Ramachandran Prashanth, Wang Guodong, Augstein Frauke, de Vries Jan, Carlsbecker Annelie
Department of Organismal Biology, Physiological Botany, Evolutionary Biology Centre and Linnean Centre for Plant Biology, Uppsala University, Ullsv. 24E, SE-75651 Uppsala, Sweden.
Department of Organismal Biology, Physiological Botany, Evolutionary Biology Centre and Linnean Centre for Plant Biology, Uppsala University, Ullsv. 24E, SE-75651 Uppsala, Sweden
Development. 2018 Feb 5;145(3):dev159202. doi: 10.1242/dev.159202.
The plant root xylem comprises a specialized tissue for water distribution to the shoot. Despite its importance, its potential morphological plasticity in response to environmental conditions such as limited water availability has not been thoroughly studied. Here, we identify a role for the phytohormone abscisic acid (ABA) for proper xylem development and describe how ABA signalling-mediated effects on core developmental regulators are employed to alter xylem morphology under limited water availability in Plants with impaired ABA biosynthesis and reduced ABA signalling in the cell layer surrounding the vasculature displayed defects in xylem continuity, suggesting that non-cell autonomous ABA signalling is required for proper xylem development. Conversely, upon external ABA application or under limited water availability, extra xylem strands were formed. The observed xylem developmental alterations were dependent on adequate endodermal ABA signalling, which activated This resulted in increased miR165 levels that repress class III HD-ZIP transcription factors in the stele. We conclude that a pathway known to control core developmental features is employed as a means of modifying plant xylem morphology under conditions of environmental stress.
植物根系木质部是一种专门用于将水分输送到地上部分的组织。尽管其很重要,但它在响应诸如水分供应有限等环境条件时潜在的形态可塑性尚未得到充分研究。在这里,我们确定了植物激素脱落酸(ABA)在木质部正常发育中的作用,并描述了在水分供应有限的情况下,ABA信号传导如何介导对核心发育调节因子的影响,从而改变木质部形态。在维管组织周围细胞层中ABA生物合成受损且ABA信号传导减弱的植物中,木质部连续性出现缺陷,这表明非细胞自主性ABA信号传导是木质部正常发育所必需的。相反,在外部施加ABA或水分供应有限的情况下,会形成额外的木质部束。观察到的木质部发育改变依赖于内皮层充足的ABA信号传导,这会激活……这导致miR165水平升高,从而抑制中柱中的III类HD-ZIP转录因子。我们得出结论,一种已知可控制核心发育特征的途径被用作在环境胁迫条件下改变植物木质部形态的一种方式。