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首页> 外文期刊>International Journal of Botany >Functional Genomics of Plant Cell Wall Biosynthetic Enzymes: Type-II Membrane-Bound Glycosyltransferases
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Functional Genomics of Plant Cell Wall Biosynthetic Enzymes: Type-II Membrane-Bound Glycosyltransferases

机译:植物细胞壁生物合成酶的功能基因组学:II型膜结合糖基转移酶。

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摘要

Functional analyses of plant cell wall biosynthetic enzymes date back to the isolation of plasma-membrane and/or Golgi-enriched microsomal membranes, which were subjected to bio chemical analysis of enzymes of interest. These analyses were usually performed with a radiolabelled UDP-sugar substrate and a suitable acceptor molecule. However, preparations of both substrates and/or candidate oligosaccharide acceptors generally yielded low levels of enzyme activity and minute amounts of product. With the advent of recombinant DNA technology and implementation of heterologous expression systems to improve the amount of available protein, new opportunities arose through which to obtain more meaningful biochemical data. Although, heterologous expression of DNA fragments proved useful for the characterization of soluble enzymes, the procedure was not so successful in the generation of membrane-bound enzymes that were correctly folded and therefore active. The completion of the rice and Arabidopsis genome sequences, together with the deposition of numerous plant ESTs into public databases opened the way for the development of other techniques. Analyses of T-DNA insertion lines for glycosyltransferase genes with reference to cell wall polysaccharide linkage types and wall composition, especially in Arabidopsis , were amongst the successful methods used in addressing the function of candidate glycosyltransferases. More recently quantitative genetics and the identification of Quantitative Trait Loci (QTL) have started to shed some light on our understanding of the genes and enzymes involved in wall biogenesis, deposition and re-modelling.
机译:植物细胞壁生物合成酶的功能分析可以追溯到分离质膜和/或富含高尔基体的微粒体膜,然后对这些酶进行生化分析。这些分析通常使用放射性标记的UDP糖底物和合适的受体分子进行。然而,底物和/或候选寡糖受体的制备通常产生低水平的酶活性和少量的产物。随着重组DNA技术的出现和异源表达系统的实施以提高可用蛋白质的量,出现了新的机会来通过该机会获得更有意义的生化数据。虽然,DNA片段的异源表达被证明可用于可溶性酶的表征,但该方法在产生正确折叠并因此具有活性的膜结合酶方面并不十分成功。水稻和拟南芥基因组序列的完成,以及将大量植物EST沉积到公共数据库中,为开发其他技术开辟了道路。参照细胞壁多糖键的连接类型和壁组成,特别是在拟南芥中,分析糖基转移酶基因的T-DNA插入系是用于解决候选糖基转移酶功能的成功方法。最近,定量遗传学和定量性状位点(QTL)的鉴定开始为我们对与壁生物发生,沉积和重塑有关的基因和酶的理解提供一些启发。

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