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Estimation of ancestral gene set of bilaterian animals and its implication to dynamic change of gene content in bilaterian evolution.

作者信息

Ogura Atsushi, Ikeo Kazuho, Gojobori Takashi

机构信息

Center for Information Biology and DNA Data Bank of Japan, National Institute of Genetics, Yata 1111, Mishima, Shizuoka 411-8540, Japan.

出版信息

Gene. 2005 Jan 17;345(1):65-71. doi: 10.1016/j.gene.2004.11.036. Epub 2005 Jan 5.

DOI:10.1016/j.gene.2004.11.036
PMID:15716111
Abstract

To understand the process of bilaterian evolution, we estimated ancestral gene sets at the split of plant-animal-fungi and the divergence of bilaterian animals and from 1,236,790 non-redundant genes. We, then, examined how the numbers of the gene clusters have changed since the split. As a result, we estimated the numbers of gene clusters in the ancestral gene sets of plant-animal-fungi and bilaterian animals to be at least 2469 and 6577, respectively. Thus, we found a 2.7-fold increase in the number of gene clusters during the period from the evolutionary split of plant-animal-fungi to the divergence of bilaterian animals. Moreover, when we compared these numbers of ancestral gene clusters with those of extant animals such as the nematode, fly, mouse and human, we found that the extant bilaterian animals have retained more than 3500 gene clusters of the ancestral gene set, and have lost more than 1600 gene clusters. It suggests that these processes of genomic diversification provided bilaterian animals with molecular basis for species diversity.

摘要

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