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Tytuł artykułu

Evaluation of Drought Resistance and Quality of Different Rice Hybrid Combinations

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Rice is an integral component of the daily food consumptions in China. Drought stress diminishes rice productivity and deteriorates its quality. To further improve the identification and selection system of drought-tolerant rice varieties, this experiment used 130 new rice hybrid combinations as research materials and water stress was carried out during the whole life span, with normal water management as the control, so as to construct a synergistic evaluation standard of drought-tolerance of rice in terms of yield and quality by examining the characteristics of plant height, fruiting rate, yield per plant, and quality. The study showed that (1) the coefficients of variation of the drought tolerance coefficients of the 11 indexes ranged from 3.50% to 44.35%, with the largest coefficient of variation being the yield per plant at 44.35% and the smallest being the grain length at 3.50%. According to the principal component analysis, the cumulative contribution of the first four principal components was 73.022%, which were the total number of grains, the number of solid grains, the effective panicles and plant height. The correlation analysis showed that the drought tolerance composite evaluation value was extremely significantly correlated with plant height, effective panicles, total grain number, number of solid grains, fruiting rate, thousand grain weight and grain width. Based on the results of stepwise regression analysis, the number of grains, plant height and thousand grain weight can be used as drought-resistant identification indexes. (2) Based on the variation characteristics of protein, brown rice rate, ref ined rice rate, whole refined rice rate and straight-chain starch content, 50 high-quality combinations were selected. The results of cluster analysis showed that the 50 rice combinations were divided into three groups, Group I strong drought-resistant with materials HD009, HD024, HD171, HD207, HD432, HD447, HD0451, a total of 7 materials up to the first level of rice indicators; Group II medium drought-resistant with 21 materials up to the first level of rice indicators; Group III drought-sensitive material HD522 up to the first level of rice indicators.
Słowa kluczowe
Rocznik
Strony
371--383
Opis fizyczny
Bibliogr. 26 poz., rys., tab.
Twórcy
autor
  • Anhui Science and Technology University, Fengyang 233100, China
  • Rice Research Institute, Anhui Academy of Agricultural Sciences, Hefei 230031, China
  • Rice Research Institute, Anhui Academy of Agricultural Sciences, Hefei 230031, China
  • Anhui Province Key Laboratory of Rice Germplasm Innovation and Molecular Improvement, Hefei 230031, China
autor
  • Rice Research Institute, Anhui Academy of Agricultural Sciences, Hefei 230031, China
  • Anhui Province Key Laboratory of Rice Germplasm Innovation and Molecular Improvement, Hefei 230031, China
autor
  • Rice Research Institute, Anhui Academy of Agricultural Sciences, Hefei 230031, China
  • Anhui Province Key Laboratory of Rice Germplasm Innovation and Molecular Improvement, Hefei 230031, China
autor
  • Propaganda Department of the People’s Government of Anhui Province, Zongpu Town, Fengyang 233100, China
autor
  • Anhui Science and Technology University, Fengyang 233100, China
autor
  • Anhui Science and Technology University, Fengyang 233100, China
autor
  • Rice Research Institute, Anhui Academy of Agricultural Sciences, Hefei 230031, China
  • Anhui Province Key Laboratory of Rice Germplasm Innovation and Molecular Improvement, Hefei 230031, China
Bibliografia
  • 1. Aznan, A., Gonzalez Viejo, C., Pang, A., Fuentes, S. 2023. Review of technology advances to assess rice quality traits and consumer perception. Food Research International, 172, 113105. https://doi.org/10.1016/j.foodres.2023.113105
  • 2. Cordell, D., Drangert, J.-O., White, S. 2009. The story of phosphorus: Global food security and food for thought. Global Environmental Change, 19(2), 292–305. https://doi.org/10.1016/j.gloenvcha.2008.10.009
  • 3. Hassan, M.A., Dahu, N., Hongning, T., Qian, Z., Yueming, Y., Yiru, L., Shimei, W. 2023. Drought stress in rice: morpho-physiological and molecular responses and marker-assisted breeding. Front Plant Sci., 18(14), 1215371. doi: 10.3389/fpls.2023.1215371. PMID: 37534289; PMCID: PMC10391551.
