Insights into angiosperm evolution, floral development and chemical biosynthesis from the Aristolochia fimbriata genome

被引:0
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作者
Liuyu Qin
Yiheng Hu
Jinpeng Wang
Xiaoliang Wang
Ran Zhao
Hongyan Shan
Kunpeng Li
Peng Xu
Hanying Wu
Xueqing Yan
Lumei Liu
Xin Yi
Stefan Wanke
John E. Bowers
James H. Leebens-Mack
Claude W. dePamphilis
Pamela S. Soltis
Douglas E. Soltis
Hongzhi Kong
Yuannian Jiao
机构
[1] the Chinese Academy of Sciences,State Key Laboratory of Systematic and Evolutionary Botany, Institute of Botany
[2] University of Chinese Academy of Sciences,School of Life Sciences and Center for Genomics and Computational Biology
[3] North China University of Science and Technology,Institute of Botany
[4] Dresden University of Technology,Department of Plant Biology
[5] University of Georgia,Plant Genome Mapping Laboratory
[6] University of Georgia,Department of Biology and Huck Institutes of the Life Sciences
[7] The Pennsylvania State University,Florida Museum of Natural History
[8] University of Florida,Department of Biology
[9] University of Florida,undefined
来源
Nature Plants | 2021年 / 7卷
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摘要
Aristolochia, a genus in the magnoliid order Piperales, has been famous for centuries for its highly specialized flowers and wide medicinal applications. Here, we present a new, high-quality genome sequence of Aristolochia fimbriata, a species that, similar to Amborella trichopoda, lacks further whole-genome duplications since the origin of extant angiosperms. As such, the A. fimbriata genome is an excellent reference for inferences of angiosperm genome evolution, enabling detection of two novel whole-genome duplications in Piperales and dating of previously reported whole-genome duplications in other magnoliids. Genomic comparisons between A. fimbriata and other angiosperms facilitated the identification of ancient genomic rearrangements suggesting the placement of magnoliids as sister to monocots, whereas phylogenetic inferences based on sequence data we compiled yielded ambiguous relationships. By identifying associated homologues and investigating their evolutionary histories and expression patterns, we revealed highly conserved floral developmental genes and their distinct downstream regulatory network that may contribute to the complex flower morphology in A. fimbriata. Finally, we elucidated the genetic basis underlying the biosynthesis of terpenoids and aristolochic acids in A. fimbriata.
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页码:1239 / 1253
页数:14
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