MPB_2024v15n4

Molecular Plant Breeding 2024, Vol.15, No.4, 167-177 http://genbreedpublisher.com/index.php/mpb 176 Koide Y., Kuniyoshi D., and Kishima Y., 2020, Fertile tetraploids: new resources for future rice breeding? Frontiers in Plant Science, 11: 1231. https://doi.org/10.3389/fpls.2020.01231 PMid:32849760 PMCid:PMC7432136 Ku T., Gu H., Li Z., Tian B., Xie Z., Shi G., Chen W., Wei F., and Cao G., 2022, Developmental differences between anthers of diploid and autotetraploid rice at meiosis, Plants, 11(13): 1647. https://doi.org/10.3390/plants11131647 PMid:35807599 PMCid:PMC9268837 Li X., Shahid M., Xia J., Lu Z., Fang N., Wang L., Wu J., Chen Z., and Liu X., 2017, Analysis of small RNAs revealed differential expressions during pollen and embryo sac development in autotetraploid rice, BMC Genomics, 18: 129. https://doi.org/10.1186/s12864-017-3526-8 PMid:28166742 PMCid:PMC5295217 Li X., Yu H., Jiao Y., Shahid M., Wu J., and Liu X., 2018, Genome-wide analysis of DNA polymorphisms, the methylome and transcriptome revealed that multiple factors are associated with low pollen fertility in autotetraploid rice, PLoS One, 13(8): e0201854. https://doi.org/10.1371/journal.pone.0201854 PMid:30080873 PMCid:PMC6078310 Liu X., Wu J., Lu Z., and Shahid M., 2023, Autotetraploid rice: challenges and opportunities, Hereditas, 45(9): 781-792. Luan L., Tu S., Long W., Wang X., Liu Y., Kong F., He T., Yan W., and Yu M., 2007, Cytogenetic studies on two F1 hybrids of autotetraploid rice varieties showing extremely high level of heterosis, Plant Systematics and Evolution, 267: 205-213. https://doi.org/10.1007/s00606-007-0577-3 Nakamori E., 1933, On the occurrence of the tetraploid plant of rice, Oryza sativa L., Proceedings of the Imperial Academy, 9(7): 340-341. https://doi.org/10.2183/pjab1912.9.340 Oka H., 1955, Studies on tetraploid rice VI. fertility variation and segregation ratios for several characters in tetraploid hybrids of rice, Oryza sativa L., Cytologia, 20(3): 258-266. https://doi.org/10.1508/cytologia.20.258 Samonte S., Sanchez D., Alpuerto J., Wilson L., Yan Z., and Thomson M., 2023, Heterosis and heterotic grouping effects on grain yield, height, tiller density, and days to heading in hybrid rice (Oryza Sativa L.), Journal of Breeding and Genetics, 55(3): 623-639. https://doi.org/10.54910/sabrao2023.55.3.3 Shahid M.Q., Sun J., Wei C., Peng Z., and Liu X., 2010, Studies on the abnormality of embryo sac and pollen fertility in autotetraploid rice during different growing seasons, Pakistan Journal of Botany, 42: 7-19. Song S., Wang T., Li Y., Hu J., Kan R., Qiu M., Deng Y., Liu P., Zhang L., Dong H., Li C., Yu D., Li X., Yuan D., Yuan L., and Li L., 2021, A novel strategy for creating a new system of third-generation hybrid rice technology using a cytoplasmic sterility gene and a genic male-sterile gene, Plant Biotechnology Journal, 19(2): 251-260. https://doi.org/10.1111/pbi.13457 PMid:32741081 PMCid:PMC7868973 Tu S., Kong F., Xu Q., and He T., 2003, Breakthrough in hybrid rice breeding with autotetraploid, Bulletin of the Chinese Academy of Sciences, 6: 426-428. Tu S., Luan L., Liu Y., Long W., Kong F., He T., Xu Q., Yan W., and Yu M., 2007, Production and heterosis analysis of rice autotetraploid hybrids, Crop Science, 47: 2356-2363. https://doi.org/10.2135/cropsci2007.01.0058 Wu J., Chen Y., Lin H., Chen Y., Yu H., Lu Z., Li X., Zhou H., Chen Z., and Liu X., 2020, Comparative cytological and transcriptome analysis revealed the normal pollen development process and up-regulation of fertility-related genes in newly developed tetraploid rice, International Journal of Molecular Sciences, 21(19): 7046. https://doi.org/10.3390/ijms21197046 PMid:32987934 PMCid:PMC7582553 Wu J., Hu C., Shahid M., Guo H., Zeng Y., Liu X., and Lu Y., 2013, Analysis on genetic diversification and heterosis in autotetraploid rice, Springer Plus, 2: 439. https://doi.org/10.1186/2193-1801-2-439 PMid:24046812 PMCid:PMC3773102 Wu J., Shahid M.Q., Guo H., Yin W., Chen Z., Wang L., Liu X., and Lu Y., 2014, Comparative cytological and transcriptomic analysis of pollen development in autotetraploid and diploid rice, Plant Reproduction, 27(4): 181-196. https://doi.org/10.1007/s00497-014-0250-2 PMid:25262386 Wu J., Shahid M., Chen L., Chen Z., Wang L., Liu X., and Lu Y., 2015, Polyploidy enhances F1 pollen sterility loci interactions that increase meiosis abnormalities and pollen sterility in autotetraploid rice, Plant Physiology, 169: 2700-2717. https://doi.org/10.1104/pp.15.00791 PMid:26511913 PMCid:PMC4677883 Wu J., Shahid M., Chen M., Li X., Li J., Xu X., Du S., and Liu X., 2019, Cytological and transcriptome analysis reveal that interaction at Sb pollen sterility locus cause down-regulation of important meiosis-related genes associated with high pollen sterility in autotetraploid rice hybrids, Plant Physiology and Biochemistry, 141: 73-82.

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