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首页> 外文期刊>Plant Cell, Tissue and Organ Culture: An International Journal on in Vitro Culture of Higher Plants >Importance of the l-galactonolactone pool for enhancing the ascorbate content revealed by l -galactonolactone dehydrogenase-overexpressing tobacco plants
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Importance of the l-galactonolactone pool for enhancing the ascorbate content revealed by l -galactonolactone dehydrogenase-overexpressing tobacco plants

机译:l-半乳糖内酯库对提高过表达l-半乳糖内酯脱氢酶的烟草植物所显示的抗坏血酸含量的重要性

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摘要

l-Galactono-1,4-lactone (GalL) dehydrogenase (GLDH) is an enzyme that catalyzes the last step of l-ascorbate (AsA) biosynthesis in plants. To re-evaluate the importance of the enzyme and the possibility of manipulating the AsA content in plants, a cDNA encoding GLDH from sweet potato was introduced into tobacco plants by Agrobacterium-mediated transformation under the control of a CaMV 35S promoter. Protein blot analysis revealed the elevation of GLDH protein contents in three GLDH-transformed lines. Furthermore, these transgenic lines showed 6- to 10-fold higher GLDH activities in the roots than the non-transformed plants, SR1. Despite the elevated GLDH activity, the AsA content in the leaves did not change in all lines; i.e., the AsA content in GLDH-transformed lines was 3-7 omol gp# FW, comparable to that in the non-transformed plants. Incubation of leaf discs in a GalL solution led to a rapid 2- to 3-fold increase in the AsA content in both GLDH-transformed and non-transformed plants in the same manner. These results suggest that the supply of GalL is a crucial factor for determining the AsA pool size and that the upstream genes in the AsA biosynthetic pathway are responsible for enhancing the AsA content in plants.
机译:1-Galactono-1,4-lactone(GalL)脱氢酶(GLDH)是一种催化植物中抗坏血酸(AsA)合成的最后一步的酶。为了重新评估该酶的重要性以及操纵植物中AsA含量的可能性,在农杆菌介导的CaMV 35S启动子的控制下,通过农杆菌介导的转化将甘薯中编码GLDH的cDNA引入烟草植株。蛋白印迹分析揭示了在三个GLDH转化的系中GLDH蛋白含量的升高。此外,这些转基因品系在根部的GLDH活性比未转化的植物SR1高6至10倍。尽管GLDH活性升高,但叶片中的AsA含量并未在所有系中发生变化。即,在GLDH转化品系中AsA含量为3-7 omol gp#FW,与未转化植物中的AsA含量相当。在GalL溶液中孵育叶盘可导致以相同方式在GLDH转化植物和未转化植物中的AsA含量迅速增加2到3倍。这些结果表明,GalL的供应是确定AsA池大小的关键因素,并且AsA生物合成途径中的上游基因负责增强植物中的AsA含量。

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