MGG_2024v15n1

Maize Genomics and Genetics 2024, Vol.15, No.1, 36-48 http://cropscipublisher.com/index.php/mgg 48 Liu Z.B., Cook J., Melia-Hancock S., Guill K., Bottoms C., Garcia A., Ott O., Nelson R., Recker J.R., Balint‐Kurti P., Larsson S., Lepak N., Buckler E., Trimble L.A., Tracy W., McMullen M., and Flint-Garcia S., 2016, Expanding maize genetic resources with predomestication alleles: maize-teosinte introgression populations, The Plant Genome, 9(1): 1-18. https://doi.org/10.3835/plantgenome2015.07.0053 Loáisiga C.H., Kolodinska Brantestam A., Díaz O., Salomon B., and Merker A., 2011, Genetic diversity in seven populations of Nicaraguan teosinte (Zea nicaraguensis Iltis et Benz) as estimated by microsatellite variation, Genetic Resources and Crop Evolution, 58: 1021-1028. https://doi.org/10.1007/s10722-010-9637-6 Matsuoka Y., Vigouroux Y., Goodman M., Sanchez G.J., Buckler E., and Doebley J., 2002, A single domestication for maize shown by multilocus microsatellite genotyping, Proceedings of the National Academy of Sciences of the United States of America, 99(9): 6080-6084. https://doi.org/10.1073/pnas.052125199 Panda S., Borkataki S., Reddy M.D., and Nanda S., 2020, Domestication and evolution of maize, International Journal of Chemical Studies, 8(1): 1834-1838 https://doi.org/10.22271/chemi.2020.v8.i1aa.8530 Ramos-Madrigal J., Smith B.D., Moreno-Mayar J.V., Gopalakrishnan S., Ross-Ibarra J., Gilbert M., and Wales N., 2016, Genome sequence of a 5 310-Year-Old maize cob provides insights into the early stages of maize domestication, Current Biology, 26(23): 3195-3201. https://doi.org/10.1016/j.cub.2016.09.036 PMid:27866890 Silva, N., Vidal, R., Costa, F.M., Vaio, M., and Ogliari J.B., 2015, Presence of Zea luxurians (Durieu and Ascherson) bird in Southern Brazil: implications for the conservation of wild relatives of maize, PLoS One, 10(10): e0139034. https://doi.org/10.1371/journal.pone.0139034 PMid:26488577 PMCid:PMC4619479 Swanson-Wagner R.A., Eichten S.R., Kumari S., Tiffin P., Stein J., Ware D., and Springer N., 2010, Pervasive gene content variation and copy number variation in maize and its undomesticated progenitor, Genome Research, 20(12): 1689-1699. https://doi.org/10.1101/gr.109165.110 PMid:21036921 PMCid:PMC2989995 Tang Q., Rong T., Song Y., Yang J., Pan G., Li W., Huang Y., and Moju C., 2005, Introgression of Perennial Teosinte Genome into Maize and Identification of Genomic In Situ Hybridization and Microsatellite Markers, Crop Science, 45(2): 717-721. https://doi.org/10.2135/cropsci2005.0717 Wang H., Nussbaum-Wagler T., Li B., Zhao Q., Vigouroux Y., Faller M., Bomblies K., Lukens L., and Doebley J., 2005, The origin of the naked grains of maize, Nature, 436: 714-719. https://doi.org/10.1038/nature03863 Wang R.L., Stec, A., Hey J., Lukens L., and Doebley J., 1999, The limits of selection during maize domestication, Nature, 398: 236-239. https://doi.org/10.1038/18435 Wang X.F., Chen Q.Y., Wu Y.Y., Lemmon Z.H., Xu G., Huang C., Liang Y., Xu D., Li D., Doebley J., and Tian F., 2017, Genome-wide analysis of transcriptional variability in a large maize-teosinte population, Molecular Plant, 11(3): 443-459. https://doi.org/10.1016/j.molp.2017.12.011 PMid:29275164 Warburton M., Wilkes G., Taba S., Charcosset A., Mir, C., Dumas F., Madur D., Dreisigacker S., Bedoya C., Prasanna B., Xie C., Hearne S., and Franco J., 2011, Gene flow among different teosinte taxa and into the domesticated maize gene pool, Genetic Resources and Crop Evolution, 58(8): 1243-1261. https://doi.org/10.1007/s10722-010-9658-1 Wilkes G., 2007, Urgent notice to all maize researchers: disappearance and extinction of the last wild teosinte population is more than half completed, Maydica, 52: 49-58. Xu G.H., Cao J., Wang X., Chen Q., Jin W., Li Z., and Tian F., 2019, Evolutionary metabolomics identifies substantial metabolic divergence between maize and its wild ancestor, teosinte, The Plant Cell, 31(9): 1990-2009. https://doi.org/10.1105/tpc.19.00111 Zavala-López M., López-Tavera E., Figueroa-Cárdenas J.D., Serna-Saldívar S., and García-Lara S., 2018, Screening of major phenolics and antioxidant activities in teosinte populations and modern maize types, Journal of Cereal Science, 79: 276-285. https://doi.org/10.1016/j.jcs.2017.11.007

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