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首页> 外文期刊>Russian Journal of Plant Physiology >Effect of surplus glucose on physiological and biochemical characteristics of sugar beet leaves in relation to the age of the leaf and the whole plant
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Effect of surplus glucose on physiological and biochemical characteristics of sugar beet leaves in relation to the age of the leaf and the whole plant

机译:剩余葡萄糖对甜菜叶片生理生化特性的影响与叶片年龄和整株植物的关系

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Effect of surplus glucose on physiological and biochemical parameters of leaves of different age was investigated in sugar beet (Beta vulgaris L., subsp. saccharifera) plants in the stages of vegetative growth (SVG). Early and late SVG were differentiated by the ratio between the weights of roots and aboveground organs (0.10 and 0.35, respectively). The excess of Glu was produced by incubation of the disks excised from detached leaves in water or 0.1 M Glu at radiant flux density of 250 omol/(mpo s) with the light regime pattern described as night/dayight/light (8/16/8/3 h). In all the leaf disks incubated in water and glucose solution, the content of Glu and other soluble carbohydrates considerably increased as compared with their content in the leaves they were taken from. After disk incubation in water and glucose solution, the content of chlorophyll (a + b) rose as compared with its level in respective leaves in early SVG; in late SVG, it declined. In early SVG, the rate of the O photosynthetic evolution (Ph) in the ageing leaves under saturating concentration of NaHCO after incubation in water and Glu solution declined more considerably than in young leaves. In late SVG, incubation of leaf disks in water and Glu solution weakly affected P n. The rate of O dark consumption in the leaf disks of all the types of treatment increased after incubation in water and especially in Glu solution. Activity of soluble carbonic anhydrase (sCA) in the extracts from young leaves in early SVG after their incubation in water and Glu solution was essentially the same, but after the incubation of ageing leaves in Glu solution, it reliably decreased. In late SVG, sCA activity sharply decreased after incubation in water and Glu solution irrespective of the leaf age. In late SVG, activity of Rubisco in the young leaves did not change after their incubation in water but decreased after incubation of the leaves of the three ages in Glu solution. In early SVG, nonphotochemical fluorescence quenching (NPQ) in the young intact leaf was lower than in the ageing leaf, and after leaf incubation in water and Glu solution, it rose. In late SVG, the value of NPQ was greater than in early SVG and, in contrast to the leaves of early SVG, it declined after leaf incubation; in water, this decline was more pronounced than in the Glu solution. In early SVG, efficient quantum yield of photosystem II (PSII) was much greater than in late SVG and it declined in the leaves incubated with Glu. It was concluded that surplus Glu can maintain biosynthetic processes in the young leaves of young sugar beet plants (trophic function). A decline in the level of chlorophyll and the activities of sCA and Rubisco in the course of leaf development and senescence is considered as a symptom of the suppression of biosynthesis of proteins of chlorophyll-protein complexes and the enzymes (Rubisco and sCA).
机译:研究了甜菜(Beta vulgaris L.,subsp。saccharifera)植物处于营养生长阶段(SVG)时,过量葡萄糖对不同年龄叶片生理生化参数的影响。早期和晚期SVG通过根与地上器官的权重之比(分别为0.10和0.35)来区分。通过在水或0.1 M Glu中以250 omol /(mpo s)的辐射通量密度孵育从离体叶片上切下的圆盘,并以夜间/白天/夜晚/光照(8 / 16/8/3小时)。在水和葡萄糖溶液中孵育的所有叶片中,与从叶片中提取的叶片中的Glu和其他可溶性碳水化合物相比,其含量均显着增加。圆盘在水和葡萄糖溶液中孵育后,早期SVG中叶绿素(a + b)的含量与其各自叶片中的水平相比有所上升。在SVG后期,它下降了。在早期的SVG中,在水和Glu溶液中孵育后,NaHCO饱和浓度下,衰老叶片中O光合进化(Ph)的速率比年轻叶片中O光合速率的下降幅度更大。在晚期SVG中,叶片圆盘在水和Glu溶液中的孵育对P n的影响微弱。在水中,尤其是在Glu溶液中孵育后,所有处理类型的叶盘中O暗消耗的比率都增加了。在水和Glu溶液中孵育后,早期SVG幼叶提取物中的可溶性碳酸酐酶(sCA)的活性基本相同,但是在Glu溶液中孵育衰老的叶片后,其活性可靠地降低。在晚期SVG中,与叶片年龄无关,在水和Glu溶液中孵育后,sCA活性急剧下降。在晚期SVG中,幼叶的Rubisco活性在水中孵育后没有变化,但在Glu溶液中孵育了3个年龄的叶片后却降低了。在早期SVG中,完整幼嫩叶片中的非光化学荧光猝灭(NPQ)低于衰老叶片中的叶片,并且在水和Glu溶液中孵育后,其上升。 SVG后期,NPQ的值大于早期SVG,并且与早期SVG的叶片相反,其在叶片孵育后下降。在水中,这种下降比在Glu溶液中更为明显。在早期的SVG中,光系统II(PSII)的有效量子产率比晚期的SVG高得多,并且在与Glu一起孵育的叶片中它下降了。结论是,多余的Glu可以维持甜菜幼苗幼叶的生物合成过程(营养功能)。叶绿素水平下降以及叶片发育和衰老过程中sCA和Rubisco的活性下降被认为是抑制叶绿素-蛋白质复合物和酶(Rubisco和sCA)的蛋白质生物合成的症状。

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