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利用遗传算法对大肠杆菌代谢途径的比较

Comparison of Metabolic Pathways in Escherichia coli by Using Genetic Algorithms.

作者信息

Ortegon Patricia, Poot-Hernández Augusto C, Perez-Rueda Ernesto, Rodriguez-Vazquez Katya

机构信息

Departamento de Ingeniería de Sistemas Computacionales y Automatización, IIMAS, Universidad Nacional Autónoma de México, Mexico.

Departamento de Ingeniería de Sistemas Computacionales y Automatización, IIMAS, Universidad Nacional Autónoma de México, Mexico ; Departamento de Ingeniería Celular y Biocatálisis, Instituto de Biotecnología, Universidad Nacional Autónoma de México, Cuernavaca, Morelos, Mexico.

出版信息

Comput Struct Biotechnol J. 2015 Apr 9;13:277-85. doi: 10.1016/j.csbj.2015.04.001. eCollection 2015.

Abstract

In order to understand how cellular metabolism has taken its modern form, the conservation and variations between metabolic pathways were evaluated by using a genetic algorithm (GA). The GA approach considered information on the complete metabolism of the bacterium Escherichia coli K-12, as deposited in the KEGG database, and the enzymes belonging to a particular pathway were transformed into enzymatic step sequences by using the breadth-first search algorithm. These sequences represent contiguous enzymes linked to each other, based on their catalytic activities as they are encoded in the Enzyme Commission numbers. In a posterior step, these sequences were compared using a GA in an all-against-all (pairwise comparisons) approach. Individual reactions were chosen based on their measure of fitness to act as parents of offspring, which constitute the new generation. The sequences compared were used to construct a similarity matrix (of fitness values) that was then considered to be clustered by using a k-medoids algorithm. A total of 34 clusters of conserved reactions were obtained, and their sequences were finally aligned with a multiple-sequence alignment GA optimized to align all the reaction sequences included in each group or cluster. From these comparisons, maps associated with the metabolism of similar compounds also contained similar enzymatic step sequences, reinforcing the Patchwork Model for the evolution of metabolism in E. coli K-12, an observation that can be expanded to other organisms, for which there is metabolism information. Finally, our mapping of these reactions is discussed, with illustrations from a particular case.

摘要

为了理解细胞代谢是如何形成其现代形式的,我们使用遗传算法(GA)评估了代谢途径之间的保守性和变异性。GA方法考虑了KEGG数据库中所存储的大肠杆菌K-12完整代谢的信息,并通过广度优先搜索算法将属于特定途径的酶转化为酶促步骤序列。这些序列代表了基于酶委员会编号中编码的催化活性而相互连接的连续酶。在后续步骤中,使用GA以全对全(成对比较)的方法对这些序列进行比较。根据其适应度测量选择个体反应作为后代的亲本,这些后代构成新一代。所比较的序列用于构建一个相似性矩阵(适应度值),然后使用k-中心点算法对其进行聚类。总共获得了34个保守反应簇,最后使用优化后的多序列比对GA将它们的序列与每组或每个簇中包含的所有反应序列进行比对。通过这些比较,与相似化合物代谢相关的图谱也包含相似的酶促步骤序列,这加强了大肠杆菌K-12代谢进化的拼凑模型,这一观察结果可以扩展到其他有代谢信息的生物体。最后,我们结合一个具体案例的图示讨论了这些反应的图谱。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b925/4423528/c3b718f9fc74/gr1.jpg

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