  • 4. Hu, Y., Wang, Z., Huang, T., Chu, X., Li, J., Yuan, H. et Zhang, Y. 2006. Morphological evaluation indexes for the identification of drought tolerance in rice varieties. Journal of Southwest University of Science and Technology, 1, 102–108.
  • 5. Jiang, H., Xing, X., Meng, X., Chen, J., Yu, K., Xu, X., Zhang, R., Wei, Z., Wang, D., Cang, B., Bai, C., Li, Y., Jiang, Z., Wei, X., Tian, P., Yang, M., Wu, Z. 2023. Research progress in water-saving cultivation of rice in China. Crop Science, 63(5), 2623–2635. https://doi.org/10.1002/csc2.21068
  • 6. Lai, C., Zhang, W., Ma, J., Ying, Y. 2015. Research on drought resistance and comprehensive evaluation of rice in Ningxia. Jiangsu Agricultural Science, 43(8), 86–91. https://doi.org/10.15889/j.issn.1002-1302.2015.08.028
  • 7. Li H., Huang Y., Chen C., Reziya A., Shen Y., Zhang T. 2023. Identification and evaluation of seedling drought resistance of yellow clover germplasm resources. China Grassland Journal, 45(10), 34–45. https://doi.org/10.16742/j.zgcdxb.20230011
  • 8. Liao, M., Zhou, W., Zhu, Z., Tan, Y., Peng, D., Liu, W. et Tang, X. 2021. A preliminary study on the application of rice flavour meter in the selection of new combinations of excellent flavour hybrid rice. Hybrid Rice, 36(4), 11–17. https://doi.org/10.16267/j.cnki.1005-3956.20210204.050
  • 9. Liu, D., Zhang, J., Cao, J., Wang, Z., Yu, C. et Jin, D. 2010. The reduction of amylose content in rice grain and decrease of Wx gene expression during endosperm development in response to drought stress. Journal of Food, Agriculture & Environment, 8(3/4 part 2), 873–878.
  • 10. Lv, X., Bai, H., Hui, J., Tian, X., Yang, C., Ma, S., Cai, Z., Li, S. 2019. Evaluation of seedling drought tolerance in indica-japonica rice hybrid-derived RIL lines. Journal of Plant Genetic Resources, 20(3), 556–563. https://doi.org/10.13430/j.cnki. jpgr.20180817001
  • 11. Mau, Y.S., Ndiwa, A.S., Oematan, S.S., Markus, J.E. 2019. Drought tolerance indices for selection of drought tolerant, high yielding upland rice genotypes. Australian Journal of Crop Science, 13(1), 170–178.
  • 12. N’guessan, K.J.Y., Adahi, B., Konan-Waidhet, A., Masayoshi, S., Assidjo, N.E. 2023. Assessment of Climate Change Impact on Water Requirement and Rice Productivity. Rice Science, 30(4), 276–293. https://doi.org/10.1016/j.rsci.2023.03.010
  • 13. Oladosu, Y., Rafii, M.Y., Samuel, C., Fatai, A., Magaji, U., Kareem, I., Kamarudin, Z.S., Muhammad, I., Kolapo, K. 2019. Drought Resistance in Rice from Conventional to Molecular Breeding: A Review. Int J Mol Sci., 20(14), 3519. doi: 10.3390/ijms20143519. PMID: 31323764; PMCID: PMC6678081.
  • 14. Qin, L., Li, J., Du, Y., Zhang, J., Sun, H., Han, Y. et Zhao, Q. 2013. Screening of suitable dry rice varieties and identification indexes in wheat stubble rice area of Henan and Huaihe River. Agricultural Research in Arid Regions, 31(1), 161–165.
