Instituto Gulbenkian de Ciência, Oeiras, Portugal.
Plant Physiol. 2010 Oct;154(2):772-83. doi: 10.1104/pp.110.155523. Epub 2010 Aug 10.
The plant-specific SR45 belongs to the highly conserved family of serine/arginine-rich (SR) proteins, which play key roles in precursor-mRNA splicing and other aspects of RNA metabolism. An Arabidopsis (Arabidopsis thaliana) loss-of-function mutant, sr45-1, displays pleiotropic phenotypes, such as defects in flower and leaf morphology, root growth, and flowering time. Here, we show that the sr45-1 mutation confers hypersensitivity to glucose (Glc) during early seedling growth in Arabidopsis. Unlike wild-type plants, the sr45-1 mutant displays impaired cotyledon greening and expansion as well as reduced hypocotyl elongation of dark-grown seedlings when grown in the presence of low (3%) Glc concentrations. In addition, SR45 is involved in the control of Glc-responsive gene expression, as the mutant displays enhanced repression of photosynthetic and nitrogen metabolism genes and overinduction of starch and anthocyanin biosynthesis genes. Like many other sugar response mutants, sr45-1 also shows hypersensitivity to abscisic acid (ABA) but appears to be unaffected in ethylene signaling. Importantly, the sr45-1 mutant shows enhanced ability to accumulate ABA in response to Glc, and the ABA biosynthesis inhibitor fluridone partially rescues the sugar-mediated growth arrest. Moreover, three ABA biosynthesis genes and two key ABA signaling genes, ABI3 and ABI5, are markedly overinduced by Glc in sr45-1. These results provide evidence that the SR45 protein defines a novel player in plant sugar response that negatively regulates Glc signaling during early seedling development by down-regulating both Glc-specific ABA accumulation and ABA biosynthesis and signaling gene expression.
植物特异性 SR45 属于高度保守的丝氨酸/精氨酸丰富(SR)蛋白家族,该家族在 mRNA 前体剪接和其他 RNA 代谢方面发挥关键作用。拟南芥(Arabidopsis thaliana)功能丧失突变体 sr45-1 表现出多种表型,如花和叶形态、根生长和开花时间的缺陷。在这里,我们表明 sr45-1 突变赋予了拟南芥早期幼苗生长过程中对葡萄糖(Glc)的超敏感性。与野生型植物不同,sr45-1 突变体在存在低(3%)Glc 浓度时,表现出受损的子叶变绿和扩张以及暗培养幼苗下胚轴伸长的减少。此外,SR45 参与 Glc 响应基因表达的控制,因为突变体显示出光合作用和氮代谢基因的抑制增强和淀粉和花色素苷生物合成基因的过度诱导。与许多其他糖响应突变体一样,sr45-1 对脱落酸(ABA)也表现出超敏性,但在乙烯信号中似乎不受影响。重要的是,sr45-1 突变体在响应 Glc 时表现出增强的 ABA 积累能力,ABA 生物合成抑制剂 fluridone 部分挽救了糖介导的生长抑制。此外,三个 ABA 生物合成基因和两个关键的 ABA 信号基因 ABI3 和 ABI5 在 sr45-1 中被 Glc 显著诱导。这些结果提供了证据表明,SR45 蛋白在植物糖响应中定义了一个新的参与者,通过下调 Glc 特异性 ABA 积累和 ABA 生物合成和信号基因表达,负调控早期幼苗发育过程中的 Glc 信号。