Department of Plant Sciences, University of California, Davis, CA, 95616, USA.
National Institute of Crop Science, Rural Development Administration, Wanju, 55365, South Korea.
BMC Plant Biol. 2018 Oct 22;18(1):253. doi: 10.1186/s12870-018-1465-4.
As central regulators of the gibberellic acid (GA) signaling pathway in plants, DELLA proteins function as growth repressors and affect diverse biological processes. The wheat RHT-B1b and RHT-D1b semi-dwarfing alleles, which encode GA-insensitive DELLA proteins, have been widely adopted in modern wheat varieties to improve lodging tolerance and harvest index. However, the molecular mechanisms by which DELLA modulates these responses in wheat remain largely unknown.
We identified a tall tetraploid wheat mutant line carrying an induced missense mutation (E529K) in the PFYRE motif of RHT-B1b that partially suppressed the semi-dwarf phenotype. The height-increasing effect of RHT-B1b relative to RHT-B1b (19 cm or 21% increase) was significantly smaller than the effect of RHT-B1a (33 cm or 34% increase) relative to RHT-B1b in the same field experiment. The RHT-B1b mutation was also associated with length increases in coleoptiles, seedling shoots, and stem internodes relative to the RHT-B1b allele. We detected no significant differences in germination rate, seedling root length, tiller number, flag leaf size, spike length, or yield components. Using RNA-seq, we compared gene expression profiles of plants encoding RHT-B1b and RHT-B1b in coleoptile, first leaf, and elongating peduncles. We detected limited overlap among tissues of the genes differentially regulated by the two genotypes, and more genes upregulated (77%) than downregulated (23%) in RHT-B1b relative to RHT-B1b. These results suggest that the wheat DELLA protein affects the transcriptome in a tissue-specific manner and that the mutation mainly eliminates or reduces repression functions of the RHT-B1 protein. Our study identified distinct sets of potential DELLA direct or indirect target genes involved in cell wall and carbohydrate metabolisms, cell cycle/division, and hormone pathways.
We identified the hypomorphic RHT-B1b allele that confers an intermediate plant height and coleoptile elongation. This allele can be useful in rain-fed wheat breeding programs where the strong reduction in height and biomass associated with RHT-B1b has detrimental effects. Transcriptomic characterization of different tissues from the plants encoding RHT-B1b and RHT-B1b provided valuable information for identifying DELLA downstream GA response genes in wheat.
作为植物赤霉素(GA)信号通路的中央调控因子,DELLA 蛋白作为生长抑制剂发挥作用,并影响多种生物学过程。小麦 RHT-B1b 和 RHT-D1b 半矮化等位基因编码 GA 不敏感的 DELLA 蛋白,已被广泛应用于现代小麦品种,以提高抗倒伏能力和收获指数。然而,DELLA 调节小麦这些反应的分子机制在很大程度上仍不清楚。
我们鉴定了一个携带 RHT-B1b 的 PFYRE 基序中诱导错义突变(E529K)的高杆四倍体小麦突变体系,该突变部分抑制了半矮化表型。与 RHT-B1b 相比,RHT-B1b (增加 19 厘米或 21%)的增高效应明显小于在同一田间试验中 RHT-B1a (增加 33 厘米或 34%)对 RHT-B1b 的效应。该 RHT-B1b 突变也与 coleoptile、幼苗茎和茎节间的长度增加有关,与 RHT-B1b 等位基因相比。我们没有检测到发芽率、幼苗根长、分蘖数、旗叶大小、穗长或产量组成的显著差异。使用 RNA-seq,我们比较了 coleoptile、第一叶和伸长花梗中编码 RHT-B1b 和 RHT-B1b 的植物的基因表达谱。我们检测到两种基因型调节的基因在组织之间的重叠有限,并且 RHT-B1b 相对于 RHT-B1b 上调的基因(77%)多于下调的基因(23%)。这些结果表明,小麦 DELLA 蛋白以组织特异性的方式影响转录组,并且该突变主要消除或减少了 RHT-B1 蛋白的抑制功能。我们的研究确定了参与细胞壁和碳水化合物代谢、细胞周期/分裂和激素途径的不同的潜在 DELLA 直接或间接靶基因。
我们鉴定了一个赋予中间植物高度和 coleoptile 伸长的半矮化 RHT-B1b 等位基因。该等位基因可用于雨养小麦育种计划,因为 RHT-B1b 强烈降低高度和生物量会产生不利影响。RHT-B1b 和 RHT-B1b 编码植物不同组织的转录组特征分析为鉴定小麦中 DELLA 下游 GA 反应基因提供了有价值的信息。