College of Life Sciences, Zhaoqing University, Zhaoqing 526061, People's Republic of China.
J Plant Physiol. 2013 Mar 1;170(4):389-96. doi: 10.1016/j.jplph.2012.11.019. Epub 2013 Jan 3.
The tiller of rice (Oryza sativa L.), which determines the panicle number per plant, is an important agronomic trait for grain production. Ascorbic acid (Asc) is a major plant antioxidant that serves many functions in plants. L-Galactono-1,4-lactone dehydrogenase (GLDH, EC 1.3.2.3) is an enzyme that catalyzes the last step of Asc biosynthesis in plants. Here we show that the GLDH-suppressed transgenic rices, GI-1 and GI-2, which have constitutively low (between 30% and 50%) leaf Asc content compared with the wild-type plants, exhibit a significantly reduced tiller number. Moreover, lower growth rate and plant height were observed in the Asc-deficient plants relative to the trait values of the wild-type plants at different tillering stages. Further examination showed that the deficiency of Asc resulted in a higher lipid peroxidation, a loss of chlorophyll, a loss of carotenoids, and a lower rate of CO(2) assimilation. In addition, the level of abscisic acid was higher in GI-1 plants, while the level of jasmonic acid was higher in GI-1 and GI-2 plants at different tillering stages. The results we presented here indicated that Asc deficiency was likely responsible for the promotion of premature senescence, which was accompanied by a marked decrease in photosynthesis. These observations support the conclusion that the deficiency of Asc alters the tiller number in the GLDH-suppressed transgenics through promoting premature senescence and changing phytohormones related to senescence.
水稻的分蘖数(Oryza sativa L.)决定了每株植物的穗数,是粮食生产的一个重要农艺性状。抗坏血酸(Asc)是一种主要的植物抗氧化剂,在植物中具有多种功能。L-半乳糖酸-1,4-内酯脱氢酶(GLDH,EC 1.3.2.3)是一种酶,它催化植物中 Asc 生物合成的最后一步。在这里,我们发现 GLDH 抑制的转基因水稻 GI-1 和 GI-2 与野生型植物相比,叶片 Asc 含量持续降低(在 30%至 50%之间),分蘖数明显减少。此外,在不同分蘖阶段,与野生型植物的性状值相比,缺乏 Asc 的植物生长速度和株高都较低。进一步的检查表明,Asc 的缺乏导致脂质过氧化、叶绿素损失、类胡萝卜素损失和 CO2 同化率降低。此外,在不同分蘖阶段,GI-1 植物中的脱落酸水平较高,而 GI-1 和 GI-2 植物中的茉莉酸水平较高。我们在这里提出的结果表明,Asc 的缺乏可能导致过早衰老,这伴随着光合作用的显著下降。这些观察结果支持这样的结论,即 Asc 的缺乏通过促进过早衰老和改变与衰老相关的植物激素来改变 GLDH 抑制的转基因植物的分蘖数。