Germplasm Bank of Wild Species, Kunming Institute of Botany, Chinese Academy of Sciences, Kunming, Yunnan 650201, China.
Kunming College of Life Science, University of Chinese Academy of Sciences, Kunming, Yunnan 650201, China.
Syst Biol. 2020 Jul 1;69(4):613-622. doi: 10.1093/sysbio/syaa013.
Phylogenomic analyses have helped resolve many recalcitrant relationships in the angiosperm tree of life, yet phylogenetic resolution of the backbone of the Leguminosae, one of the largest and most economically and ecologically important families, remains poor due to generally limited molecular data and incomplete taxon sampling of previous studies. Here, we resolve many of the Leguminosae's thorniest nodes through comprehensive analysis of plastome-scale data using multiple modified coding and noncoding data sets of 187 species representing almost all major clades of the family. Additionally, we thoroughly characterize conflicting phylogenomic signal across the plastome in light of the family's complex history of plastome evolution. Most analyses produced largely congruent topologies with strong statistical support and provided strong support for resolution of some long-controversial deep relationships among the early diverging lineages of the subfamilies Caesalpinioideae and Papilionoideae. The robust phylogenetic backbone reconstructed in this study establishes a framework for future studies on legume classification, evolution, and diversification. However, conflicting phylogenetic signal was detected and quantified at several key nodes that prevent the confident resolution of these nodes using plastome data alone. [Leguminosae; maximum likelihood; phylogenetic conflict; plastome; recalcitrant relationships; stochasticity; systematic error.].
系统发育基因组学分析有助于解决被子植物生命之树中许多棘手的关系,但由于先前研究中分子数据通常有限且分类群取样不完整,豆科(Leguminosae)这一最大、经济和生态上最重要的科之一的系统发育分辨率仍然较差。在这里,我们通过使用代表该科几乎所有主要分支的 187 种物种的多个经过修改的编码和非编码数据集,全面分析质体规模数据,解决了豆科许多最棘手的节点。此外,我们根据家族复杂的质体进化史,彻底分析了质体中相互冲突的系统发育信号。大多数分析产生了具有强烈统计支持的大体一致的拓扑结构,并为解决亚科 Caesalpinioideae 和 Papilionoideae 早期分支中一些长期存在争议的深系关系提供了有力支持。本研究重建的稳健系统发育骨干为豆科分类、进化和多样化的未来研究奠定了框架。然而,在几个关键节点检测到并量化了相互冲突的系统发育信号,这使得仅使用质体数据无法确定这些节点。[豆科;最大似然法;系统发育冲突;质体;棘手关系;随机性;系统误差。]