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Antisense inhibition of threonine synthase leads to high methionine content in transgenic potato plants.苏氨酸合成酶的反义抑制导致转基因马铃薯植株中蛋氨酸含量升高。
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2
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Constitutive overexpression of cystathionine gamma-synthase in Arabidopsis leads to accumulation of soluble methionine and S-methylmethionine.拟南芥中胱硫醚γ-合酶的组成型过表达导致可溶性蛋氨酸和S-甲基蛋氨酸的积累。
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Methionine and threonine synthesis are limited by homoserine availability and not the activity of homoserine kinase in Arabidopsis thaliana.在拟南芥中,甲硫氨酸和苏氨酸的合成受高丝氨酸可用性的限制,而非高丝氨酸激酶的活性。
Plant J. 2005 Mar;41(5):685-96. doi: 10.1111/j.1365-313X.2004.02329.x.

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本文引用的文献

1
Effects of Orthophosphate and Adenosine 5'-Phosphate on Threonine Synthase and Cystathionine gamma-Synthate of Lemna paucicostata Hegelm. 6746.正交磷酸盐和腺苷 5'-磷酸对浮萍 6746 的苏氨酸合成酶和胱硫醚 γ-合酶的影响。
Plant Physiol. 1986 Jun;81(2):577-83. doi: 10.1104/pp.81.2.577.
2
In vivo regulation of de novo methionine biosynthesis in a higher plant (lemna).在高等植物(浮萍)中从头合成蛋氨酸的体内调控。
Plant Physiol. 1985 Feb;77(2):450-5. doi: 10.1104/pp.77.2.450.
3
Threonine Synthase of Lemna paucicostata Hegelm. 6746.少脉浮萍(Lemna paucicostata Hegelm. 6746)的苏氨酸合酶
Plant Physiol. 1984 Oct;76(2):285-92. doi: 10.1104/pp.76.2.285.
4
Intracellular localization of aspartate kinase and the enzymes of threonine and methionine biosynthesis in green leaves.天冬氨酸激酶和苏氨酸、甲硫氨酸生物合成酶在绿色叶片中的细胞内定位。
Plant Physiol. 1983 Apr;71(4):780-4. doi: 10.1104/pp.71.4.780.
5
Methionine Biosynthesis in Lemna: STUDIES ON THE REGULATION OF CYSTATHIONINE gamma-SYNTHASE, O-PHOSPHOHOMOSERINE SULFHYDRYLASE, AND O-ACETYLSERINE SULFHYDRYLASE.浮萍中的甲硫氨酸生物合成:胱硫醚γ-合酶、O-磷酸高丝氨酸巯基酶和O-乙酰丝氨酸巯基酶的调控研究
Plant Physiol. 1982 May;69(5):1077-83. doi: 10.1104/pp.69.5.1077.
6
Threonine Overproduction in Transgenic Tobacco Plants Expressing a Mutant Desensitized Aspartate Kinase of Escherichia coli.在表达突变型大肠杆菌天冬氨酸激酶的转基因烟草植物中天冬氨酸的过表达。
Plant Physiol. 1992 Nov;100(3):1157-63. doi: 10.1104/pp.100.3.1157.
7
Both developmental and metabolic signals activate the promoter of a class I patatin gene.发育和代谢信号均可激活 I 类马铃薯球蛋白基因的启动子。
EMBO J. 1989 Jan;8(1):23-9. doi: 10.1002/j.1460-2075.1989.tb03344.x.
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Regulation of Lysine and Threonine Synthesis.赖氨酸和苏氨酸合成的调控
Plant Cell. 1995 Jul;7(7):899-906. doi: 10.1105/tpc.7.7.899.
9
Isolation of an Arabidopsis thaliana Mutant, mto1, That Overaccumulates Soluble Methionine (Temporal and Spatial Patterns of Soluble Methionine Accumulation).一个过量积累可溶性甲硫氨酸的拟南芥突变体mto1的分离(可溶性甲硫氨酸积累的时空模式)
Plant Physiol. 1994 Mar;104(3):881-887. doi: 10.1104/pp.104.3.881.
10
Approaches towards understanding methionine biosynthesis in higher plants.高等植物中蛋氨酸生物合成的理解方法。
Amino Acids. 2001;20(3):281-9. doi: 10.1007/s007260170044.

苏氨酸合成酶的反义抑制导致转基因马铃薯植株中蛋氨酸含量升高。

Antisense inhibition of threonine synthase leads to high methionine content in transgenic potato plants.

作者信息

Zeh M, Casazza A P, Kreft O, Roessner U, Bieberich K, Willmitzer L, Hoefgen R, Hesse H

机构信息

Max-Planck-Institut für Molekulare Pflanzenphysiologie, Am Mühlenberg 1, 14476 Golm, Germany.

出版信息

Plant Physiol. 2001 Nov;127(3):792-802.

PMID:11706163
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC129252/
Abstract

Methionine (Met) and threonine (Thr) are members of the aspartate family of amino acids. In plants, their biosynthetic pathways diverge at the level of O-phosphohomo-serine (Ser). The enzymes cystathionine gamma-synthase and Thr synthase (TS) compete for the common substrate O-phosphohomo-Ser with the notable feature that plant TS is activated through S-adenosyl-Met, a metabolite derived from Met. To investigate the regulation of this branch point, we engineered TS antisense potato (Solanum tuberosum cv Désirée) plants using the constitutive cauliflower mosaic virus 35S promoter. In leaf tissues, these transgenics exhibit a reduction of TS activity down to 6% of wild-type levels. Thr levels are reduced to 45% wild-type controls, whereas Met levels increase up to 239-fold depending on the transgenic line and environmental conditions. Increased levels of homo-Ser and homo-cysteine indicate increased carbon allocation into the aspartate pathway. In contrast to findings in Arabidopsis, increased Met content has no detectable effect on mRNA or protein levels or on the enzymatic activity of cystathionine gamma-synthase in potato. Tubers of TS antisense potato plants contain a Met level increased by a factor of 30 and no reduction in Thr. These plants offer a major biotechnological advance toward the development of crop plants with improved nutritional quality.

摘要

甲硫氨酸(Met)和苏氨酸(Thr)是天冬氨酸族氨基酸的成员。在植物中,它们的生物合成途径在O-磷酸高丝氨酸(Ser)水平上发生分歧。胱硫醚γ-合酶和苏氨酸合酶(TS)竞争共同底物O-磷酸高丝氨酸,值得注意的是,植物TS通过S-腺苷甲硫氨酸(一种由甲硫氨酸衍生的代谢物)被激活。为了研究这个分支点的调控,我们使用组成型花椰菜花叶病毒35S启动子构建了TS反义马铃薯(Solanum tuberosum cv Désirée)植株。在叶片组织中,这些转基因植株的TS活性降低至野生型水平的6%。苏氨酸水平降至野生型对照的45%,而甲硫氨酸水平根据转基因株系和环境条件增加高达239倍。高丝氨酸和高半胱氨酸水平的增加表明进入天冬氨酸途径的碳分配增加。与在拟南芥中的发现相反,甲硫氨酸含量的增加对马铃薯中胱硫醚γ-合酶的mRNA或蛋白质水平以及酶活性没有可检测到的影响。TS反义马铃薯植株的块茎中甲硫氨酸水平增加了30倍,而苏氨酸没有减少。这些植株为培育营养品质改良的作物提供了一项重大的生物技术进展。