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De Novo Centromere Formation and Centromeric Sequence Expansion in Wheat and Its Wide Hybrids

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Journal PLoS Genet
Specialty Genetics
Date 2016 Apr 26
PMID 27110907
Citations 35
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Abstract

Centromeres typically contain tandem repeat sequences, but centromere function does not necessarily depend on these sequences. We identified functional centromeres with significant quantitative changes in the centromeric retrotransposons of wheat (CRW) contents in wheat aneuploids (Triticum aestivum) and the offspring of wheat wide hybrids. The CRW signals were strongly reduced or essentially lost in some wheat ditelosomic lines and in the addition lines from the wide hybrids. The total loss of the CRW sequences but the presence of CENH3 in these lines suggests that the centromeres were formed de novo. In wheat and its wide hybrids, which carry large complex genomes or no sequenced genome, we performed CENH3-ChIP-dot-blot methods alone or in combination with CENH3-ChIP-seq and identified the ectopic genomic sequences present at the new centromeres. In adcdition, the transcription of the identified DNA sequences was remarkably increased at the new centromere, suggesting that the transcription of the corresponding sequences may be associated with de novo centromere formation. Stable alien chromosomes with two and three regions containing CRW sequences induced by centromere breakage were observed in the wheat-Th. elongatum hybrid derivatives, but only one was a functional centromere. In wheat-rye (Secale cereale) hybrids, the rye centromere-specific sequences spread along the chromosome arms and may have caused centromere expansion. Frequent and significant quantitative alterations in the centromere sequence via chromosomal rearrangement have been systematically described in wheat wide hybridizations, which may affect the retention or loss of the alien chromosomes in the hybrids. Thus, the centromere behavior in wide crosses likely has an important impact on the generation of biodiversity, which ultimately has implications for speciation.

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References
1.
Guerra M, Cabral G, Cuacos M, Gonzalez-Garcia M, Gonzalez-Sanchez M, Vega J . Neocentrics and holokinetics (holocentrics): chromosomes out of the centromeric rules. Cytogenet Genome Res. 2010; 129(1-3):82-96. DOI: 10.1159/000314289. View

2.
Kashkush K, Feldman M, Levy A . Transcriptional activation of retrotransposons alters the expression of adjacent genes in wheat. Nat Genet. 2002; 33(1):102-6. DOI: 10.1038/ng1063. View

3.
Topp C, Okagaki R, Melo J, Kynast R, Phillips R, Dawe R . Identification of a maize neocentromere in an oat-maize addition line. Cytogenet Genome Res. 2009; 124(3-4):228-38. PMC: 2813801. DOI: 10.1159/000218128. View

4.
Benson D, Lipman D, Ostell J, Rapp B, Wheeler D . GenBank. Nucleic Acids Res. 1999; 28(1):15-8. PMC: 102453. DOI: 10.1093/nar/28.1.15. View

5.
Neumann P, Navratilova A, Schroeder-Reiter E, Koblizkova A, Steinbauerova V, Chocholova E . Stretching the rules: monocentric chromosomes with multiple centromere domains. PLoS Genet. 2012; 8(6):e1002777. PMC: 3380829. DOI: 10.1371/journal.pgen.1002777. View