Chromosome stability of synthetic Triticum turgidum-Aegilops umbellulata hybrids.

Turgidum turgidum–Aegilops umbellulata Chromosome loss and gain Molecular cytogenetics Unreduced gametes Variation in chromosome number and structure

Journal

BMC plant biology
ISSN: 1471-2229
Titre abrégé: BMC Plant Biol
Pays: England
ID NLM: 100967807

Informations de publication

Date de publication:
13 May 2024
Historique:
received: 22 08 2023
accepted: 05 05 2024
medline: 13 5 2024
pubmed: 13 5 2024
entrez: 12 5 2024
Statut: epublish

Résumé

Unreduced gamete formation during meiosis plays a critical role in natural polyploidization. However, the unreduced gamete formation mechanisms in Triticum turgidum-Aegilops umbellulata triploid F In this study, 11 T.turgidum-Ae. umbellulata triploid F In the aneuploid F

Sections du résumé

BACKGROUND BACKGROUND
Unreduced gamete formation during meiosis plays a critical role in natural polyploidization. However, the unreduced gamete formation mechanisms in Triticum turgidum-Aegilops umbellulata triploid F
RESULTS RESULTS
In this study, 11 T.turgidum-Ae. umbellulata triploid F
CONCLUSION CONCLUSIONS
In the aneuploid F

Identifiants

pubmed: 38735929
doi: 10.1186/s12870-024-05110-8
pii: 10.1186/s12870-024-05110-8
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

391

Subventions

Organisme : the Sichuan Science and Technology Program, China
ID : 2022YFH0105
Organisme : the Sichuan Science and Technology Program, China
ID : 2022ZDZX0014
Organisme : the open topic of Environment-friendly Crop Germplasm Innovation and Genetic Improvement Key Laboratory of Sichuan Province
ID : 2022LYFK01
Organisme : the National Natural Science Foundation of China
ID : U23A20187
Organisme : the Key Research and Development Program of Sichuan Province, China
ID : 2021YFYZ0002

Informations de copyright

© 2024. The Author(s).

