TGG_2024v15n4

Triticeae Genomics and Genetics, 2024, Vol.15, No.4, 206-220 http://cropscipublisher.com/index.php/tgg 220 Wamalwa M., Tadesse Z., Muthui L., Yao N., Zegeye H., Randhawa M., Wanyera R., Uauy C., and Shorinola O., 2020, Allelic diversity study of functional genes in East Africa bread wheat highlights opportunities for genetic improvement, Molecular Breeding, 40: 104. https://doi.org/10.1007/s11032-020-01185-x Wan H., Yang F., Li J., Wang Q., Liu Z., Tang Y., and Yang W., 2023, Genetic improvement and application practices of synthetic hexaploid wheat, Genes, 14(2): 283. https://doi.org/10.3390/genes14020283 PMid:36833210 PMCid:PMC9956247 Winfield M., Allen A., Wilkinson P., Burridge A., Barker G., Coghill J., Waterfall C., Wingen L., Griffiths S., and Edwards K., 2017, High‐density genotyping of the A.E. Watkins Collection of hexaploid landraces identifies a large molecular diversity compared to elite bread wheat, Plant Biotechnology Journal, 16: 165-175. https://doi.org/10.1111/pbi.12757 PMid:28500796 PMCid:PMC5785351 Zaïma M., Hassounia K., Gambac F., Filali-Maltoufa A., Belkadia B., Sourourd A., Amrib A., Nachitb M., Taghoutie M., and Bassib F., 2017, Wide crosses of durum wheat (Triticum durumDesf.) reveal good disease resistance, yield stability, and industrial quality across Mediterranean sites, Field Crops Research, 214: 219-227. https://doi.org/10.1016/j.fcr.2017.09.007 Zhang D., Zhou Y., Zhao X., Lv L., Zhang C., Li J., Sun G., Li S., and Song C., 2018, Development and utilization of introgression lines using synthetic octaploid wheat (Aegilops tauschii ×HexaploidWheat) as donor, Frontiers in Plant Science, 9: 1113. https://doi.org/10.3389/fpls.2018.01113 PMid:30123230 PMCid:PMC6085485

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