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首页> 外文期刊>Plant physiology >Deficiency of Starch Synthase IIIa and IVb Alters Starch Granule Morphology from Polyhedral to Spherical in Rice Endosperm
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Deficiency of Starch Synthase IIIa and IVb Alters Starch Granule Morphology from Polyhedral to Spherical in Rice Endosperm

机译:淀粉合酶IIIa和IVb的缺乏改变了水稻胚乳的淀粉颗粒形态,从多面体变为球形

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摘要

Starch granule morphology differs markedly among plant species. However, the mechanisms controlling starch granule morphology have not been elucidated. Rice (Oryza sativa) endosperm produces characteristic compound-type granules containing dozens of polyhedral starch granules within an amyloplast. Some other cereal species produce simple-type granules, in which only one starch granule is present per amyloplast. A double mutant rice deficient in the starch synthase (SS) genes SSIIIa and SSIVb (ss3a ss4b) produced spherical starch granules, whereas the parental single mutants produced polyhedral starch granules similar to the wild type. The ss3a ss4b amyloplasts contained compound-type starch granules during early developmental stages, and spherical granules were separated from each other during subsequent amyloplast development and seed dehydration. Analysis of glucan chain length distribution identified overlapping roles for SSIIIa and SSIVb in amylopectin chain synthesis, with a degree of polymerization of 42 or greater. Confocal fluorescence microscopy and immunoelectron microscopy of wild-type developing rice seeds revealed that the majority of SSIVb was localized between starch granules. Therefore, we propose that SSIIIa and SSIVb have crucial roles in determining starch granule morphology and in maintaining the amyloplast envelope structure. We present a model of spherical starch granule production.
机译:淀粉颗粒的形态在植物物种之间明显不同。然而,尚未阐明控制淀粉颗粒形态的机制。稻(Oryza sativa)胚乳可生产出特征性的复合型颗粒,其中的淀粉糊质中含有数十个多面体淀粉颗粒。其他一些谷物品种可生产简单类型的颗粒,其中每个淀粉质塑料仅存在一种淀粉颗粒。缺少淀粉合酶(SS)基因SSIIIa和SSIVb(ss3a ss4b)的双突变水稻产生球形淀粉颗粒,而亲本单突变体则产生类似于野生型的多面体淀粉颗粒。 ss3a ss4b淀粉体在早期发育阶段包含复合型淀粉颗粒,球形颗粒在随后的淀粉体发育和种子脱水过程中彼此分离。葡聚糖链长分布的分析确定了支链淀粉链合成中SSIIIa和SSIVb的重叠作用,聚合度为42或更高。野生型发育中的水稻种子的共聚焦荧光显微镜和免疫电子显微镜显示,大部分SSIVb位于淀粉颗粒之间。因此,我们建议SSIIIa和SSIVb在确定淀粉颗粒的形态和维持淀粉样膜的包膜结构中起关键作用。我们提出了球形淀粉颗粒生产的模型。

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