Références

Wang SW, Yin LN, Tanaka H, Tanaka K, Tsujimoto H. Wheat-Aegilops chromosome addition lines showing high iron and zinc contents in grains. Breed Sci. 2011;61:189–95.
doi: 10.1270/jsbbs.61.189
Wang J, Wang C, Zhen SM, Li XH, Yan YM. Low molecular weight glutenin subunits from the 1U genome of Aegilops umbellulata confer superior dough rheological properties and improve breadmaking quality of bread wheat. J Agri Food Sci. 2017;98:2156–67.
doi: 10.1002/jsfa.8700
Sears ER. The transfer of leaf rust resistance from Aegilops umbellulata to wheat. Brookhaven Symposia Biology. 1956;9:1–21.
Edae EA, Rouse MN. Bulked segregant analysis RNA-seq (BSR-Seq) validated a stem resistance locus in Aegilops umbellulata, a wild relative of wheat. PLoS ONE. 2019;14:e0215492.
pubmed: 31539379 pmcid: 6754143 doi: 10.1371/journal.pone.0215492
Cakmak I, Tolay I, Özkan H, Özdemir A, Braun HJ. Variation in zinc efficiency among and within Aegilops species. J Plant Nutr Soil Sc. 1999;162:257–62.
doi: 10.1002/(SICI)1522-2624(199906)162:3<257::AID-JPLN257>3.0.CO;2-Z
Bansal M, Adamski NM, Toor PI, Kaur S, Molnár I, Holušová K, Vrána J, Doležel J, Valárik M, Uauy C, Chhuneja P. Aegilops umbellulata introgression carrying leaf rust and stripe rust resistance genes Lr76 and Yr70 located to 9.47-Mb region on 5DS telomeric end through a combination of chromosome sorting and sequencing. Theor Appl Genet. 2020;133:903–15.
pubmed: 31894365 doi: 10.1007/s00122-019-03514-x
Song ZP, Dai SF, Jia YN, Zhao L, Kang LZ, Liu DC, Wei YM, Zheng YL, Yan ZH. Development and characterization of Triticum turgidum-Aegilops umbellulata amphidiploids. Plant Genet Resour. 2019;17:24–32.
doi: 10.1017/S1479262118000254
Song ZP, Zuo YY, Xiang Q, Li WJ, Li J, Liu G, Dai SF, Yan ZH. Investigation of Aegilops umbellulata for stripe rust resistance, heading date, and iron, zinc, and gluten protein content. J Integr Agr. 2023;22:1258–65.
doi: 10.1016/j.jia.2022.08.014
Zhang LQ, Yen Y, Zheng YL, Liu DC. Meiotic restriction in emmer wheat is controlled by one or more nuclear genes that continue to function in derived lines. Sex Plant Reprod. 2007;20:159–66.
doi: 10.1007/s00497-007-0052-x
Peloquin SJ, Boiteux LS, Carputo D. Meiotic mutants in potato: valuable variants. Genetics. 1999;153:1493–9.
pubmed: 10581260 pmcid: 1460881 doi: 10.1093/genetics/153.4.1493
Loginova DB, Silkova OG. Mechanisms of unreduced gamete formation in flowering plants. Russ J Genet. 2017;53:741–56.
doi: 10.1134/S1022795417070080
Zhang LQ, Liu DC, Zheng Y, Yan ZH, Dai SF, Li YF, Jiang Q, Ye YQ, Yen Y. Frequent occurrence of unreduced gametes in Triticum turgidum-Aegilops tauschii hybrids. Euphytica. 2010;172:285–94.
doi: 10.1007/s10681-009-0081-7
Silkova OG, Shchapova AI, Shumny VK. Meiotic restitution in amphihaploids in the tribe Triticeae. Russ J Genet. 2011;47:383–93.
doi: 10.1134/S1022795411040120
Hao M, Luo JT, Zeng DY, Zhang L, Ning SZ, Yuan ZW, Zheng YL, Zhang HG, Liu DC. QTug.sau-3B is a major quantitative trait locus for wheat hexaploidization. G3-Genes. Genom Genet. 2014;4:1943–53.
Matsuoka Y, Mori N. Reproductive and genetic roles of the maternal progenitor in the origin of common wheat (Triticum aestivum L). Ecol Evol. 2020;10:13926–37.
pubmed: 33391691 pmcid: 7771132 doi: 10.1002/ece3.6985
Xu SJ, Joppa LR. First division restitution in hybrids of Langdon durum disomic substitution lines with rye and Aegilops squarrosa. Plant Breeding. 2000;119:233–41.
doi: 10.1046/j.1439-0523.2000.00472.x
Silkova OG, Loginova DB. Sister chromatid separation and monopolar spindle organization in the first meiosis as two mechanisms of unreduced gametes formation in wheat–rye hybrids. Plant Reprod. 2016;29:199–213.
pubmed: 26994004 pmcid: 4909807 doi: 10.1007/s00497-016-0279-5
Tiwari VK, Rawat N, Neelam K, Randhawa GS, Singh K, Chhuneja P, Dhaliwal HS. Development of Triticum turgidum subsp. durum-Aegilops longissimia amphiploids with high iron and zinc content through unreduced gamete formation in F
