|
|
|
| Transcriptome Analysis of Salt Stress Response of Wild Rice (Oryza sativa) Salt Tolerant Introgression Line IL363 at Seedling Stage |
| WANG Chun-Xue1,*, QIU Dong-Feng1,2,*, JIAO Ya-Ru1, WANG Ting-Bao1, HE Yong1, ZHANG Zai-Jun2, LIU Gang2,**, TIAN Zhi-Hong1,** |
1 College of Life Science / Engineering Research Center of Ecology and Agricultural Use of Wetland, Ministry of Education / Hubei Key Laboratory of Waterlogging Disaster and Agricultural Use of Wetland, Yangtze University, Jingzhou 434025, China; 2 Institute of Food Crops / Hubei Key Laboratory of Food Crop Germplasm and Genetic Improvement / Key Laboratory of Crop Molecular Breeding, Ministry of Agriculture and Rural Affairs, Hubei Academy of Agricultural Sciences, Wuhan 430064, China |
|
|
|
|
Abstract Exploring salt tolerant genes in rice (Oryza sativa), analyzing their molecular regulatory mechanisms, and breeding new salt tolerant rice varieties are one of the most economical and effective ways to cope with salt stress. This study used rice cultivar '9311' and the salt-tolerant introgression line IL363 of O. longistaminata, which was created with '9311' as there current parent, as materials. RNA-seq was used to perform whole genome transcriptome analysis on plants treated with salt stress (0.75% NaCl) for 3 and 5 d during the seedling stage. The results showed that, compared with untreated plants, 2 090 and 6 219 differentially expressed genes (DEGs) were identified in '9311' after 3 and 5 d of salt stress, and 169 and 2 535 genes were detected in IL363, respectively. This indicated that IL363 exhibited fewer DEGs during the early stage of salt stress. GO enrichment analysis revealed that the DEGs were primarily enriched in functional categories such as binding, catalytic activity, metabolic processes, and cellular processes. KEGG enrichment analysis showed that DEGs were mainly enriched in MAPK signaling and metabolic pathways, while DEGs in the treatment group were predominantly concentrated in pathways such as plant hormone signal transduction and the biosynthesis of secondary metabolites. Based on whole-genome chip detection results and functional annotations, 19 key candidate genes were selected for structural variation analysis from 53 screened genes potentially related to the differential salt tolerance between the 2 materials. Among these, 15 genes were located within the introgressed chromosomal segments, and 4 genes were important functional genes directly associated with salt stress. The structural variation analysis revealed that out of the 19 genes, 10 genes harbored variations in their exon regions, while 9 genes exhibited variations exclusively in non-coding regions. This study provides a theoretical basis for further unraveling the salt tolerance mechanisms of rice and supplies valuable candidate genes for salt-resistant rice breeding.
|
|
Received: 15 December 2025
|
|
|
|
Corresponding Authors:
**zhtian@yangtzeu.edu.cn; liug1112@163.com
|
| About author:: *These authors contributed equally to this work |
|
|
|
[1] 高华鑫, 张佳蕾, 王建国, 等. 2024. 盐碱地花生高产栽培研究进展及面临的挑战[J]. 山东农业科学, 56(9): 142-148. (Gao H X, Zhang J L, Wang J G, et al.2024. Research progress and challenge of high-yield cultivation of peanut in saline-alkali lands[J]. Shandong Agricultural Sciences, 56(9): 142-148.) [2] 焦亚茹, 刘刚, 邱东峰, 等. 2026. 野生稻导入系'IL363'苗期耐盐性形态和生理基础分析[J]. 分子植物育种, 24(3): 846-852. (Jiao Y R, Liu G, Qiu D F, et al.2026. Morphological and physiological basis of salinity tolerance of wild rice introgression line 'IL363' at seedling stage[J]. Molecular Plant Breeding, 24(3): 846-852.) [3] 李国景, 罗其友. 2023. 我国耕地资源保护与利用体系、挑战与对策[J]. 山西农业大学学报(社会科学版), 22(6): 9-15. (Li G J, Luo Q Y.2023. The system, challenges and countermeasures of the protection and utilization of China's cultivated land resources[J]. Journal of Shanxi Agricultural University (Social Science Edition), 22(6): 9-15.) [4] 马帅国, 田蓉蓉, 胡慧, 等. 2020. 粳稻种质资源苗期耐盐性综合评价与筛选[J]. 植物遗传资源学报, 21(5): 1089-1101. (Ma S G, Tian R R, Hu H, et al.2020. Comprehensive evaluation and selection of rice (Oryza sativa japonica) germplasm for saline tolerance at seedling stage[J]. Journal of Plant Genetic Resources, 21(5): 1089-1101.) [5] 于洋, 朱庆锋, 薛皦, 等. 2024. 非编码遗传资源在作物重要农艺性状调控中的研究进展[J]. 