首页> 美国卫生研究院文献>Plant Physiology >Sucrose-Induced Accumulation of β-Amylase Occurs Concomitant with the Accumulation of Starch and Sporamin in Leaf-Petiole Cuttings of Sweet Potato
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Sucrose-Induced Accumulation of β-Amylase Occurs Concomitant with the Accumulation of Starch and Sporamin in Leaf-Petiole Cuttings of Sweet Potato

机译:蔗糖诱导的β-淀粉酶积累与甘薯叶石ti插中淀粉和Sporamin的积累同时发生

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摘要

β-Amylase of sweet potato (Ipomoea batatas L.), which constitutes about 5% of the total soluble protein of the tuberous root, is absent or is present in only small amounts in organs other than the tuberous roots of the normal, field-grown plants. However, when leaf-petiole cuttings from such plants were supplied with a solution that contained sucrose, the accumulation of β-amylase was induced in both leaf and petiole portions of the explants. The sucrose-induced accumulation of β-amylase in leaf-petiole cuttings occurred concomitant with the accumulation of starch and of sporamin, the most abundant storage protein of the tuberous root. The accumulation of β-amylase, of sporamin and of starch in the petioles showed similar dependence on the concentration of sucrose, and a 6% solution of sucrose gave the highest levels of induction when assayed after 7 days of treatment. The induction of mRNAs for β-amylase and sporamin in the petiole could be detected after 6 hours of treatment with sucrose, and the accumulation of β-amylase and sporamin polypeptides, as well as that of starch, continued for a further 3 weeks. In addition to sucrose, glucose or fructose, but not mannitol or sorbitol, also induced the accumulation of β-amylase and sporamin, suggesting that metabolic effects of sucrose are important in the mechanism of this induction. Treatment of leaf-petiole cuttings with water under continuous light, but not in darkness, also caused the accumulation of small amounts of these components in the petioles, probably as a result of the endogenous supply of sucrose by photosynthesis. These results suggest that the expression of the gene for β-amylase is under metabolic control which is coupled with the expression of sink function of cells in the sweet potato.
机译:甘薯(Ipomoea batatas L.)的β-淀粉酶约占块根总可溶性蛋白的5%,在正常田间的块根之外的其他器官中均不存在或仅少量存在。种植物。然而,当向这些植物的叶柄插条提供含蔗糖的溶液时,在外植体的叶和叶柄部分都诱导了β-淀粉酶的积累。蔗糖诱导的叶柄插条中β-淀粉酶的积累与淀粉和sporamin的积累同时发生,sporamin是块根最丰富的存储蛋白。叶柄中β-淀粉酶,sporamin和淀粉的积累显示出对蔗糖浓度的相似依赖性,并且在处理7天后测定,6%蔗糖溶液诱导的诱导水平最高。用蔗糖处理6小时后,可以检测到叶柄中β-淀粉酶和孢菌素的mRNA的诱导,并且β-淀粉酶和孢菌素多肽以及淀粉的积累继续进行了3周。除蔗糖外,葡萄糖或果糖,而非甘露糖醇或山梨糖醇也诱导了β-淀粉酶和孢子蛋白的积累,这表明蔗糖的代谢作用在该诱导机制中很重要。在持续的光照下而不是在黑暗中用水处理叶柄的插条也可能导致叶柄中少量这些成分的积累,这可能是由于光合作用对蔗糖的内源性供应。这些结果表明,β-淀粉酶基因的表达处于代谢控制之下,这与甘薯中细胞的沉陷功能的表达有关。

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