pubmed: 18772954 doi: 10.1139/G08-057
Mirzaghaderi G, Fathi N. Unreduced gamete formation in wheat: Aegilops triuncialis interspecific hybrids leads to spontaneous complete and partial amphiploids. Euphytica. 2015;206:67–75.
doi: 10.1007/s10681-015-1470-8
Fakhri Z, Mirzaghaderi G, Ahmadian S, Mason AS. Unreduced gamete formation in wheat × Aegilops spp. hybrids is genotype specific and prevented by shared homologous subgenomes. Plant Cell Rep. 2016;35:1143–54.
pubmed: 26883221 doi: 10.1007/s00299-016-1951-9
Zuo YY, Xiang Q, Dai SF, Song ZP, Bao TY, HaoM, Zhang LQ, Liu G, Li J, Liu DC, Wei YM, Zheng YL, Yan ZH. Development and characterization of Triticum turgidum-Aegilops comosa and T. turgidum-Ae. Markgrafii amphidiploids. Genome. 2020;63:263–73.
pubmed: 32160479 doi: 10.1139/gen-2019-0215
Zhu ZD, Zhou RH, Kong XY, Dong YC, Jia JZ. Microsatellite marker identification of a Triticum aestivum-Aegilops umbellulata substitution line with powdery mildew resistance. Euphytica. 2006;150:149–53.
doi: 10.1007/s10681-006-9103-x
Okada M, Yoshida K, Takumi S. Hybrid incompatibilities in interspecific crosses between tetraploid wheat and its wild diploid relative Aegilops umbellulata. Plant Mol Biol. 2017;95:625–45.
pubmed: 29090430 doi: 10.1007/s11103-017-0677-6
Okada M, Michikawa A, Yoshida K, Nagaki K, Ikeda TM, Takumi S. Phenotypic effects of the U-genome variation in nascent synthetic hexaploids derived from interspecific crosses between durum wheat and its diploid relative Aegilops umbellulata. PLoS ONE. 2020;15:e0231129.
pubmed: 32240263 pmcid: 7117738 doi: 10.1371/journal.pone.0231129
Loureiro I, Escorial C, García-Baudin JM, Chueca MC. Spontaneous wheat-Aegilops biuncialis, ae. Geniculata and ae. Triuncialis amphiploid production, a potential way of gene transference. Span J Agric Res. 2009;7:614–20.
doi: 10.5424/sjar/2009073-445
MatsuokaY. Evolution of polyploidy Triticum wheats under cultivation: the role of domestication, natural hybridization and allopolyploid speciation in their diversification. Plant Cell Physiol. 2011;52:750–64.
doi: 10.1093/pcp/pcr018
Cai X, Xu SS. Meiosis-driven genome variation in plants. Curr Genomics. 2007;8:151–61.
pubmed: 18645601 pmcid: 2435351 doi: 10.2174/138920207780833847
Jauhar PP. Meiotic restitution in wheat polyhaploid (amphihaploids): a potent evolutionary force. J Hered. 2007;98:188–93.
pubmed: 17416932 doi: 10.1093/jhered/esm011
Ramsey J. Unreduced gametes and neopolyploids in natural populations of Achillea borealis. Heredity. 2007;98:143–50.
pubmed: 17091127 doi: 10.1038/sj.hdy.6800912
Ramsey J, Schemske DW. Pathways, mechanisms and rates of polyploidy formation in the flowering plants. Annu Rev Ecol Syst. 1998;29:267–501.
doi: 10.1146/annurev.ecolsys.29.1.467
Wang CJ, Zhang LQ, Dai SF, Zheng YL, Zhang HG, Liu DC. Formation of unreduced gametes is impeded by homologous chromosome pairing in tetraploid Triticum turgidum×Aegilops tauschii hybrids. Euphytica. 2010;175:323–9.
doi: 10.1007/s10681-010-0173-4
Lim K, Shen T, Barba-Gonzalez R, Ramanna MS, Van Tuyl JM. Occurrence of SDR 2n-gamete in Lilium hybrids. Breed Sci. 2004;54:13–8.
doi: 10.1270/jsbbs.54.13
Matsuoka Y, Nasuda S. Durum wheat as a candidate for the unknown female progenitor of bread wheat: an empirical study with a highly fertile F
pubmed: 15448900 doi: 10.1007/s00122-004-1806-6
Gaeta RT, Pires JC. Homoeologous recombination in allopolyploids: the polyploid ratchet. New Phytol. 2010;186:18–28.
pubmed: 20002315 doi: 10.1111/j.1469-8137.2009.03089.x
Xiong ZY, Gaeta RT, Pires JC. Homoeologous shuffling and chromosome compensation maintain genome balance in resynthesized allopolyploid Brassica napus. Proc Natl Acad Sci USA. 2011;108:7908–13.
pubmed: 21512129 pmcid: 3093481 doi: 10.1073/pnas.1014138108
Chester M, Gallagher JP, Symonds VV, Silva AVC, Mavrodiev EV, Leitch AR, Soltis PS, Soltis DE. Extensive chromosomal variation in a recently formed natural allopolyploid species, Tragopogon miscellus (Asteraceae). Proc Natl Acad Sci USA. 2012;109:1176–81.
