Fruit Genealogy
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Pincot, D. D. A., Ledda, M., Feldmann, M. J., Hardigan, M. A., Poorten, T. J., Runcie, D. E., … Knapp, S. J. (2021). Social network analysis of the genealogy of strawberry: Retracing the wild roots of heirloom and modern cultivars. G3: Genes, Genomes, Genetics, 11(3). https://doi.org/10.1093/G3JOURNAL/JKAB015 Hadadinejad, M., Ebadi, A., Naghavi, M. R., & Nikkhah, R. (2011). Genealogy and molecular diversity of Iranian grapevine progenies. Journal of Agricultural Science and Technology, 13(SUPPL.), 1147–1161. https://www.hort.purdue.edu/newcrop/pri/coop38-3.html https://www.saltspringapplecompany.com/nonpareil https://pomiferous.com/ https://smallbiztrends.com/2014/06/psychology-of-colors.html Cliff, M. A., Sanford, K., & Johnston, E. (1999). Evaluation of hedonic scores and R-indices for visual, flavour and texture preferences of apple cultivars by British Columbian and Nova Scotian consumers. Canadian Journal of Plant Science, 79(3), 395–399. https://doi.org/10.4141/P98-101 Cornille, A., Antolín, F., Garcia, E., Vernesi, C., Fietta, A., Brinkkemper, O., … Roldán-Ruiz, I. (2019). A Multifaceted Overview of Apple Tree Domestication. Trends in Plant Science, 24(8), 770–782. https://doi.org/10.1016/j.tplants.2019.05.007 Gharghania, A., Zamani, Z., Talaie, A., Fattahi, R., Hajnajari, H., Oraguzie, N. C., … Gardiner, S. E. (2010). The role of Iran (Persia) in apple (Malus × domestica Borkh.) domestication, evolution and migration via the Silk Trade Route. Acta Horticulturae, 859(April), 229–236. https://doi.org/10.17660/actahortic.2010.859.26 Gritsenko, D., Pozharskiy, A., Dolgikh, S., Aubakirova, K., Kenzhebekova, R., Galiakparov, N., … Sadykov, S. (2022). Apple varieties from Kazakhstan and their relation to foreign cultivars assessed with RosBREED 10K SNP array. European Journal of Horticultural Science, 87(1), 1–8. https://doi.org/10.17660/eJHS.2022/006 Howard, N. P., Micheletti, D., Luby, J. J., Durel, C. E., Denancé, C., Muranty, H., … Albach, D. C. (2022). Pedigree reconstruction for triploid apple cultivars using single nucleotide polymorphism array data. Plants People Planet, (March), 1–14. https://doi.org/10.1002/ppp3.10313 Howard, N. P., Van De Weg, E., Bedford, D. S., Peace, C. P., Vanderzande, S., Clark, M. D., … Luby, J. J. (2017). Elucidation of the Honeycrisp’ pedigree through haplotype analysis with a multi-family integrated SNP linkage map and a large apple (Malus×domestica) pedigree-connected SNP data set. Horticulture Research, 4(January), 1–7. https://doi.org/10.1038/hortres.2017.3 Luby, J. J., Howard, N. P., Tillman, J. R., & Bedford, D. S. (2022). Extended Pedigrees of Apple Cultivars from the University of Minnesota Breeding Program Elucidated Using SNP Array Markers. HortScience, 57(3), 472–477. https://doi.org/10.21273/HORTSCI16354-21 Noiton, D. A. M., & Alspach, P. A. (1996). Founding Clones , Inbreeding , Coancestry , and Status Number of Modern Apple Cultivars, 121(5), 773–782. Ordidge, M., Kirdwichai, P., Fazil Baksh, M., Venison, E. P., George Gibbings, J., & Dunwell, J. M. (2018). Genetic analysis of a major international collection of cultivated apple varieties reveals previously unknown historic heteroploid and inbred relationships. PLoS ONE, 13(9), 1–26. https://doi.org/10.1371/journal.pone.0202405 Spence, C. (2015). On the psychological impact of food colour. Flavour, 4(1), 1–16. https://doi.org/10.1186/s13411-015-0031-3
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