通过 NAL11 基因敲除提高浸水条件下水稻种子的茎秆长度

Plants Pub Date : 2024-09-17 DOI:10.3390/plants13182593
Zhe Zhao, Yuelan Xie, Mengqing Tian, Jinzhao Liu, Chun Chen, Jiyong Zhou, Tao Guo, Wuming Xiao
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摘要

淹没胁迫给水稻直播带来了挑战。在这项研究中,我们发现了一种具有 DnaJ 结构域的热休克蛋白 NAL11,它能在淹水条件下调节水稻胚轴的长度。通过生物信息学分析,我们确定了其启动子中的顺式调控元件,使其对缺氧或缺氧等非生物胁迫具有响应性。在淹水期间,NAL11在嫩枝和茎叶基部的表达量较高。NAL11 基因敲除会引发脱落酸(ABA)的快速积累和赤霉素(GA)的减少,从而刺激水稻叶柄的伸长,有助于洪水胁迫的管理。此外,还发现 NAL11 突变体对 ABA 处理更敏感。这种基因敲除株系表现出更强的细胞伸长能力,从而促进了小穗轴的伸长。定量 RT-PCR 分析表明,NAL11 介导了葡萄糖生成途径,而葡萄糖生成途径对细胞扩展所需的能量至关重要。此外,NAL11突变体在浸没胁迫下减少了活性氧(ROS)和丙二醛的积累,这归因于与野生型相比,NAL11突变体的抗氧化酶系统得到了改善。总之,我们的研究结果强调了 NAL11 基因敲除通过阐明其机制在提高水稻对淹没胁迫的耐受性方面的关键作用。这一发现为提高水稻种植对洪涝灾害的抗逆性提供了新的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing Coleoptile Length of Rice Seeds under Submergence through NAL11 Knockout
Submergence stress challenges direct seeding in rice cultivation. In this study, we identified a heat shock protein, NAL11, with a DnaJ domain, which can regulate the length of rice coleoptiles under flooded conditions. Through bioinformatics analyses, we identified cis-regulatory elements in its promoter, making it responsive to abiotic stresses, such as hypoxia or anoxia. Expression of NAL11 was higher in the basal regions of shoots and coleoptiles during flooding. NAL11 knockout triggered the rapid accumulation of abscisic acid (ABA) and reduction of Gibberellin (GA), stimulating rice coleoptile elongation and contributes to flooding stress management. In addition, NAL11 mutants were found to be more sensitive to ABA treatments. Such knockout lines exhibited enhanced cell elongation for coleoptile extension. Quantitative RT-PCR analysis revealed that NAL11 mediated the gluconeogenic pathway, essential for the energy needed in cell expansion. Furthermore, NAL11 mutants reduced the accumulation of reactive oxygen species (ROS) and malondialdehyde under submerged stress, attributed to an improved antioxidant enzyme system compared to the wild-type. In conclusion, our findings underscore the pivotal role of NAL11 knockout in enhancing the tolerance of rice to submergence stress by elucidating its mechanisms. This insight offers a new strategy for improving resilience against flooding in rice cultivation.
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