Nakayama Hokuto, Nakayama Naomi, Seiki Sumer, Kojima Mikiko, Sakakibara Hitoshi, Sinha Neelima, Kimura Seisuke
Faculty of Life Sciences, Kyoto Sangyo University, Motoyama, Kamigamo, Kita-Ku, Kyoto 603-8555, Japan.
Institute of Molecular Plant Sciences, University of Edinburgh, Edinburgh EH9 3JH, United Kingdom.
Plant Cell. 2014 Dec;26(12):4733-48. doi: 10.1105/tpc.114.130229. Epub 2014 Dec 16.
Plants show leaf form alteration in response to changes in the surrounding environment, and this phenomenon is called heterophylly. Although heterophylly is seen across plant species, the regulatory mechanisms involved are largely unknown. Here, we investigated the mechanism underlying heterophylly in Rorippa aquatica (Brassicaceae), also known as North American lake cress. R. aquatica develops pinnately dissected leaves in submerged conditions, whereas it forms simple leaves with serrated margins in terrestrial conditions. We found that the expression levels of KNOTTED1-LIKE HOMEOBOX (KNOX1) orthologs changed in response to changes in the surrounding environment (e.g., change of ambient temperature; below or above water) and that the accumulation of gibberellin (GA), which is thought to be regulated by KNOX1 genes, also changed in the leaf primordia. We further demonstrated that exogenous GA affects the complexity of leaf form in this species. Moreover, RNA-seq revealed a relationship between light intensity and leaf form. These results suggest that regulation of GA level via KNOX1 genes is involved in regulating heterophylly in R. aquatica. The mechanism responsible for morphological diversification of leaf form among species may also govern the variation of leaf form within a species in response to environmental changes.
植物会根据周围环境的变化改变叶片形态,这种现象被称为异形叶性。尽管异形叶性在各种植物物种中都有出现,但其中涉及的调控机制在很大程度上仍不为人知。在此,我们研究了北美水芹(十字花科)异形叶性的潜在机制。北美水芹在水下条件下长出羽状深裂叶,而在陆地条件下则形成边缘有锯齿的单叶。我们发现,类KNOTTED1同源异型盒(KNOX1)直系同源基因的表达水平会随着周围环境的变化(如环境温度变化;水下或水上)而改变,并且在叶原基中,被认为受KNOX1基因调控的赤霉素(GA)积累也发生了变化。我们进一步证明,外源GA会影响该物种叶片形态的复杂性。此外,RNA测序揭示了光照强度与叶片形态之间的关系。这些结果表明,通过KNOX1基因调控GA水平参与了北美水芹异形叶性的调控。物种间叶片形态的形态多样化机制也可能控制着同一物种内叶片形态对环境变化的响应。