GENETIC EVALUATION OF AROMATIC AND SUBMERGENCE TOLERANCE IN RICE (ORYZA SATIVA L.)
DOI:
https://doi.org/10.54112/bcsrj.v2024i1.1511Keywords:
Submergence Tolerance, Aromatic Rice, Genetic Diversity, SSR Markers, SUB1 Gene, Yield TraitsAbstract
This study investigates the morphological and genetic characterization of Oryza sativa germplasm for submergence tolerance and aroma. Conducted at the Rice Research Institute, Kala Shah Kaku, the research aimed to assess the adaptability of diverse accessions for breeding high-yielding, fast-growing, flood-tolerant, and aromatic rice varieties. Key agronomic traits, including plant height, tiller number, panicle length and weight, flag leaf dimensions, and grain morphology, were measured using a Vernier caliper. Analysis of variance (ANOVA) revealed significant genetic variation among accessions. Molecular characterization using SSR markers identified RM-7481 as associated with submergence tolerance, while Aroma and Badex loci were linked to aromatic traits. The SUB1 gene, a key regulator of submergence tolerance, was characterized by its role in suppressing premature growth and conserving energy under waterlogging conditions. Yield-contributing traits were analyzed through correlation analysis, simple regression, and path coefficient analysis, highlighting panicle weight and 1000-grain weight as key determinants of yield. Spearman's correlation analysis showed that there was a positive correlation between grain quality and submergence tolerance in some accessions. Some of these accessions have both high yield potential and flood resilience. The study establishes a precise relationship between genetic composition and key agronomic traits, thus providing critical information for breeding programs. The results contribute to the development of submergence-tolerant and high-quality aromatic rice aligned with consumer preferences and market demands. Further, this study gives insights into the genetic and phenotypic diversity in rice germplasm, therefore providing good direction toward rice production improvements under flood conditions.
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Abbas, A., Arshad, A., Rehman, A. U., Bukhari, M. S., and Zaman, S. (2024a). Revolutionizing plant breeding programs with advancements in molecular marker-assisted selection. Bulletin of Biological and Allied Sciences Research 2024, 57.
Abbas, A., Rashad, A., Rehman, A. U., and Bukhari, M. S. (2024b). Exploring the response mechanisms of rice to salinity stress. Bulletin of Biological and Allied Sciences Research 2024, 58.
Alamin, Md., Zeng, D.-D., Sultana, Most. H., Qin, R., Jin, X.-L., & Shi, C.-H. (2018). Photosynthesis, cellulose contents and ultrastructure changes of mutant rice leading to screw flag leaf. Plant Growth Regulation, 85(1), 1–13. https://doi.org/10.1007/s10725-018-0369-5
Bianco, C., Andreozzi, A., Romano, S., Fagorzi, C., Cangioli, L., Prieto, P., Cisse, F., Niangado, O., Sidibé, A., Pianezze, S., Perini, M., Mengoni, A., & Defez, R. (2021). Endophytes from African Rice (Oryza glaberrima L.) Efficiently Colonize Asian Rice (Oryza sativa L.) Stimulating the Activity of Its Antioxidant Enzymes and Increasing the Content of Nitrogen, Carbon, and Chlorophyll. Microorganisms, 9(8), 1714.
Daware, A., Das, S., Srivastava, R., Badoni, S., Singh, A. K., Agarwal, P., Parida, S. K., & Tyagi, A. K. (2016). An Efficient Strategy Combining SSR Markers- and Advanced QTL-seq-driven QTL Mapping Unravels Candidate Genes Regulating Grain Weight in Rice. Frontiers in Plant Science, 7. https://doi.org/10.3389/fpls.2016.01535
Deng, L., Liu, Y., He, J., Jiang, R., Jiang, F., Chen, J., Chen, Z., & Sun, Q. (2021). New archaeobotanical evidence reveals synchronous rice domestication 7600 years ago on south Hangzhou Bay coast, eastern China. Anthropocene, 33, 100280. https://doi.org/10.1016/j.ancene.2021.100280
Fatima, S., Cheema, K., Shafiq, M., Manzoor, M., Ali, Q., Haider, M., and Shahid, M. (2023). The genome-wide bioinformatics analysis of 1-aminocyclopropane-1-carboxylate synthase (acs), 1-aminocyclopropane-1-carboxylate oxidase (aco) and ethylene overproducer 1 (eto1) gene family of fragaria vesca (woodland strawberry). Bulletin of Biological and Allied Sciences Research 2023, 38-38.
