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对转基因马铃薯中ADP - 葡萄糖焦磷酸化酶的抑制导致了储存糖分的块茎,并影响块茎形成以及块茎储存蛋白基因的表达。

Inhibition of the ADP-glucose pyrophosphorylase in transgenic potatoes leads to sugar-storing tubers and influences tuber formation and expression of tuber storage protein genes.

作者信息

Müller-Röber B, Sonnewald U, Willmitzer L

机构信息

Institut für Genbiologische Forschung Berlin GmbH, FRG.

出版信息

EMBO J. 1992 Apr;11(4):1229-38. doi: 10.1002/j.1460-2075.1992.tb05167.x.

Abstract

Transgenic potato plants were created in which the expression of ADP-glucose pyrophosphorylase (AGPase) was inhibited by introducing a chimeric gene containing the coding region of one of the subunits of the AGPase linked in an antisense orientation to the CaMV 35S promoter. Partial inhibition of the AGPase enzyme was achieved in leaves and almost complete inhibition in tubers. This resulted in the abolition of starch formation in tubers, thus proving that AGPase has a unique role in starch biosynthesis in plants. Instead up to 30% of the dry weight of the transgenic potato tubers was represented by sucrose and up to 8% by glucose. The process of tuber formation also changed, resulting in significantly more tubers both per plant and per stolon. The accumulation of soluble sugars in tubers of antisense plants resulted in a significant increase of the total tuber fresh weight, but a decrease in dry weight of tubers. There was no significant change in the RNA levels of several other starch biosynthetic enzymes, but there was a great increase in the RNA level of the major sucrose synthesizing enzyme sucrose phosphate synthase. In addition, the inhibition of starch biosynthesis was accompanied by a massive reduction in the expression of the major storage protein species of potato tubers, supporting the idea that the expression of storage protein genes is in some way connected to carbohydrate formation in sink storage tissues.

摘要

通过导入一个嵌合基因培育出了转基因马铃薯植株,该嵌合基因包含ADP - 葡萄糖焦磷酸化酶(AGPase)一个亚基的编码区,其以反义方向与花椰菜花叶病毒(CaMV)35S启动子相连,从而抑制AGPase的表达。在叶片中实现了AGPase酶的部分抑制,在块茎中几乎完全抑制。这导致块茎中淀粉形成被消除,从而证明AGPase在植物淀粉生物合成中具有独特作用。相反,转基因马铃薯块茎干重的30%由蔗糖构成,8%由葡萄糖构成。块茎形成过程也发生了变化,导致单株和每个匍匐茎上的块茎显著增多。反义植株块茎中可溶性糖的积累导致块茎总鲜重显著增加,但块茎干重降低。其他几种淀粉生物合成酶的RNA水平没有显著变化,但主要蔗糖合成酶蔗糖磷酸合酶的RNA水平大幅增加。此外,淀粉生物合成的抑制伴随着马铃薯块茎主要贮藏蛋白种类表达的大量减少,这支持了贮藏蛋白基因的表达在某种程度上与库贮藏组织中碳水化合物形成相关的观点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3ace/556571/4a39f71a0528/emboj00089-0016-a.jpg

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