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MINLP Models for the Synthesis of Optimal Peptide Tags and Downstream Protein Processing

机译:MINLP模型用于合成最佳肽标签和下游蛋白质加工

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摘要

The development of systematic methods for the synthesis of downstream protein processing operations has seen growing interest in recent years,as purification is often the most complex and costly stage in biochemical production plants.The objective of the work presented here is to develop mathematical models based on mixed integer optimization techniques,which integrate the selection of optimal peptide purification tags into an established framework for the synthesis of protein purification processes.Peptide tags are comparatively short sequences of amino acids fused onto the protein product,capable of reducing the required purification steps.The methodology is illustrated through its application on two example protein mixtures involving up to 13 contaminants and a set of 11 candidate chromatographic steps.The results are indicative of the benefits resulting by the appropriate use of peptide tags in purification processes and provide a guideline for both optimal tag design and downstream process synthesis.
机译:近年来,对合成下游蛋白质加工操作的系统方法的兴趣日益增长,因为纯化通常是生化生产工厂中最复杂,成本最高的阶段。此处介绍的工作目的是基于混合整数优化技术,将最佳肽纯化标签的选择整合到一个用于蛋白质纯化过程合成的已建立框架中。肽标签是融合到蛋白质产物上的相对短的氨基酸序列,能够减少所需的纯化步骤。通过对涉及多达13种污染物和11种候选色谱步骤的两种示例蛋白质混合物的应用举例说明了该方法学,结果表明了在纯化过程中适当使用肽标签所带来的好处,并为两种最佳方法提供了指导标签设计和下层m过程合成。

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