Hour, A.-L., Hsieh, W., Chang, S., Wu, Y.-P., Chin, H., & Lin, Y.-R. (2020). Genetic Diversity of Landraces and Improved Varieties of Rice (Oryza sativa L.) in Taiwan. 13(1). https://doi.org/10.1186/s12284-020-00445-w
J Buelah, Reddy, V. R., Srinivas, B., & Balram, N. (2020). Studies on Combining Ability and Gene Action for Yield and Quality Traits in Hybrid Rice (Oryza sativa L.). International Journal of Current Microbiology and Applied Sciences, 9(12), 1282–1290. https://doi.org/10.20546/ijcmas.2020.912.158
Javed, M. M., Sami, A., Haider, M. Z., Abbas, A., Ali, M. H., Naeem, S., Amjad, M., Ahmad, A., and Bostani, R. (2024). The contribution of transgenic rice to enhance grain yield. Bulletin of Biological and Allied Sciences Research 2024, 65.
Junaid, M. D., and Gokce, A. F. (2024). Global agricultural losses and their causes. Bulletin of Biological and Allied Sciences Research 2024, 66.
Kumar, A., Nayak, A. K., Hanjagi, P. S., Kumari, K., S, V., Mohanty, S., Tripathi, R., & Panneerselvam, P. (2021). Submergence stress in rice: Adaptive mechanisms, coping strategies and future research needs. Environmental and Experimental Botany, 186, 104448. https://doi.org/10.1016/j.envexpbot.2021.104448
Li, L., Fang, Z., Zhou, J., Chen, H., Hu, Z., Gao, L., Chen, L., Ren, S., Ma, H., Lu, L., Zhang, W., & Peng, H. (2017). An accurate and efficient method for large-scale SSR genotyping and applications. Nucleic Acids Research, 45(10), e88–e88. https://doi.org/10.1093/nar/gkx093
Lu, Y. (2023). Gene Genealogy-Based Mutation Analysis Reveals Emergence of Aus, Tropical japonica, and Aromatic of Oryza sativa during the Later Stage of Rice Domestication. Genes, 14(7), 1412–1412. https://doi.org/10.3390/genes14071412
Oladosu, Y., Rafii, M. Y., Arolu, F., Chukwu, S. C., Muhammad, I., Kareem, I., Salisu, M. A., & Arolu, I. W. (2020). Submergence Tolerance in Rice: Review of Mechanism, Breeding and, Future Prospects. Sustainability, 12(4), 1632. https://doi.org/10.3390/su12041632
Pradhan, S. K., Barik, S. R., Sahoo, J., Pandit, E., Nayak, D. K., Pani, D. R., & Anandan, A. (2015). Comparison of Sub1 markers and their combinations for submergence tolerance and analysis of adaptation strategies of rice in rainfed lowland ecology. Comptes Rendus Biologies, 338(10), 650–659. https://doi.org/10.1016/j.crvi.2015.06.010
Saito, K., K. Senthilkumar, Dossou-Yovo, E. R., Ali, I., Johnson, J-M., G. Mujawamariya, & Rodenburg, J. (2023). Status quo and challenges of rice production in sub-Saharan Africa. Plant Production Science, 26(3), 320–333. https://doi.org/10.1080/1343943x.2023.2241712
Septiningsih, E. M., Sanchez, D. L., Singh, N., Sendon, P. M. D., Pamplona, A. M., Heuer, S., & Mackill, D. J. (2011). Identifying novel QTLs for submergence tolerance in rice cultivars IR72 and Madabaru. Theoretical and Applied Genetics, 124(5), 867–874.
Shah, L., Yahya, M., Shah, S. M. A., Nadeem, M., Ali, A., Ali, A., Wang, J., Riaz, M. W., Rehman, S., Wu, W., Khan, R. M., Abbas, A., Riaz, A., Anis, G. B., Si, H., Jiang, H., & Ma, C. (2019). Improving Lodging Resistance: Using Wheat and Rice as Classical Examples. International Journal of Molecular Sciences, 20(17), 4211. https://doi.org/10.3390/ijms20174211
Shi, W., Yin, X., Struik, P. C., Xie, F., Schmidt, R. C., & Jagadish, K. S. V. (2016). Grain yield and quality responses of tropical hybrid rice to high night-time temperature. Field Crops Research, 190, 18–25. https://doi.org/10.1016/j.fcr.2015.10.006
Singh, H., Deshmukh, R. K., Singh, A., Singh, A. K., Gaikwad, K., Sharma, T. R., Mohapatra, T., & Singh, N. K. (2009). Highly variable SSR markers suitable for rice genotyping using agarose gels. Molecular Breeding, 25(2), 359–364. https://doi.org/10.1007/s11032-009-9328-1
Statista - The Statistics Portal. (2024, May 16). Statista. https://www.statista.com/aboutus/our-research-commitment/1239/m-shahbandeh
Velprabakaran, S., S. Rajeswari, P. Jeyaprakash, & M. Raveendran. (2020). Genetic Exploration on Crude Protein Estimation in Traditional Rice Landraces of Southern India. International Journal of Current Microbiology and Applied Sciences, 9(4), 1072–1078. https://doi.org/10.20546/ijcmas.2020.904.127
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Copyright (c) 2024 A SHAHZAD, M SABAR, Q ALI, A ABBAS, M USAMA, U MUBASHAR, M ASHFAQ
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