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首页> 外文期刊>Journal of Experimental Botany >Towards a better understanding of the generation of fructan structure diversity in plants: molecular and functional characterization of a sucrose:fructan 6-fructosyltransferase (6-SFT) cDNA from perennial ryegrass (Lolium perenne)
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Towards a better understanding of the generation of fructan structure diversity in plants: molecular and functional characterization of a sucrose:fructan 6-fructosyltransferase (6-SFT) cDNA from perennial ryegrass (Lolium perenne)

机译:为了更好地理解植物中果聚糖结构多样性的产生:蔗糖的分子和功能表征:多年生黑麦草(黑麦草)的果糖6-果糖基转移酶(6-SFT)cDNA

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摘要

The main storage compounds in Lolium perenne are fructans with prevailing beta(2-6) linkages. A cDNA library of L. perenne was screened using Poa secunda sucrose:fructan 6-fructosyltransferase (6-SFT) as a probe. A full-length Lp6-SFT clone was isolated as shown by heterologous expression in Pichia pastoris. High levels of Lp6-SFT transcription were found in the growth zone of elongating leaves and in mature leaf sheaths where fructans are synthesized. Upon fructan synthesis induction, Lp6-SFT transcription was high in mature leaf blades but with no concomitant accumulation of fructans. In vitro studies with the recombinant Lp6-SFT protein showed that both 1-kestotriose and 6G-kestotriose acted as fructosyl acceptors, producing 1- and 6-kestotetraose (bifurcose) and 6G,6-kestotetraose, respectively. Interestingly, bifurcose formation ceased and 6G,6-kestotetraose was formed instead, when recombinant fructan:fructan 6G-fructosyltransferase (6G-FFT) of L. perenne was introduced in the enzyme assay with sucrose and 1-kestotriose as substrates. The remarkable absence of bifurcose in L. perenne tissues might be explained by a higher affinity of 6G-FFT, as compared with 6-SFT, for 1-kestotriose, which is the first fructan formed. Surprisingly, recombinant 6-SFT from Hordeum vulgare, a plant devoid of fructans with internal glucosyl residues, also produced 6G,6-kestotetraose from sucrose and 6G-kestotriose. In the presence of recombinant L. perenne 6G-FFT, it produced 6G,6-kestotetraose from 1-kestotriose and sucrose, like L. perenne 6-SFT. Thus, we demonstrate that the two 6-SFTs have close catalytic properties and that the distinct fructans formed in L. perenne and H. vulgare can be explained by the presence of 6G-FFT activity in L. perenne and its absence in H. vulgare.
机译:黑麦草中的主要存储化合物是果聚糖,具有普遍的β(2-6)键。以苏打水蔗糖:果聚糖6-果糖基转移酶(6-SFT)为探针筛选紫苏乳杆菌的cDNA文库。如巴斯德毕赤酵母中的异源表达所示,分离出全长Lp6-SFT克隆。 Lp6-SFT转录的高水平被发现在延伸叶的生长区和合成果聚糖的成熟叶鞘中。在果聚糖合成诱导后,Lp6-SFT转录在成熟叶片中较高,但没有果聚糖的累积。用重组Lp6-SFT蛋白进行的体外研究表明1-酮基三糖和6G-酮基三糖都充当果糖基受体,分别产生1-和6-酮基四糖(双糠糖)和6G,6-酮基四糖。有趣的是,当在蔗糖和1-酮三糖作为底物的酶分析中引入了Perenne L.的重组果聚糖:果聚糖6G-果糖基转移酶(6G-FFT)时,双歧糖的形成停止了,而是形成了6G,6-酮四糖。 Perennes L.组织中双歧糖的显着缺失可能是由6G-FFT与1-Stotritriose相比具有更高的亲和力(与6-SFT相比)引起的,后者是第一个形成的果聚糖。令人惊讶的是,来自大麦的重组6-SFT,该植物不含具有内部糖基残基的果聚糖,也从蔗糖和6G-酮三糖产生了6G,6-酮四糖。在重组紫苏乳杆菌6G-FFT的存在下,它像紫苏乳杆菌6-SFT一样,由1-酮三糖和蔗糖生产了6G,6-酮四糖。因此,我们证明了两个6-SFT具有密切的催化性能,并且在紫苏和紫苏中形成的不同果聚糖可以用紫苏中存在6G-FFT活性和在紫苏中不存在来解释。 。

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