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Manipulation of biosynthesis of aliphatic glucosinolates in Brassica crops and Arabidopsis through gene replacement and RNA interference.

机译:通过基因置换和RNA干扰操纵芸苔属作物和拟南芥中脂肪族芥子油苷的生物合成。

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摘要

The hydrolysis products of glucosinolates can inhibit iodine uptake by the thyroid gland, reduce thyroid hormone circulation and cause goiter. Overall, total glucosinolate concentration in Brassica seed meal has to be reduced to a very low level for animal feeding purposes. On the other hand, some specific glucosinolates such as glucoraphanin are reported to block the initiation of tumors in many mammalian tissues by inducing Phase I and Phase II enzymes, so glucoraphanin concentration needs to be increased to add nutritional quality in selected Brassica vegetables.;Turning to Arabidopsis, four MAM-like genes in the elongated amino acid pathway of glucosinolate biosynthesis could potentially control total glucosinolate concentration in Arabidopsis thaliana. Using RNAi techniques, several MAM genes were simultaneously silenced and the total aliphatic glucosinolate concentration in the RNAi lines of A. thaliana were reduced greatly in leaves, and moderately reduced in seeds compared to wild type A. thaliana Columbia (Col-0). It appears that RNAi can effectively overcome gene function redundancy and can therefore be used to study gene function in polyploidy species.;To study gene silencing efficiency in A. thaliana, six different RNAi constructs were developed with the sense/antisense arms ranging from 112 to 898 nt. All the constructs efficiently silenced MAM genes. It was demonstrated that in order to obtain efficient gene silencing, the sequence identity between the source gene for the insert fragment and the target gene of RNAi constructs could be as low as 56% and the effective insert fragment size could be as small as 59 bp. It was also demonstrated that the RNAi transgene was genetically and functionally stable in RNAi hybrids. It appears that RNAi lines could be used in Brassica breeding programs to develop desired varieties with reduced concentration of aliphatic glucosinolates.;It was demonstrated that the GSL-ALK gene in the glucosinolate modification/biosynthesis pathway regulates glucoraphanin concentration in Brassica crops. Broccoli (B. oleracea) with a non-functional GSL-ALK (GSL-ALK-) gene enriches glucoraphanin, white Chinese cabbage (B. rapa) with a functional GSL-ALK (GSL-ALK+) gene does not. Replacement of the functional GSL-ALK+ gene in Chinese cabbage with the nonfunctional GSL-ALK- gene from broccoli could improve glucoraphanin concentration in Chinese cabbage using a non-GMO approach. Introgression of the GSL-ALK - gene from broccoli into Chinese cabbage is required for gene replacement. Two GSL-ALK- gene introgression lines of B. rapa without additional C-genome chromosomes were developed through marker assisted selection and cytogenetic analysis. These gene introgression lines can be used for further gene replacement.
机译:芥子油苷的水解产物可抑制甲状腺摄取碘,减少甲状腺激素循环并引起甲状腺肿。总体而言,出于动物饲养目的,芸苔籽粉中总芥子油苷浓度必须降低到非常低的水平。另一方面,据报道,某些特定的芥子油苷(如葡糖苷)可通过诱导I期和II期酶来阻断许多哺乳动物组织中的肿瘤发生,因此需要增加葡甘露聚糖的浓度以增加所选芸苔属蔬菜的营养质量。对于拟南芥而言,芥子油苷生物合成的延长氨基酸途径中的四个MAM样基因可以潜在地控制拟南芥中总芥子油苷的浓度。与野生型拟南芥哥伦比亚(Col-0)相比,使用RNAi技术同时沉默了几个MAM基因,并且在叶片中大大降低了拟南芥RNAi系中总脂肪族硫代葡萄糖苷的浓度,并在种子中适度降低了其浓度。 RNAi似乎可以有效克服基因功能的冗余,因此可以用于研究多倍体物种的基因功能。为了研究拟南芥中的基因沉默效率,开发了六个不同的RNAi构建体,其有义/反义臂的范围从112至898新台币。所有构建体均有效沉默了MAM基因。结果表明,为了获得有效的基因沉默,插入片段的源基因与RNAi构建体的靶基因之间的序列同一性可低至56%,有效插入片段大小可小至59 bp 。还证明了RNAi转基因在RNAi杂种中在遗传和功能上是稳定的。似乎可以在芸苔属育种程序中使用RNAi系来开发所需的脂肪族芥子油苷的浓度降低的品种。证明了芥子油苷修饰/生物合成途径中的GSL-ALK基因调节芸苔属作物中的葡糖萝卜素浓度。具有非功能性GSL-ALK(GSL-ALK-)基因的花椰菜(B. oleracea)富集甘草酸,而具有功能性GSL-ALK(GSL-ALK +)基因的白色大白菜(B. rapa)没有。用来自非花椰菜的非功能性GSL-ALK-基因代替大白菜中的功能性GSL-ALK +基因,可以通过非转基因方法提高大白菜中的葡甘露聚糖浓度。需要将GSL-ALK-基因从西兰花中渗入大白菜中,以进行基因置换。通过标记辅助选择和细胞遗传学分析,开发了两个无附加C基因组染色体的B. rapa GSL-ALK基因渗入系。这些基因渗入系可用于进一步的基因替换。

著录项

  • 作者

    Niu, Zhixia.;

  • 作者单位

    University of Manitoba (Canada).;

  • 授予单位 University of Manitoba (Canada).;
  • 学科 Biology Molecular.;Biology Genetics.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 124 p.
  • 总页数 124
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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