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转座子在人工合成异源四倍体烟草中的转座。

Mobilization of retrotransposons in synthetic allotetraploid tobacco.

机构信息

Institut Jean-Pierre Bourgin, INRA-Centre de Versailles, F-78026, Versailles cedex, France.

出版信息

New Phytol. 2010 Apr;186(1):135-47. doi: 10.1111/j.1469-8137.2009.03140.x. Epub 2010 Jan 13.

Abstract

Allopolyploidy is a major driving force in plant evolution and can induce rapid structural changes in the hybrid genome. As major components of plant genomes, transposable elements are involved in these changes. In a previous work, we observed turnover of retrotransposon insertions in natural allotretraploid tobacco (Nicotiana tabacum). Here, we studied the early stages of allopolyploid formation by monitoring changes at retrotransposon insertion sites in the Th37 synthetic tobacco. We used sequence-specific amplification polymorphism (SSAP) to study insertion patterns of two populations of the Tnt1 retrotransposon in Th37 S4 generation plants, and characterized the nature of polymorphic insertion sites. We observed significant amplification of young Tnt1 populations. Newly transposed copies were amplified from maternal elements and were highly similar to Tnt1A tobacco copies amplified in response to microbial factors. A high proportion of paternal SSAP bands were not transmitted to the hybrid, corresponding to various rearrangements at paternal insertion sites, including indels or the complete loss of the Tnt1/flanking junction. These data indicate that major changes, such as retrotransposon amplification and molecular restructuring in or around insertion sites, occur rapidly in response to allopolyploidy.

摘要

异源多倍化是植物进化的主要驱动力,可引起杂种基因组的快速结构变化。转座元件作为植物基因组的主要组成部分,参与了这些变化。在之前的工作中,我们观察到了自然异源四倍体烟草(Nicotiana tabacum)中逆转座子插入的更替。在这里,我们通过监测 Th37 合成烟草中逆转座子插入位点的变化来研究异源多倍体形成的早期阶段。我们使用序列特异性扩增多态性(SSAP)来研究 Th37 S4 代植物中 Tnt1 逆转座子的两个种群的插入模式,并对多态性插入位点的性质进行了表征。我们观察到年轻的 Tnt1 群体显著扩增。从母本元件中扩增出新的转座拷贝,并且与响应微生物因素而扩增的 Tnt1A 烟草拷贝高度相似。大量父本 SSAP 带未能传递给杂种,这对应于父本插入位点的各种重排,包括缺失或 Tnt1/侧翼连接的完全丢失。这些数据表明,主要变化,如逆转座子扩增和插入位点内或周围的分子重构,迅速响应异源多倍体而发生。

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