Martinez-Castilla León Patricio, Alvarez-Buylla Elena R
Laboratorio de Genética Molecular, Desarrollo y Evolución de Plantas, Instituto de Ecología, National Autonomous University of Mexico, Ap Postal 70-275, Mexico D.F., 04510, Mexico.
Proc Natl Acad Sci U S A. 2003 Nov 11;100(23):13407-12. doi: 10.1073/pnas.1835864100. Epub 2003 Nov 3.
Gene duplication is a substrate of evolution. However, the relative importance of positive selection versus relaxation of constraints in the functional divergence of gene copies is still under debate. Plant MADS-box genes encode transcriptional regulators key in various aspects of development and have undergone extensive duplications to form a large family. We recovered 104 MADS sequences from the Arabidopsis genome. Bayesian phylogenetic trees recover type II lineage as a monophyletic group and resolve a branching sequence of monophyletic groups within this lineage. The type I lineage is comprised of several divergent groups. However, contrasting gene structure and patterns of chromosomal distribution between type I and II sequences suggest that they had different evolutionary histories and support the placement of the root of the gene family between these two groups. Site-specific and site-branch analyses of positive Darwinian selection (PDS) suggest that different selection regimes could have affected the evolution of these lineages. We found evidence for PDS along the branch leading to flowering time genes that have a direct impact on plant fitness. Sites with high probabilities of having been under PDS were found in the MADS and K domains, suggesting that these played important roles in the acquisition of novel functions during MADS-box diversification. Detected sites are targets for further experimental analyses. We argue that adaptive changes in MADS-domain protein sequences have been important for their functional divergence, suggesting that changes within coding regions of transcriptional regulators have influenced phenotypic evolution of plants.
基因复制是进化的一个基础。然而,在基因拷贝的功能分化中,正选择与限制放松的相对重要性仍存在争议。植物MADS-box基因编码在发育的各个方面都起关键作用的转录调节因子,并且经历了广泛的复制以形成一个大家族。我们从拟南芥基因组中获得了104个MADS序列。贝叶斯系统发育树将II型谱系恢复为一个单系群,并解析了该谱系内单系群的分支序列。I型谱系由几个不同的群体组成。然而,I型和II型序列之间基因结构和染色体分布模式的对比表明它们具有不同的进化历史,并支持将基因家族的根置于这两个群体之间。正达尔文选择(PDS)的位点特异性和位点分支分析表明,不同的选择机制可能影响了这些谱系的进化。我们发现了沿导致对植物适应性有直接影响的开花时间基因的分支存在PDS的证据。在MADS和K结构域中发现了具有高概率处于PDS下的位点,这表明这些位点在MADS-box多样化过程中获得新功能方面发挥了重要作用。检测到的位点是进一步实验分析的目标。我们认为,MADS结构域蛋白序列的适应性变化对其功能分化很重要,这表明转录调节因子编码区域内的变化影响了植物的表型进化。