离子交换-扩展床吸附色谱法纯化茴香分离的两种壳聚糖酶过程中的穿透曲线建模与模拟

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摘要

A mathematical model was developed to predict breakthrough curves during purification of the two chitosanases from Metarhizium anisopliae by expanded bed adsorption, taking into account the axial dispersion of liquid and using Streamline DEAE and SP XL adsorbents, anion and cation exchange resins, respectively. All the experiments were performed without clarification (with cells) aiming at the reduction of unit operations in future projects of separation processes, thereby reducing capital and operating costs. Chitosanases are enzymes that hydrolyze the carbohydrate chitosan, resulting in oligosaccharides that have many remarkable biological activities, such as anti-cancer, anti-HIV and antioxidant activities. The two adsorbents had similar performance in relation to hydrodynamics and mass transfer. The results of the parametric sensitivity analysis agree with the literature, and the model was validated with an average high degree of fit (94.68%) between simulated and experimental data obtained in this work.
机译:考虑到液体的轴向分散并分别使用Streamline DEAE和SP XL吸附剂,阴离子和阳离子交换树脂,开发了一个数学模型,以预测通过扩张床吸附从金属歧杆菌纯化两种壳聚糖酶过程中的突破曲线。所有实验均未进行澄清(使用单元),目的是减少分离工艺未来项目中的单元操作,从而降低了资金和运营成本。壳聚糖酶是一种水解碳水化合物壳聚糖的酶,其产生的寡糖具有许多非凡的生物学活性,例如抗癌,抗HIV和抗氧化活性。两种吸附剂在流体力学和传质方面具有相似的性能。参数敏感性分析的结果与文献一致,并且在该工作中获得的模拟数据与实验数据之间的平均高度拟合度(94.68%)验证了该模型。

著录项

  • 来源
    《The Korean journal of chemical engineering》 |2014年第4期|684-691|共8页
  • 作者单位

    Northeast Biotechnology Network (RENORBIO), Tiradentes University (UNIT), Aracaju/SE, Brazil,Biochemical Engineering Laboratory, Department of Chemical Engineering,Federal University of Rio Grande do Norte (UFRN), Natal/RN, 59072-970, Brazil,Technology and Research Institute (ITP), Biomaterial Laboratory (LBMAT), Av. Murilo Dantas 300,Farolandia, Aracaju/SE, 49032-490, Brazil;

    Biochemical Engineering Laboratory, Department of Chemical Engineering,Federal University of Rio Grande do Norte (UFRN), Natal/RN, 59072-970, Brazil;

    Biochemical Engineering Laboratory, Department of Chemical Engineering,Federal University of Rio Grande do Norte (UFRN), Natal/RN, 59072-970, Brazil;

    Biochemical Engineering Laboratory, Department of Chemical Engineering,Federal University of Rio Grande do Norte (UFRN), Natal/RN, 59072-970, Brazil;

    Biochemical Engineering Laboratory, Department of Chemical Engineering,Federal University of Rio Grande do Norte (UFRN), Natal/RN, 59072-970, Brazil;

    Northeast Biotechnology Network (RENORBIO), Tiradentes University (UNIT), Aracaju/SE, Brazil,Technology and Research Institute (ITP), Biomaterial Laboratory (LBMAT), Av. Murilo Dantas 300,Farolandia, Aracaju/SE, 49032-490, Brazil;

    Biochemical Engineering Laboratory, Department of Chemical Engineering,Federal University of Rio Grande do Norte (UFRN), Natal/RN, 59072-970, Brazil;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Modeling; Expanded Bed Adsorption; Purification; Chitosanase; Metarhizium anisopliae;

    机译:造型;膨胀床吸附;纯化;壳聚糖酶拟南芥;

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