Department of Plant Physiology, University of Kaiserslautern, Kaiserslautern, 67653, Germany.
Institut Jean-Pierre Bourgin, INRAE, AgroParisTech, Université Paris-Saclay, Versailles, 78000, France.
Plant Physiol. 2021 Dec 4;187(4):2716-2730. doi: 10.1093/plphys/kiab436.
Root growth and architecture are markedly influenced by both developmental and environmental cues. Sugars integrate different stimuli and are essential building blocks and signaling molecules for modulating the root system. Members from the SUGAR WILL EVENTUALLY BE EXPORTED TRANSPORTER (SWEET) family facilitate the transport of different sugars over cellular membranes and steer both inter and intracellular distribution of sugars. SWEET17 represents a fructose-specific sugar porter localized to the vacuolar membrane, the tonoplast. Here, we analyzed how SWEET17-dependent fructose released from vacuoles affects root growth during drought stress in Arabidopsis (Arabidopsis thaliana). We found that the SWEET17 gene was predominantly expressed in the root vasculature and in meristematic cells of the root tip. SWEET17 expression appeared markedly induced during lateral root (LR) outgrowth and under drought. Moreover, fructose repressed primary root growth but induced density and length of first order LRs. Consistently, sweet17 knock-out mutants exhibited reduced LR growth and a diminished expression of LR-development-related transcription factors during drought stress, resulting in impaired drought tolerance of sweet17 mutants. We discuss how SWEET17 activity integrates drought-induced cellular responses into fructose signaling necessary for modulation of the root system and maximal drought tolerance.
根系生长和结构明显受到发育和环境信号的影响。糖整合了不同的刺激,是调节根系的必要组成部分和信号分子。来自糖将最终被输出转运蛋白(SWEET)家族的成员促进不同糖在细胞膜上的运输,并引导糖在细胞内外的分布。SWEET17 代表一种位于液泡膜(液泡膜)上的果糖特异性糖转运蛋白。在这里,我们分析了 SWEET17 依赖性果糖从液泡释放如何在拟南芥(Arabidopsis thaliana)干旱胁迫期间影响根系生长。我们发现 SWEET17 基因主要在根系脉管系统和根尖分生细胞中表达。SWEET17 表达在侧根(LR)生长和干旱期间明显诱导。此外,果糖抑制主根生长,但诱导一级 LR 的密度和长度。一致地,sweet17 敲除突变体在干旱胁迫下表现出减少的 LR 生长和减少的 LR 发育相关转录因子的表达,导致 sweet17 突变体的耐旱性受损。我们讨论了 SWEET17 活性如何将干旱诱导的细胞反应整合到调节根系和最大耐旱性所需的果糖信号中。