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Serum-Free Medium Optimization Based on Trial Design and Support Vector Regression

机译:基于试验设计和支持向量回归的无血清培养基优化

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摘要

The Plackett-Burman design and support vector machine (SVM) were reported to be used on many fields such as some feature selections, protein structure prediction, or forecasting of other situations. Here, with suspension adapted Chinese hamster ovary (CHO) cells as the object of study, a serum-free medium for the culture of CHO cells in suspension was optimized by this method. Support vector machine based on genetic algorithm was used to predict the growth rate of CHO and prove the results from the trial designs. Experimental results indicated that ZnSO4, transferrin, and bovine serum albumin (BSA) were important ones. The same conclusion was arrived at when the support vector regression model analyzed the experimental results. With the methods mentioned, the influence of 7 medium supplements on the growth of CHO cells in suspension was evaluated efficiently.
机译:据报道,Plackett-Burman设计和支持向量机(SVM)可用于许多领域,例如某些特征选择,蛋白质结构预测或其他情况的预测。在此,以悬浮培养的中国仓鼠卵巢(CHO)细胞为研究对象,通过该方法优化了用于悬浮培养CHO细胞的无血清培养基。利用基于遗传算法的支持向量机预测CHO的生长速度,并通过试验设计证明了结果。实验结果表明,ZnSO4,转铁蛋白和牛血清白蛋白(BSA)是重要的。当支持向量回归模型分析实验结果时,得出相同的结论。通过上述方法,有效评估了7种培养基补充剂对CHO细胞在悬浮液中生长的影响。

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