pubmed: 22228301 pmcid: 3268322 doi: 10.1073/pnas.1112041109
Zhang HK, Bian Y, Gou XW, Zhu B, Xu CM, Qi B, Li N, Rustgi S, Zhou H, Han FP, Jiang JM, von Wettstein D, Liu B. Persistent whole-chromosome aneuploidy is generally associated with nascent allohexaploid wheat. Proc. Natl Acad Sci USA. 2013;110:3447–3452.
Mestiri I, Chagué V, Tanguy A, Huneau C, Huteau V, Belcram H, Coriton O, Chalhoub B, Jahier J. Newly synthesized wheat allohexaploids display progenitordependent meiotic stability and aneuploidy but structural genomic additivity. New Phytol. 2010;186:86–101.
pubmed: 20149116 doi: 10.1111/j.1469-8137.2010.03186.x
Zhao LB, Xie D, Fan CL, Zhang SJ, Huang L, Ning SZ, Jiang B, Zhang LQ, Yuan ZW, Liu DC, Hao M. Chromosome stability of synthetic-natural wheat hybrids. Front Plant Sci. 2021;112:654382.
doi: 10.3389/fpls.2021.654382
Hao M, Zhang Q, Zhao LB, Dai SF, Li AL, Yang WY, Xie D, Li QC, Ning SZ, Yan ZH, Wu BH, Lan XJ, Yuan ZW, Huang L, Wang JR, Zheng K, Chen WS, Yu M, Chen XJ, Chen MP, Wei YM, Zhang HG, Kishii M, Hawkesford MJ, Mao L, Zheng YL, Liu DC. A breeding strategy targeting the secondary gene pool of bread wheat: introgression from a synthetic hexaploid wheat. Theor Appl Genet. 2019;132:2285–94.
pubmed: 31049633 doi: 10.1007/s00122-019-03354-9
Zhao N, Xu L, Zhu B, Li M, Zhang H, Qi B, Xu CM, Han FP, Liu B. Chromosomal and genome-wide molecular changes associated with initial stages of allohexaploidization in wheat can be transit and incidental. Genome. 2011;54:692–9.
pubmed: 21797821 doi: 10.1139/g11-028
Zeng DY, Guan JT, Luo JT, Zhao LB, Li YZ, Chen WS, Zhang LQ, Ning SZ, Yuan ZW, Li AL, Zheng YL, Mao L, Liu DC, Hao M. A transcriptomic view of the ability of nascent hexaploid wheat to tolerate aneuploidy. BMC Plant Biol. 2020;20:97.
pubmed: 32131739 pmcid: 7057484 doi: 10.1186/s12870-020-2309-6
Sears ER. Misdivision of univalents in common wheat. Chromosoma. 1952;4:535–50.
pubmed: 14945063 doi: 10.1007/BF00325789
Zohary D, Feldman M. Hybridization between amphidiploids and the evolution of polyploids in the wheat (Aegilops-Triticum) group. Evolution. 1962;16:44–61.
doi: 10.2307/2406265
Zhang LQ, Yan ZH, Dai SF, Chen QJ, Yuan ZW, Zheng YL, Liu DC. The crossability of Triticum turgidum with Aegilops tauschii. Cereal Res Comm. 2008;36:417–27.
doi: 10.1556/CRC.36.2008.3.6
Hao M, Luo JT, Yang M, Zhang LQ, Yan ZH, Yuan ZW, Zheng YL, Zhang HG, Liu DC. Comparison of homoeologous chromosome pairing between hybrids of wheat genotypes Chinese spring ph1b and Kaixian-Luohanmai with rye. Genome. 2011;54:959–64.
pubmed: 22070394 doi: 10.1139/g11-062
Zhao LB, Ning SZ, Yu JJ, Hao M, Zhang LQ, Yuan ZW, Zheng YL, Liu DC. Cytological identification of an Aegilops variabilis chromosome carrying stripe rust resistance in wheat. Breed Sci. 2016;66:522–9.
pubmed: 27795677 pmcid: 5010304 doi: 10.1270/jsbbs.16011
Tang ZX, Yang ZJ, Fu SL. Oligonucleotides replacing the roles of repetitive sequences pAs1, pSc119.2, pTa-535, pTa71, CCS1, and pAWRC.1 for FISH analysis. J Appl Genet. 2014;55:313–8.
pubmed: 24782110 doi: 10.1007/s13353-014-0215-z
Song ZP, Da SF, Bao TY, Zuo YY, Xiang Q, Li J, Liu G, Yan ZH. Analysis of structural genomic diversity in Aegilops umbellulata, Ae. Markgrafii, ae. Comosa, and ae. Uniaristata by fluorescence in situ hybridization karyotyping. Front Plant Sci. 2020;11:710.
pubmed: 32655588 pmcid: 7325912 doi: 10.3389/fpls.2020.00710
Kidwell KK, Osborn TC. Simple plant DNA isolation procedures. In: Beckmann JS, Osborn TC, editors. Plant genomes: methods for genetic and physical mapping. Dordrecht: Springer; 1992. pp. 1–13.
Zhao LB, Nin SZ, Yi YJ, Zhang LQ, Yuan ZW, Wang JR, Zheng YL, Hao M, Liu DC. Fluorescence in situ hybridization karyotyping reveals the presence of two distinct genomes in the taxon Aegilops tauschii. BMC Genomics. 2018;19:3.
pubmed: 29291709 pmcid: 5748962 doi: 10.1186/s12864-017-4384-0

