RGG_2024v15n1

Rice Genomics and Genetics 2024, Vol.15, No.1, 12-18 http://cropscipublisher.com/index.php/rgg 18 exploration. These efforts will help improve rice production and quality, thereby promoting global food security and sustainable agricultural development. Acknowledgments The author extends sincere thanks to two anonymous peer reviewers for their invaluable feedback on the manuscript. Conflict of Interest Disclosure The author affirms that this research was conducted without any commercial or financial relationships that could be construed as a potential conflict of interest. References Elena B., and Estela G., 2021, Modern approaches for the genetic improvement of rice, wheat and maize for abiotic constraints-related traits: a comparative overview, Agronomy, 11(2): 376. https://doi.org/10.3390/agronomy11020376 Li S.P., Li H.Y., Guo M.X., and Zhao X.S., 2019, Cloning and application of yield traits gene in rice, Hubei Nongye Kexue (College of Life Sciences of Hubei University), 58(16): 5-9. Mehta S., Lal S.K., Sahu K.P., Ajay K.V., Mukesh K., Vijay S., Panditi V., Chandrapal V., Renu Y., Rizwan J., Miraj A., Mohan M.A., and Malireddy K.R., 2020, CRISPR/Cas9-edited rice: a new frontier for sustainable agriculture, New Frontiers In Stress Management for Durable Agriculture, 3(8): 427-458. https://doi.org/10.1007/978-981-15-1322-0_23 Mishra R., Joshi R.K., and Zhao K., 2018, Genome editing in rice: recent advances, challenges, and future implications, Frontiers in Plant Science, 9: 1361. https://doi.org/10.3389/fpls.2018.01361 Mohammad A., Muhammad A., and Muhammad S., 2021, Genetic improvement in physiological traits of rice yield, Genetic Improvement of Field Crops CRC Press, 2021: 413-455. https://doi.org/10.1201/9781003210238-9 Romero F.M., and Gatica-Arias A., 2019, CRISPR/Cas9: development and application in rice breeding, Rice Science, 26(5): 265-281. https://doi.org/10.1016/j.rsci.2019.08.001 Romero F.M., and Gatica-Arias A., 2019, CRISPR/Cas9: development and application in rice breeding, Rice Science, 26(5): 265-281. https://doi.org/10.1016/j.rsci.2019.08.001 Xin G.W., Hu X.X., Wang K.J., and Wang X.C., 2018, Cas9 protein variant VQR recognizes NGAC protospacer adjacent motif in rice, Yichuan (Hereditas), 40(12): 1112-1119. Xu Z.Y., Li H., and Zhou H.B., 2022, Research progress on CRISPR/Cas gene editing technology cooperating with plant virus, Journal of Zhejiang University (Agriculture & Life Sciences), 48(6): 709-720. Zhang A., Liu Y., Wang F, Li T., Chen Z.H., Kong D.Y., Bi J.G., Zhang F.Y., Luo X.X., Wang J.H., Tang J.J., Yu X.Q., Liu G.L., and Luo L.J., 2019, Enhanced rice salinity tolerance via CRISPR/Cas9-targeted mutagenesis of the OsRR22 gene, Molecular Breeding, 39: 1-10. https://doi.org/10.1007/s11032-019-0954-y Zhang M., Wang S., and Yuan M., 2019, An update on molecular mechanism of disease resistance genes and their application for genetic improvement of rice, Molecular Breeding, 39: 1-13. https://doi.org/10.1007/s11032-019-1056-6 Zhang Z., Mao Y., Ha S., Liu W.S., Jose R.B., and Zhu J.K., 2016, A multiplex CRISPR/Cas9 platform for fast and efficient editing of multiple genes in Arabidopsis, Plant Cell Reports, 35: 1519-1533. https://doi.org/10.1007/s00299-015-1900-z Zhou H., Liu B., Weeks D.P., Donald P.W., Martin H.S., and Bing Y., 2014, Large chromosomal deletions and heritable small genetic changes induced by CRISPR/Cas9 in rice, Nucleic Acids Research, 42(17): 10903-10914. https://doi.org/10.1093/nar/gku806

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