Holalu Srinidhi V, Finlayson Scott A
Department of Soil and Crop Sciences, Texas A&M University, College Station, TX 77843, USA.
Faculty of Molecular and Environmental Plant Sciences, Texas A&M University, College Station, TX 77843, USA.
J Exp Bot. 2017 Feb 1;68(5):943-952. doi: 10.1093/jxb/erw479.
Arabidopsis thaliana shoot branching is inhibited by a low red light to far red light ratio (R:FR, an indicator of competition), and by loss of phytochrome B function. Prior studies have shown that phytochrome B deficiency suppresses bud growth by elevating systemic auxin signalling, and that increasing the R:FR promotes the growth of buds suppressed by low R:FR by inhibiting bud abscisic acid (ABA) accumulation and signalling. Here, systemic auxin signalling and bud ABA signalling were examined in the context of rapid bud responses to an increased R:FR. Increasing the R:FR promoted the growth of buds inhibited by a low R:FR within 6 h. Relative to a low R:FR, bud ABA accumulation and signalling in plants given a high R:FR showed a sustained decline within 3 h, prior to increased growth. Main stem auxin levels and signalling showed a weak, transient response. Systemic effects and those localised to the bud were further examined by decapitating plants maintained either under a low R:FR or provided with a high R:FR. Increasing the R:FR promoted bud growth before decapitation, but decapitated plants eventually formed longer branches. The data suggest that rapid responses to an increased R:FR may be mediated by changes in bud ABA physiology, although systemic auxin signalling is necessary for sustained bud repression under a low R:FR.
拟南芥的枝条分枝受到低红光与远红光比例(R:FR,竞争指标)以及光敏色素B功能丧失的抑制。先前的研究表明,光敏色素B缺乏通过提高系统生长素信号传导来抑制芽的生长,而增加R:FR通过抑制芽脱落酸(ABA)积累和信号传导来促进被低R:FR抑制的芽的生长。在此,在芽对增加的R:FR的快速反应背景下,研究了系统生长素信号传导和芽ABA信号传导。增加R:FR在6小时内促进了被低R:FR抑制的芽的生长。相对于低R:FR,给予高R:FR的植物中芽ABA积累和信号传导在生长增加之前的3小时内持续下降。主茎生长素水平和信号传导表现出微弱的、短暂的反应。通过对维持在低R:FR或给予高R:FR条件下的植物进行去顶处理,进一步研究了系统效应和芽局部的效应。增加R:FR在去顶之前促进了芽的生长,但去顶植物最终形成了更长的枝条。数据表明,对增加的R:FR的快速反应可能由芽ABA生理学变化介导,尽管系统生长素信号传导对于在低R:FR下持续抑制芽是必要的。