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Genome-scale microbial in silico models: the constraints-based approach

机译:基因组规模的微生物计算机模型:基于约束的方法

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Genome sequencing and annotation has enabled the reconstruction of genome-scale metabolic networks. The phenotypic functions that these networks allow for can be defined and studied using constraints-based models and in silico simulation. Several useful predictions have been obtained from such in silico models, including substrate preference, consequences of gene deletions, optimal growth patterns, outcomes of adaptive evolution and shifts in expression profiles. The success rate of these predictions is typically in the order of 70―90% depending on the organism studied and the type of prediction being made. These results are useful as a basis for iterative model building and for several practical applications.
机译:基因组测序和注释使基因组规模的代谢网络得以重建。可以使用基于约束的模型和计算机模拟来定义和研究这些网络允许的表型功能。从这种计算机模型中已经获得了一些有用的预测,包括底物偏好,基因缺失的后果,最佳生长方式,适应性进化的结果和表达谱的变化。这些预测的成功率通常在70%至90%左右,具体取决于所研究的生物体和进行的预测类型。这些结果可作为构建迭代模型和一些实际应用的基础。

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