首页> 外文OA文献 >Characterization of multiple SPS knockout mutants reveals redundant functions of the four Arabidopsis sucrose phosphate synthase isoforms in plant viability, and strongly indicates that enhanced respiration and accelerated starch turnover can alleviate the blockage of sucrose biosynthesis
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Characterization of multiple SPS knockout mutants reveals redundant functions of the four Arabidopsis sucrose phosphate synthase isoforms in plant viability, and strongly indicates that enhanced respiration and accelerated starch turnover can alleviate the blockage of sucrose biosynthesis

机译:多个SPS敲除突变体的表征揭示了四种拟南芥蔗糖磷酸合酶同工型在植物生存能力中的冗余功能,并强烈表明增强的呼吸作用和加速的淀粉周转率可以减轻蔗糖生物合成的阻碍

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摘要

We characterized multiple knock-out mutants of the four Arabidopsis sucrose phosphate synthase (SPSA1, SPSA2, SPSB and SPSC) isoforms. Despite their reduced SPS activity, spsa1/spsa2, spsa1/spsb, spsa2/spsb, spsa2/spsc, spsb/spsc, spsa1/spsa2/spsb and spsa2/spsb/spsc mutants displayed wild type (WT) vegetative and reproductive morphology, and showed WT photosynthetic capacity and respiration. In contrast, growth of rosettes, flowers and siliques of the spsa1/spsc and spsa1/spsa2/spsc mutants was reduced compared with WT plants. Furthermore, these plants displayed a high dark respiration phenotype. spsa1/spsb/spsc and spsa1/spsa2/spsb/spsc seeds poorly germinated and produced aberrant and sterile plants. Leaves of all viable sps mutants, except spsa1/spsc and spsa1/spsa2/spsc, accumulated WT levels of nonstructural carbohydrates. spsa1/spsc leaves possessed high levels of metabolic intermediates and activities of enzymes of the glycolytic and tricarboxylic acid cycle pathways, and accumulated high levels of metabolic intermediates of the nocturnal starch-to-sucrose conversion process, even under continuous light conditions. Results presented in this work show that SPS is essential for plant viability, reveal redundant functions of the four SPS isoforms in processes that are important for plant growth and nonstructural carbohydrate metabolism, and strongly indicate that accelerated starch turnover and enhanced respiration can alleviate the blockage of sucrose biosynthesis in spsa1/spsc leaves.
机译:我们表征了四个拟南芥蔗糖磷酸合酶(SPSA1,SPSA2,SPSB和SPSC)亚型的多个敲除突变体。尽管它们的SPS活性降低,但spsa1 / spsa2,spsa1 / spsb,spsa2 / spsb,spsa2 / spsc,spsb / spsc,spsa1 / spsa2 / spsb和spsa2 / spsb / spsc突变体显示出野生型(WT)营养和生殖形态,并且表现出WT的光合作用能力和呼吸作用。相比之下,与野生型植物相比,spsa1 / spsc和spsa1 / spsa2 / spsc突变体的花环,花和角果的生长减少。此外,这些植物表现出高的暗呼吸表型。 spsa1 / spsb / spsc和spsa1 / spsa2 / spsb / spsc种子发芽较差,产生的植株异常且不育。除spsa1 / spsc和spsa1 / spsa2 / spsc以外,所有可行的sps突变体的叶子均累积了非结构性碳水化合物的WT水平。 spsa1 / spsc叶片即使在连续光照条件下,也具有高水平的代谢中间产物以及糖酵解和三羧酸循环途径的酶活性,并且在夜间淀粉到蔗糖转化过程中积累了高水平的代谢中间产物。这项工作提出的结果表明,SPS对植物的生存能力至关重要,揭示了四个SPS亚型在植物生长和非结构性碳水化合物代谢中至关重要的过程中的多余功能,并强烈表明加速淀粉周转和增强呼吸作用可以减轻植物的阻塞。 spsa1 / spsc叶片中蔗糖的生物合成。

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