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Using bees hill flux balance analysis (BHFBA) for in silico microbial strain optimization

机译:使用蜜蜂希尔通量平衡分析(BHFBA)进行计算机微生物菌株优化

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摘要

Microbial strains can be manipulated to improve product yield and improve growth characteristics. Optimization algorithms are developed to identify the effects of gene knockout on the results. However, this process is often faced the problem of being trapped in local minima and slow convergence due to repetitive iterations of algorithm. In this paper, we proposed Bees Hill Flux Balance Analysis (BHFBA) which is a hybrid of Bees Algorithm, Hill Climbing Algorithm and Flux Balance Analysis to solve the problems and improve the performance in predicting optimal sets of gene deletion for maximizing the growth rate and production yield of desired metabolite. Escherichia coli is the model organism in this paper. The list of knockout genes, growth rate and production yield after the deletion are the results from the experiments. BHFBA performed better in term of computational time, stability and production yield.
机译:可以控制微生物菌株以提高产品产量并改善生长特性。开发了优化算法以鉴定基因敲除对结果的影响。然而,由于算法的重复迭代,该过程经常面临陷入局部极小和收敛缓慢的问题。在本文中,我们提出了Bees Hill通量平衡分析(BHFBA),它是Bees算法,Hill Climbing算法和Flux Balance Analysis的混合体,以解决问题并提高预测最佳基因缺失集的性能,从而最大化增长率和所需代谢产物的产量。大肠杆菌是本文的典型生物。缺失后的敲除基因列表,生长速率和产量是实验结果。 BHFBA在计算时间,稳定性和生产良率方面表现更好。

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