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当父亲成为瞬间的失败者:近期形成的荠属异源三倍体杂种 Cardamine × schulzii 中 rDNA 位点的同质化。

When fathers are instant losers: homogenization of rDNA loci in recently formed Cardamine × schulzii trigenomic allopolyploid.

机构信息

Institute of Botany, Slovak Academy of Sciences, Bratislava, Slovakia.

RG Plant Cytogenomics, CEITEC, Masaryk University, Brno, Czech Republic.

出版信息

New Phytol. 2014 Sep;203(4):1096-1108. doi: 10.1111/nph.12873. Epub 2014 Jun 11.

DOI:10.1111/nph.12873
PMID:24916080
Abstract

Recently formed allopolyploids represent an excellent system to study the impacts of hybridization and genomic duplication on genome structure and evolution. Here we explored the 35SrRNA genes (rDNA) in the Cardamine × schulzii allohexaploid that was formed by two subsequent hybridization events within the past c. 150 yr. The rDNA loci were analyzed by cloning, next generation sequencing (NGS), RT-PCR and FISH methods. The primary C. × insueta triploid hybrid derived from C. rivularis (♀) and C. amara (♂) had gene ratios highly skewed towards maternal sequences. Similarly, C. × schulzii, originating from the secondary hybridization event involving C. × insueta (♀) and C. pratensis (♂), showed a reduction in paternal rDNA homeologs despite an excess of chromosomes inherited from C. pratensis. We also identified novel rDNA loci in C. × schulzii, suggesting that lost loci might be slowly reinstalled by translocation (but not recombination) of genes from partner genomes. Prevalent clonal propagation of allopolyploids, C. × insueta and C. × schulzii, indicates that concerted evolution of rDNA may occur in the absence of extensive meiotic cycles. Adoption of NGS in rDNA variant analysis is highly informative for deciphering the evolutionary histories of allopolyploid species with ongoing homogenization processes.

摘要

最近形成的异源多倍体是研究杂交和基因组加倍对基因组结构和进化影响的极好系统。在这里,我们研究了在过去约 150 年内由两次连续杂交事件形成的十字花科繁缕属异源六倍体(Cardamine ×schulzii)中的 35S rRNA 基因(rDNA)。通过克隆、下一代测序(NGS)、RT-PCR 和 FISH 方法分析 rDNA 基因座。初级的 C. × insueta 三倍体杂种是由 C. rivularis(♀)和 C. amara(♂)杂交形成的,其基因比例严重偏向母本序列。同样,起源于 C. × insueta(♀)和 C. pratensis(♂)之间的二次杂交事件的 C. × schulzii 尽管从 C. pratensis 继承了大量染色体,但父本 rDNA 同系物的数量却减少了。我们还在 C. × schulzii 中鉴定了新的 rDNA 基因座,表明丢失的基因座可能通过来自伙伴基因组的基因易位(而非重组)而缓慢重新安装。异源多倍体 C. × insueta 和 C. × schulzii 的普遍无性繁殖表明,rDNA 的协同进化可能在没有广泛减数分裂周期的情况下发生。在 rDNA 变异分析中采用 NGS 对于解析具有持续同质化过程的异源多倍体物种的进化历史具有高度信息性。

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