Auteurs

Zhongping Song (Z)

Triticeae Research Institute, Sichuan Agricultural University, Chengdu, 611130, P. R. China.
Neijiang Normal University, Neijiang, 641000, P. R. China.

Yuanyuan Zuo (Y)

Triticeae Research Institute, Sichuan Agricultural University, Chengdu, 611130, P. R. China.

Wenjia Li (W)

Triticeae Research Institute, Sichuan Agricultural University, Chengdu, 611130, P. R. China.

Shoufen Dai (S)

Triticeae Research Institute, Sichuan Agricultural University, Chengdu, 611130, P. R. China.

Gang Liu (G)

Triticeae Research Institute, Sichuan Agricultural University, Chengdu, 611130, P. R. China.

Zongjun Pu (Z)

Crop Research Institute, Sichuan Academy of Agricultural Science, Chengdu, 610066, P. R. China.
Environment-friendly Crop Germplasm Innovation and Genetic Improvement Key Laboratory of Sichuan Province, Chengdu, 610066, P. R. China.

Zehong Yan (Z)

Triticeae Research Institute, Sichuan Agricultural University, Chengdu, 611130, P. R. China. zhyan104@163.com.

Articles similaires

Meiosis Schizosaccharomyces Schizosaccharomyces pombe Proteins Spores, Fungal
Genome Size Genome, Plant Magnoliopsida Evolution, Molecular Arabidopsis
Triticum Transcription Factors Gene Expression Regulation, Plant Plant Proteins Salt Stress

Classifications MeSH