Institute of Plant Science and Resources, Okayama University, 2-20-1 Chuo, Kurashiki, Okayama, 710-0046, Japan.
Department of Biological Production, Akita Prefectural University, Akita, 010-0195, Japan.
Theor Appl Genet. 2023 Apr 3;136(4):94. doi: 10.1007/s00122-023-04339-5.
Barley double mutants in two genes involved in starch granule morphology, HvFLO6 and HvISA1, had impaired starch accumulation and higher grain sugar levels than either single mutant. Starch is a biologically and commercially important glucose polymer synthesized by plants as semicrystalline starch granules (SGs). Because SG morphology affects starch properties, mutants with altered SG morphology may be useful in breeding crops with desirable starch properties, including potentially novel properties. In this study, we employed a simple screen for mutants with altered SG morphology in barley (Hordeum vulgare). We isolated mutants that formed compound SGs together with the normal simple SGs in the endosperm and found that they were allelic mutants of the starch biosynthesis genes ISOAMYLASE1 (HvISA1) and FLOURY ENDOSPERM 6 (HvFLO6), encoding starch debranching enzyme and CARBOHYDRATE-BINDING MODULE 48-containing protein, respectively. We generated the hvflo6 hvisa1 double mutant and showed that it had significantly reduced starch biosynthesis and developed shrunken grains. In contrast to starch, soluble α-glucan, phytoglycogen, and sugars accumulated to higher levels in the double mutant than in the single mutants. In addition, the double mutants showed defects in SG morphology in the endosperm and in the pollen. This novel genetic interaction suggests that hvflo6 acts as an enhancer of the sugary phenotype caused by hvisa1 mutation.
大麦中两个参与淀粉粒形态的基因(HvFLO6 和 HvISA1)的双突变体,其淀粉积累能力受损,籽粒中糖含量高于单突变体。淀粉是一种由植物合成的具有生物和商业重要性的葡萄糖聚合物,呈半结晶态的淀粉粒(SGs)。由于 SG 形态影响淀粉性质,因此具有改变 SG 形态的突变体可能有助于培育具有理想淀粉性质的作物,包括可能具有新颖性质的作物。在这项研究中,我们采用了一种简单的筛选方法,在大麦(Hordeum vulgare)中筛选具有改变的 SG 形态的突变体。我们分离出了在胚乳中与正常简单 SG 一起形成复合 SG 的突变体,并发现它们是淀粉生物合成基因 ISOAMYLASE1(HvISA1)和 FLOURY ENDOSPERM 6(HvFLO6)的等位基因突变体,分别编码淀粉分支酶和含有碳水化合物结合模块 48 的蛋白。我们生成了 hvflo6 hvisa1 双突变体,并表明其淀粉生物合成显著降低,且籽粒变小。与淀粉不同,可溶性α-葡聚糖、植物糖元和糖在双突变体中积累到比单突变体更高的水平。此外,双突变体在胚乳和花粉中 SG 形态也存在缺陷。这种新的遗传相互作用表明,HvFLO6 作为 HvISA1 突变引起的含糖表型的增强子起作用。