  • 15. Rajjou, L., Duval, M., Gallardo, K., Catusse, J., Bally, J., Job, C., Job, D. 2012. Seed Germination and Vigor. Annual Review of Plant Biology, 63(1), 507–533. https://doi.org/10.1146/annurev-arplant-042811-105550
  • 16. Khan, R.M.I., Palakolanu, S.R., Chopra, P., Rajurkar, A.B., Gupta, R., Iqbal, N., Maheshwari, C. 2021. Improving drought tolerance in rice: Ensuring food security through multi-dimensional approaches. Physiologia Plantarum, 172(2), 645–668. https://doi.org/10.1111/ppl.13223
  • 17. Salgotra, R.K., Chauhan, B.S. 2023. Ecophysiological Responses of Rice (Oryza sativa L.) to Drought and High Temperature. Agronomy, 13(7), 1877. https://doi.org/10.3390/agronomy13071877
  • 18. Vanstraelen, M., Benková, E. 2012. Hormonal Interactions in the Regulation of Plant Development. Annual Review of Cell and Developmental Biology, 28(1), 463–487. https://doi.org/10.1146/annurev-cellbio-101011-155741
  • 19. Wang, C., Zhou, L., Zhang, G., Zhang, L., Xu, Y., Gao, X., Jiang, Shao, M. 2017. Identification of drought resistance during germination and screening of drought resistance indexes in germplasm resources of Coix lacryma. Journal of Plant Genetic Resources, 18(5), 846–859. https://doi.org/10.13430/j.cnki.jpgr.2017.05.006
  • 20. Wang, Y., Huang, J., Wang, J., Findlay, C. 2018. Mitigating rice production risks from drought through improving irrigation infrastructure and management in China. Australian Journal of Agricultural and Resource Economics, 62(1), 161176. https://doi.org/10.1111/1467-8489.12241
  • 21. Wang, Y., Lv, J., Zhang, J., Li, J., Wang, C., Ding, Z., Zhang, C., Yao, Y., Li, Z. 2005. Identification method and index of drought resistance of upland rice – identification of drought resistance during the whole growth period. Agricultural Research in Arid Regions, 4, 129–133.
  • 22. Yang, J., Chen, X., Zhu, C., Peng, X., He, X., Fu, J., Ouyang, L., Bian, J., Hu, L., Sun, X., Xu, J., He, H. 2015. RNA-seq reveals differentially expressed genes of rice (Oryza sativa) spikelet in response to temperature interacting with nitrogen at meiosis stage. BMC Genomics, 16(1), 959. https://doi.org/10.1186/s12864-015-2141-9
  • 23. Zhang, H., Zhu, C., Tan, J., Li, X., Yang, W., Kang, H. 2018. Research on identification evaluation and prediction of drought resistance of new hybrid indica rice combinations. Arid Region Agricultural Research, 36(2), 161–169.
  • 24. Zhao, J., Zhou, W., Ren, J., Guo, P., Xu, Y. 2019. Comprehensive evaluation of drought resistance of 50 new wheat germplasm. Shanxi Agricultural Science, 47(11), 1895–1899.
  • 25. Zhao, Y., Ma, Y., Jiang, F., Xu, J., Li, S. 2021. Comprehensive evaluation of drought resistance of wheat varieties (lines) at planting stage in the Huanghuai wheat region. Molecular Plant Breeding, 19(12), 4100–4107. https://doi.org/10.13271/j.mpb.019.004100
  • 26. Zhou, L., Liang, S., Ponce, K., Marundon, S., Ye, G., Zhao, X. 2015. Factors affecting head rice yield and chalkiness in indica rice. Field Crops Research, 172, 1–10. https://doi.org/10.1016/j.fcr.2014.12.004
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ac23472c-34b9-439a-acd0-1d009defb521
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