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新水果作物“板栗玫瑰”中核苷酸结合位点编码基因的基因组组织、快速进化及减数分裂不稳定性

Genomic organization, rapid evolution and meiotic instability of nucleotide-binding-site-encoding genes in a new fruit crop, "chestnut rose".

作者信息

Xu Qiang, Wen Xiaopeng, Deng Xiuxin

机构信息

National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan 430070, Hubei, People's Republic of China.

出版信息

Genetics. 2008 Apr;178(4):2081-91. doi: 10.1534/genetics.107.086421. Epub 2008 Feb 3.

Abstract

From chestnut rose, a promising fruit crop of the Rosa genus, powdery mildew disease-resistant and susceptible genotypes and their F(1) progeny were used to isolate nucleotide-binding-site (NBS)-encoding genes using 19 degenerate primer pairs and an additional cloning method called overlapping extension amplification. A total of 126 genes were harvested; of these, 38 were from a resistant parent, 37 from a susceptible parent, and 51 from F(1) progeny. A phylogenetic tree was constructed, which revealed that NBS sequences from parents and F(1) progeny tend to form a mixture and are well distributed among the branches of the tree. Mapping of these NBS genes suggested that their organization in the genome is a "tandem duplicated cluster" and, to a lesser extent, a "heterogeneous cluster." Intraspecific polymorphisms and interspecific divergence were detected by Southern blotting with NBS-encoding genes as probes. Sequencing on the nucleotide level revealed even more intraspecific variation: for the R4 gene, 9.81% of the nucleotides are polymorphic. Amino acid sites under positive selection were detected in the NBS region. Some NBS-encoding genes were meiotically unstable, which may due to recombination and deletion events. Moreover, a transposon-like element was isolated in the flanking region of NBS genes, implying a possible role for transposon in the evolutionary history of resistance genes.

摘要

从玫瑰属一种很有前景的水果作物——板栗玫瑰中,利用19对简并引物对以及另一种称为重叠延伸扩增的克隆方法,对抗白粉病和感白粉病的基因型及其F(1)后代进行核苷酸结合位点(NBS)编码基因的分离。总共收获了126个基因;其中,38个来自抗性亲本,37个来自感病亲本,51个来自F(1)后代。构建了系统发育树,结果显示亲本和F(1)后代的NBS序列倾向于形成混合,并且在树的分支中分布良好。这些NBS基因的定位表明,它们在基因组中的组织形式是一个“串联重复簇”,在较小程度上是一个“异质簇”。以NBS编码基因为探针进行Southern杂交检测到种内多态性和种间差异。核苷酸水平的测序揭示了更多的种内变异:对于R4基因,9.81%的核苷酸是多态性的。在NBS区域检测到正选择下的氨基酸位点。一些NBS编码基因在减数分裂时不稳定,这可能是由于重组和缺失事件。此外,在NBS基因的侧翼区域分离到一个转座子样元件,这意味着转座子在抗性基因的进化历史中可能发挥作用。

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