An ancestral MADS-box gene duplication occurred before the divergence of plants and animals

MADS箱 生物 基因复制 基因家族 基因 功能分歧 谱系(遗传) 系统发育学 遗传学 系统发育树 节段重复 分子进化 进化生物学 拟南芥 单系 植物进化 基因组 突变体 克莱德
作者
Elena Álvarez‐Buylla,Soraya Pelaz,Sarah J. Liljegren,Scott E. Gold,Caroline Burgeff,Gary S. Ditta,Lluı́s Ribas de Pouplana,León P. Martínez‐Castilla,Martin F. Yanofsky
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:97 (10): 5328-5333 被引量:533
标识
DOI:10.1073/pnas.97.10.5328
摘要

Changes in genes encoding transcriptional regulators can alter development and are important components of the molecular mechanisms of morphological evolution. MADS-box genes encode transcriptional regulators of diverse and important biological functions. In plants, MADS-box genes regulate flower, fruit, leaf, and root development. Recent sequencing efforts in Arabidopsis have allowed a nearly complete sampling of the MADS-box gene family from a single plant, something that was lacking in previous phylogenetic studies. To test the long-suspected parallel between the evolution of the MADS-box gene family and the evolution of plant form, a polarized gene phylogeny is necessary. Here we suggest that a gene duplication ancestral to the divergence of plants and animals gave rise to two main lineages of MADS-box genes: TypeI and TypeII. We locate the root of the eukaryotic MADS-box gene family between these two lineages. A novel monophyletic group of plant MADS domains (AGL34 like) seems to be more closely related to previously identified animal SRF-like MADS domains to form TypeI lineage. Most other plant sequences form a clear monophyletic group with animal MEF2-like domains to form TypeII lineage. Only plant TypeII members have a K domain that is downstream of the MADS domain in most plant members previously identified. This suggests that the K domain evolved after the duplication that gave rise to the two lineages. Finally, a group of intermediate plant sequences could be the result of recombination events. These analyses may guide the search for MADS-box sequences in basal eukaryotes and the phylogenetic placement of new genes from other plant species.
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