广东农业科学, 51(9): 1-17. (Yu Y, Zhu Q F, Xue J, et al.2024. Research progress on the regulation of important agronomic traits in crops by non-coding genetic resources[J]. Guangdong Agricultural Sciences, 51(9): 1-17.) [6] Alfatih A, Zhang J, Song Y, et al.2023. Nitrate-responsive OsMADS27 promotes salt tolerance in rice[J]. Plant Communications, 4(2): 100458. [7] Chen G, Han H M, Yang X L, et al.2022a. Salt tolerance of rice is enhanced by the SS3 gene, which regulates ascorbic acid synthesis and ROS scavenging[J]. International Journal of Molecular Sciences, 23(18): 10338. [8] Chen G J, Zheng D F, Feng N J, et al.2022b. Physiological mechanisms of ABA-induced salinity tolerance in leaves and roots of rice[J]. Scientific Reports, 12(1): 8228. [9] Chen Y P, Dan Z W, Li S Q.2024. GROWTH REGULATING FACTOR 7-mediated arbutin metabolism enhances rice salt tolerance[J]. The Plant Cell, 36(8): 2834-2850. [10] Cui P, Liu H B, Islam F, et al.2016. OsPEX11, a peroxisomal biogenesis factor 11, contributes to salt stress tolerance in Oryza sativa[J]. Frontiers in Plant Science, 7: 1357. [11] de Ocampo M P, Ho V T, Thomson M J, et al.2022. QTL mapping under salt stress in rice using a Kalarata-Azucena population[J]. Euphytica, 218(6): 74. [12] de Vries L, Guevara-Rozo S, Cho M, et al.2021. Tailoring renewable materials via plant biotechnology[J]. Biotechnology for Biofuels, 14(1): 167. [13] Dharni J S, Shi Y, Zhang C, et al.2024. Growth and transcriptional response of wheat and rice to the tertiary amine BMVE[J]. Frontiers in Plant Science, 14: 1273620. [14] Emamverdian A, Ding Y L, Alyemeni M N, et al.2022. Benzylaminopurine and abscisic acid mitigates cadmium and copper toxicity by boosting plant growth, antioxidant capacity, reducing metal accumulation and translocation in bamboo [Pleioblastus pygmaeus (Miq.)] plants[J]. Antioxidants, 11(12): 2328. [15] Fan C F, Li Y, Hu Z, et al.2018. Ectopic expression of a novel OsExtensin-like gene consistently enhances plant lodging resistance by regulating cell elongation and cell wall thickening in rice[J]. Plant Biotechnology Journal, 16(1): 254-263. [16] Fukuda A, Nakamura A, Tagiri A, et al.2004. Function, intracellular localization and the importance in salt tolerance of a vacuolar Na+/H+ antiporter from rice[J]. Plant and Cell Physiology, 45(2): 146-159. [17] Huang S Z, Ma Z M, Hu L J, et al.2021. Involvement of rice transcription factor OsERF19 in response to ABA and salt stress responses[J]. Plant Physiology and Biochemistry, 167: 22-30. [18] Liu Y, Wang F M, Zhang A N, et al.2023. Improvement of salinity tolerance in water-saving and drought-resistance rice (WDR)[J]. International Journal of Molecular Sciences, 24(6): 5444. [19] Naithani S, Deng C H, Sahu S K, et al.2023. Exploring pan-genomes: An overview of resources and tools for unraveling structure, function, and evolution of crop genes and genomes[J]. Biomolecules, 13(9): 1403. [20] Rakhmankulova Z, Shuyskaya E, Toderich K, et al.2021. Elevated atmospheric CO2 concentration improved C4 xero-halophyte Kochia prostrata physiological performance under saline conditions[J]. Plants, 10(3): 491. [21] Smokvarska M, Bayle V, Maneta-Peyret L, et al.2023. The receptor kinase FERONIA regulates phosphatidylserine localization at the cell surface to modulate ROP signaling[J]. Science Advances, 9(14): eadd4791. [22] Stewart C N Jr, Via L E.1993. A rapid CTAB DNA isolation technique useful for RAPD fingerprinting and other PCR applications[J]. Biotechniques, 14(5): 748-750. [23] Wang R, Chong K, Wang T.2006. Divergence in spatial expression patterns and in response to stimuli of tandem-repeat paralogues encoding a novel class of proline-rich proteins in Oryza sativa[J]. Journal of Experimental Botany, 57(11): 2887-2897. [24] Xie T, Hu W L, Shen J X, et al.2024. Allantoate amidohydrolase OsAAH is essential for preharvest sprouting resistance in rice[J]. Rice, 17(1): 28. [25] Yoshida S, Forno D A, Cock J H, et al.1976. Routine procedure for growing rice plants in culture solution[M]. In: Laboratory Manual for Physiological Studies of Rice, Philippines, pp. 53-57. [26] Zhang H W, Tao H H, Yang H, et al.2022. MdSCL8 as a negative regulator participates in ALA-induced FLS1 to promote flavonol accumulation in apples[J]. International Journal of Molecular Sciences, 23(4): 2033. [27] Zhang Y C, He R R, Lian J P, et al.2020. OsmiR528 regulates rice-pollen intine formation by targeting an uclacyanin to influence flavonoid metabolism[J]. Proceedings of the National Academy of Sciences of the USA, 117(1): 727-732. [28] Zhou J H, Qiao J Z, Wang J, et al.2022. OsQHB improves salt tolerance by scavenging reactive oxygen species in rice[J]. Frontiers in Plant Science, 13: 848891. [29] Zhu J R, Dai W J, Chen B Y, et al.2023. Research progress on the effect of nitrogen on rapeseed between seed yield and oil content and its regulation mechanism[J]. International Journal of Molecular Sciences, 24(19): 14504. |
|
|
|