Ohtaka Kinuka, Hori Koichi, Kanno Yuri, Seo Mitsunori, Ohta Hiroyuki
Graduate School of Bioscience and Biotechnology, Tokyo Institute of Technology, Yokohama, Kanagawa, 226-8503, Japan.
School of Life Science and Technology, Tokyo Institute of Technology, Yokohama, Kanagawa, 226-8503, Japan.
Plant Physiol. 2017 Jul;174(3):1621-1632. doi: 10.1104/pp.17.00274. Epub 2017 May 22.
The phytohormone auxin regulates many aspects of growth and development in land plants, but the origin and evolution of auxin signaling and response mechanisms remain largely unknown. Indeed, it remains to be investigated whether auxin-related pathways diverged before the emergence of land plants. To address this knowledge deficit, we analyzed auxin responses in the charophyte alga NIES-2285, whose ancestor diverged from a green algal ancestor during the evolution of land plants. This strain is the same as NIES-2285, for which the draft genome was sequenced in 2014, and was taxonomically reclassified as This genome sequence revealed genes involved in auxin responses. Furthermore, the auxin indole-3-acetic acid (IAA) was detected in cultures of , but lacks the central regulators of the canonical auxin-signaling pathway found in land plants. Exogenous IAA inhibited cell division and cell elongation in Inhibitors of auxin biosynthesis and of polar auxin transport also inhibited cell division and elongation. Moreover, exogenous IAA rapidly induced expression of a LATERAL ORGAN BOUNDARIES-DOMAIN transcription factor. These results suggest that has acquired the part of the auxin system that regulates transcription and cell growth without the requirement for the central players that govern auxin signaling in land plants.
植物激素生长素调控着陆地植物生长和发育的诸多方面,但其信号传导及响应机制的起源和进化仍 largely 未知。实际上,生长素相关途径在陆地植物出现之前是否就已分化仍有待研究。为填补这一知识空白,我们分析了轮藻 NIES - 2285 中的生长素响应,该轮藻的祖先在陆地植物进化过程中从绿藻祖先分化而来。这个菌株与 2014 年进行基因组草图测序的 NIES - 2285 相同,并且在分类学上被重新归类为 该基因组序列揭示了参与生长素响应的基因。此外,在 的培养物中检测到了生长素吲哚 - 3 - 乙酸(IAA),但 缺乏陆地植物中经典生长素信号通路的核心调控因子。外源 IAA 抑制了 中的细胞分裂和细胞伸长。生长素生物合成抑制剂和极性生长素运输抑制剂也抑制了细胞分裂和伸长。此外,外源 IAA 迅速诱导了一个侧生器官边界域转录因子的表达。这些结果表明, 已经获得了生长素系统中调控转录和细胞生长的部分,而无需陆地植物中控制生长素信号传导的核心因子。