Water wisteria genome reveals environmental adaptation and heterophylly regulation in amphibious plants

Author:

Li Gaojie12,Zhao Xuyao12,Yang Jingjing12,Hu Shiqi3,Ponnu Jathish4ORCID,Kimura Seisuke56,Hwang Inhwan7ORCID,Torii Keiko U.8910ORCID,Hou Hongwei12ORCID

Affiliation:

1. The State Key Laboratory of Freshwater Ecology and Biotechnology Institute of Hydrobiology, Chinese Academy of Sciences Wuhan Hubei China

2. College of Advanced Agricultural Sciences University of Chinese Academy of Sciences Beijing China

3. Laboratory of Marine Biological Resources Development and Utilization Zhejiang Marine Development Research Institute Zhoushan Zhejiang China

4. Joseph Gottlieb Kölreuter Institute for Plant Sciences Karlsruhe Institute of Technology Karlsruhe Germany

5. Faculty of Life Sciences Kyoto Sangyo University Kyoto Japan

6. Center for Plant Sciences Kyoto Sangyo University Kyoto Japan

7. Department of Life Science Pohang University of Science and Technology Pohang South Korea

8. Institute of Transformative Biomolecules (WPI‐ITbM) Nagoya University Nagoya Aichi Japan

9. Howard Hughes Medical Institute The University of Texas at Austin Austin Texas USA

10. Department of Molecular Biosciences The University of Texas at Austin Austin Texas USA

Abstract

AbstractHeterophylly is a phenomenon whereby an individual plant dramatically changes leaf shape in response to the surroundings. Hygrophila difformis (Acanthaceae; water wisteria), has recently emerged as a model plant to study heterophylly because of its striking leaf shape variation in response to various environmental factors. When submerged, H. difformis often develops complex leaves, but on land it develops simple leaves. Leaf complexity is also influenced by other factors, such as light density, humidity, and temperature. Here, we sequenced and assembled the H. difformis chromosome‐level genome (scaffold N50: 60.43 Mb, genome size: 871.92 Mb), which revealed 36 099 predicted protein‐coding genes distributed over 15 pseudochromosomes. H. difformis diverged from its relatives during the Oligocene climate‐change period and expanded gene families related to its amphibious habit. Genes related to environmental stimuli, leaf development, and other pathways were differentially expressed in submerged and terrestrial conditions, possibly modulating morphological and physiological acclimation to changing environments. We also found that auxin plays a role in H. difformis heterophylly. Finally, we discovered candidate genes that respond to different environmental conditions and elucidated the role of LATE MERISTEM IDENTITY 1 (LMI1) in heterophylly. We established H. difformis as a model for studying interconnections between environmental adaptation and morphogenesis.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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