Global Brassicaceae phylogeny based on filtering of 1,000-gene dataset

十字花科 生物 系统发育学 系统发育树 核基因 进化生物学 系统基因组学 基因家族 基因 基因组 克莱德 遗传学 植物
作者
Kasper P. Hendriks,Christiane Kiefer,Ihsan A. Al‐Shehbaz,C. Donovan Bailey,Alex Hooft van Huysduynen,Lachezar A. Nikolov,Lars Nauheimer,Alexandre R. Zuntini,Dmitry A. German,Andreas Franzke,Marcus A. Koch,Martin Lysák,Óscar Toro‐Núñez,Barış Özüdoğru,Vanessa R. Invernón,Nora Walden,Olivier Maurin,Nikolai M. Hay,Philip Shushkov,Terezie Mandáková,M. Eric Schranz,Mats Thulin,Michael D. Windham,Ivana Rešetnik,Stanislav Španiel,Elfy Ly,J. Chris Pires,Alex Harkess,Barbara Neuffer,Robert Vogt,Christian Bräuchler,Heimo Rainer,Steven Janssens,Michaela Schmull,Alan Forrest,Alessia Guggisberg,Sue Zmarzty,Brendan J. Lepschi,Neville Scarlett,Fred W. Stauffer,Ines Schönberger,P. B. Heenan,William J. Baker,Félix Forest,Klaus Mummenhoff,Frédéric Lens
出处
期刊:Current Biology [Elsevier BV]
卷期号:33 (19): 4052-4068.e6 被引量:10
标识
DOI:10.1016/j.cub.2023.08.026
摘要

The mustard family (Brassicaceae) is a scientifically and economically important family, containing the model plant Arabidopsis thaliana and numerous crop species that feed billions worldwide. Despite its relevance, most phylogenetic trees of the family are incompletely sampled and often contain poorly supported branches. Here, we present the most complete Brassicaceae genus-level family phylogenies to date (Brassicaceae Tree of Life or BrassiToL) based on nuclear (1,081 genes, 319 of the 349 genera; 57 of the 58 tribes) and plastome (60 genes, 265 genera; all tribes) data. We found cytonuclear discordance between the two, which is likely a result of rampant hybridization among closely and more distantly related lineages. To evaluate the impact of such hybridization on the nuclear phylogeny reconstruction, we performed five different gene sampling routines, which increasingly removed putatively paralog genes. Our cleaned subset of 297 genes revealed high support for the tribes, whereas support for the main lineages (supertribes) was moderate. Calibration based on the 20 most clock-like nuclear genes suggests a late Eocene to late Oligocene origin of the family. Finally, our results strongly support a recently published new family classification, dividing the family into two subfamilies (one with five supertribes), together representing 58 tribes. This includes five recently described or re-established tribes, including Arabidopsideae, a monogeneric tribe accommodating Arabidopsis without any close relatives. With a worldwide community of thousands of researchers working on Brassicaceae and its diverse members, our new genus-level family phylogeny will be an indispensable tool for studies on biodiversity and plant biology.

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