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Gibberellin regulates pollen viability and pollen tube growth in rice

机译:赤霉素调节水稻花粉活力和花粉管生长

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Gibberellins (GAs) play many biological roles in higher plants. We collected and performed genetic analysis on rice ( Oryza sativa) GA-related mutants, including GA-deficient and GA-insensitive mutants. Genetic analysis of the mutants revealed that rice GA-deficient mutations are not transmitted as Mendelian traits to the next generation following self-pollination of F1 heterozygous plants, although GA-insensitive mutations are transmitted normally. To understand these differences in transmission, we examined the effect of GA on microsporogenesis and pollen tube elongation in rice using new GA-deficient and GA-insensitive mutants that produce semifertile flowers. Phenotypic analysis revealed that the GA-deficient mutant reduced pollen elongation1 is defective in pollen tube elongation, resulting in a low fertilization frequency, whereas the GA-insensitive semidominant mutant Slr1-d3 is mainly defective in viable pollen production. Quantitative RT-PCR revealed that GA biosynthesis genes tested whose mutations are transmitted to the next generation at a lower frequency are preferentially expressed after meiosis during pollen development, but expression is absent or very low before the meiosis stage, whereas GA signal-related genes are actively expressed before meiosis. Based on these observations, we predict that the transmission of GA-signaling genes occurs in a sporophytic manner, since the protein products and/or mRNA transcripts of these genes may be introduced into pollen-carrying mutant alleles, whereas GA synthesis genes are transmitted in a gametophytic manner, since these genes are preferentially expressed after meiosis.
机译:赤霉素(GAs)在高等植物中起许多生物学作用。我们收集并进行了水稻(Oryza sativa)GA相关突变体的遗传分析,包括GA缺陷和GA不敏感的突变体。突变体的遗传分析表明,水稻GA缺陷型突变不会以孟德尔性状传播给F1杂合植物自花授粉后的下一代,尽管对GA不敏感的突变是正常传播的。为了解这些传播差异,我们使用产生半能育花的新型GA缺失和GA不敏感突变体,研究了GA对水稻微孢子发生和花粉管伸长的影响。表型分析表明,GA缺陷型花粉伸长率降低的花粉管伸长率存在缺陷,导致受精频率低,而GA不敏感的半显性突变体Slr1-d3主要在花粉生产中存在缺陷。定量RT-PCR显示,在花粉发育过程中减数分裂后优先表达其测试的突变以较低频率向下一代传递的GA生物合成基因,但在减数分裂阶段之前不存在或表达很低,而GA信号相关基因为减数分裂前积极表达。根据这些观察结果,我们预测GA信号基因的传播以孢子形式发生,因为这些基因的蛋白质产物和/或mRNA转录物可能被引入携带花粉的突变等位基因中,而GA合成基因则通过配子体化的方式,因为这些基因在减数分裂后优先表达。

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