GAB_2024v15n6

Genomics and Applied Biology 2024, Vol.15, No.6, 320-332 http://bioscipublisher.com/index.php/gab 330 References Abirami K., Swain S., Baskaran V., Venkatesan K., Sakthivel K., and Bommayasamy N., 2021, Distinguishing three Dragon fruit (Hylocereus spp.) species grown in Andaman and Nicobar Islands of India using morphological, biochemical and molecular traits, Scientific Reports, 11(1): 2894. https://doi.org/10.1038/s41598-021-81682-x Abouseadaa H., Atia M., Younis I., Issa M., Ashour H., Saleh I., Osman G., Arif I., and Mohsen E., 2020, Gene-targeted molecular phylogeny, phytochemical profiling, and antioxidant activity of nine species belonging to family Cactaceae, Saudi Journal of Biological Sciences, 27: 1649-1658. https://doi.org/10.1016/j.sjbs.2020.03.007 Amaral D.T., Bombonato J.R., da Silva Andrade S.C., Moraes E.M., and Franco F.F., 2021, The genome of a thorny species: comparative genomic analysis among South and North American Cactaceae, Planta, 254(3): 44. https://doi.org/10.1007/s00425-021-03690-5 Angulo-Bejarano P.I., Gómez-García M.D.R., Valverde M.E., and Paredes-López O., 2019, Nopal (Opuntia spp.) and its effects on metabolic syndrome: new insights for the use of a millenary plant, Current Pharmaceutical Design, 25(32): 3457-3477. https://doi.org/10.2174/1381612825666191010171819 Arakaki M., Christin P., Nyffeler R., Lendel A., Eggli U., Ogburn R., Spriggs E., Moore M., and Edwards E., 2011, Contemporaneous and recent radiations of the world's major succulent plant lineages, Proceedings of the National Academy of Sciences, 108: 8379-8384. https://doi.org/10.1073/pnas.1100628108 Cattivelli L., Rizza F., Badeck F., Mazzucotelli E., Mastrangelo A., Francia E., Marè C., Tondelli A., and Stanca A., 2008, Drought tolerance improvement in crop plants: An integrated view from breeding to genomics, Field Crops Research, 105: 1-14. https://doi.org/10.1016/J.FCR.2007.07.004 Ceccarelli S., and Grando S., 2022, Return to agrobiodiversity: Participatory plant breeding, Diversity, 14(2): 126. https://doi.org/10.3390/d14020126 Chen J.Y., Xie F.F., Cui Y.Z., Chen C.B., Lu W.J., Hu X.D., Hua Q.Z., Zhao J., Wu Z.J., Gao D., Zhang Z.K., Jiang W.K., Sun Q.M., Hu G.B., and Qin Y.H., 2021, A chromosome-scale genome sequence of pitaya (Hylocereus undatus) provides novel insights into the genome evolution and regulation of betalain biosynthesis, Horticulture Research, 8: 164. https://doi.org/10.1038/s41438-021-00612-0 Copetti D., Búrquez A., Shimizu K.K., Wing R.A., Sanderson M.J., and Wojciechowski M.F., 2023, An improved genome assembly of the saguaro cactus (Carnegiea gigantea (Engelm.) 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