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Morphological and gene expression analysis under cool temperature conditions in rice anther development

机译:低温条件下水稻花药发育的形态和基因表达分析。

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Cool temperature conditions are known to lead to pollen sterility in rice. Pollen sterility is an agriculturally important phenomenon because it imparts a large influence directly on rice yield. However, cool temperature stress tolerance varies among rice cultivars and avoidance of cool temperature stress is difficult by practical method of agriculture. In this study using two rice cultivars, Hitomebore (high tolerance) and Sasanishiki (low tolerance), we analyzed morphological features and gene expression profiles, under cool temperature stress, in anther development of rice. Hitomebore was given cool temperature stress (19 degrees C) at flowering stage, and showed 87.3% seed fertility. Meanwhile, the seed fertility decreased to 41.7% in the case of Sasanishiki. A transverse section of Hitomebore anther revealed that the degradation of the tapetum started at the uninucleate microspore stage, and the tapetum had completely vanished at mature stage. The tapetum provides nutrients for pollen development, and its degradation occurs at a late stage in pollen development. In contrast, degradation of the tapetum did not occur at the uninucleate microspore stage in Sasanishiki, and the tapetum was clearly intact at mature stage, suggesting that tapetum degradation is critical for accurate pollen development and cool temperature tolerance correlated with the degree of tapetum degeneration. In gene expression analysis of anther, 356 genes that showed different expression levels between two cultivars at cool temperatures were found. These genes will lead to understanding the mechanism of cool temperature stress response in rice pollen development and the identification of genes involved in accurate tapetum degradation.
机译:已知凉爽的温度条件会导致水稻中的花粉不育。花粉不育是一种重要的农业现象,因为它直接对水稻产量产生重大影响。但是,水稻品种对低温胁迫的耐受性不同,并且通过实用的农业方法难以避免低温胁迫。在这项研究中,我们利用两个水稻品种(Hitomebore(高耐性)和Sasanishiki(低耐性)),分析了在低温胁迫下水稻花药发育的形态特征和基因表达谱。在花期,给瞳孔提供凉爽的温度胁迫(19摄氏度),并显示出87.3%的种子繁殖力。同时,Sasanishiki的种子繁殖力下降至41.7%。 Hitomebore花药的横断面显示,绒毡层的降解始于单核小孢子阶段,绒毡层在成熟期已完全消失。绒毡层为花粉发育提供营养,其降解发生在花粉发育的后期。相反,在莎莎锦木的单核小孢子阶段,绒毡层并未发生降解,绒毡层在成熟阶段显然是完整的,这表明绒毡层的降解对于准确的花粉发育和与绒毡层退化程度相关的凉爽的温度耐受性至关重要。在花药的基因表达分析中,发现了在低温下两个品种之间表达水平不同的356个基因。这些基因将有助于了解水稻花粉发育过程中低温胁迫反应的机制,并鉴定参与精确绒毡层降解的基因。

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