首页> 外文期刊>Plant Physiology and Biochemistry >A comprehensive view on organ-specific callose synthesis in wheat (Triticum aestivum L.): glucan synthase-like gene expression, callose synthase activity, callose quantification and deposition
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A comprehensive view on organ-specific callose synthesis in wheat (Triticum aestivum L.): glucan synthase-like gene expression, callose synthase activity, callose quantification and deposition

机译:小麦(Triticum aestivum L.)器官特异性call质合成的综合观点:葡聚糖合酶样基因表达,call质合酶活性,call质定量和沉积

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Callose ((1,3)-beta-glucan) is important during basic developmental processes of plants, but only little is known about the regulation of callose biosynthesis on molecular level. Growing evidence indicates that glucan synthase-like (GSL) genes in higher plants are involved in callose synthesis. We analyzed the expression of eight GSL genes (TaGSL) as well as callose synthase activity and total callose content in the stem, leaf blade and spike of wheat (Triticum aestivum L.). Organ-specific expression of six TaGSL genes and strong differences in expression levels were detected by quantitative real-time PCR. Differences were also determined in callose synthase (EC 2.4.1.34) activity and total amount of callose in the examined organs. Aniline blue staining in tissue sections localized callose depositions. These results allow a comprehensive reflection of callose regulation, considering gene expression, enzyme activity and enzyme product quantification as well as localization. Our data suggests that callose synthesis is highly regulated by a combination of GSL genes, which are involved either in general or in organ-specific developmental processes. (c) 2006 Elsevier SAS. All rights reserved.
机译:ose质((1,3)-β-葡聚糖)在植物的基本发育过程中很重要,但对call质生物合成在分子水平上的调控知之甚少。越来越多的证据表明,高等植物中的葡聚糖合酶样(GSL)基因参与了ose的合成。我们分析了八个GSL基因(TaGSL)的表达,以及小麦(Triticum aestivum L.)茎,叶片和穗中的call质合酶活性和总call质含量。通过定量实时PCR检测了六个TaGSL基因的器官特异性表达和表达水平的强烈差异。还确定了被检器官中call质合酶(EC 2.4.1.34)活性和of质总量的差异。组织切片中的苯胺蓝染色定位了ose的沉积。这些结果考虑到基因表达,酶活性和酶产物定量以及定位,可以全面反映call的调节。我们的数据表明,愈伤组织的合成受GSL基因的组合高度调控,这些基因参与一般或器官特异性发育过程。 (c)2006年Elsevier SAS。版权所有。

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