Literature DB >> 24218593

Intrinsic karyotype stability and gene copy number variations may have laid the foundation for tetraploid wheat formation.

Huakun Zhang1, Yao Bian, Xiaowan Gou, Yuzhu Dong, Sachin Rustgi, Bangjiao Zhang, Chunming Xu, Ning Li, Bao Qi, Fangpu Han, Diter von Wettstein, Bao Liu.   

Abstract

Polyploidy or whole-genome duplication is recurrent in plant evolution, yet only a small fraction of whole-genome duplications has led to successful speciation. A major challenge in the establishment of nascent polyploids is sustained karyotype instability, which compromises fitness. The three putative diploid progenitors of bread wheat, with AA, SS (S ∼ B), and DD genomes occurred sympatrically, and their cross-fertilization in different combinations may have resulted in fertile allotetraploids with various genomic constitutions. However, only SSAA or closely related genome combinations have led to the speciation of tetraploid wheats like Triticum turgidum and Triticum timopheevii. We analyzed early generations of four newly synthesized allotetraploid wheats with genome compositions S(sh)S(sh)A(m)A(m), S(l)S(l)AA, S(b)S(b)DD, and AADD by combined fluorescence and genomic in situ hybridization-based karyotyping. Results of karyotype analyses showed that although S(sh)S(sh)A(m)A(m) and S(l)S(l)AA are characterized by immediate and persistent karyotype stability, massive aneuploidy and extensive chromosome restructuring are associated with S(b)S(b)DD and AADD in which parental subgenomes showed markedly different propensities for chromosome gain/loss and rearrangements. Although compensating aneuploidy and reciprocal translocation between homeologs prevailed, reproductive fitness was substantially compromised due to chromosome instability. Strikingly, localized genomic changes in repetitive DNA and copy-number variations in gene homologs occurred in both chromosome stable lines, S(sh)S(sh)A(m)A(m) and S(l)S(l)AA. Our data demonstrated that immediate and persistent karyotype stability is intrinsic to newly formed allotetraploid wheat with genome combinations analogous to natural tetraploid wheats. This property, coupled with rapid gene copy-number variations, may have laid the foundation of tetraploid wheat establishment.

Entities:  

Keywords:  genomic shock; intergenomic rearrangement; polyploid speciation

Mesh:

Substances:

Year:  2013        PMID: 24218593      PMCID: PMC3845155          DOI: 10.1073/pnas.1319598110

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  32 in total

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Review 7.  Genetic control of chromosome pairing in wheat.

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10.  Persistent whole-chromosome aneuploidy is generally associated with nascent allohexaploid wheat.

Authors:  Huakun Zhang; Yao Bian; Xiaowan Gou; Bo Zhu; Chunming Xu; Bao Qi; Ning Li; Sachin Rustgi; Hao Zhou; Fangpu Han; Jiming Jiang; Diter von Wettstein; Bao Liu
Journal:  Proc Natl Acad Sci U S A       Date:  2013-02-11       Impact factor: 11.205

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  30 in total

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3.  Evolution of the BBAA component of bread wheat during its history at the allohexaploid level.

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9.  Isolation and application of P genome-specific DNA sequences of Agropyron Gaertn. in Triticeae.

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10.  Evolutionary Contribution of Duplicated Genes to Genome Evolution in the Ginseng Species Complex.

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