Identification of salt tolerance of different Chinese kale cultivars under NaCl stress at seedling stage
Abstract
In order to understand the salt tolerance of different Chinese kale varieties at seedling stage and screen out the varieties with strong salt tolerance at seedling stage, the seeds of 26 Chinese kale varieties were used as materials. The growth indexes, physiological indexes, seedling rate and salt damage index of different Chinese kale varieties were compared and cluster analyzed by means of tissue culture. The results showed that: (1) under 160 mmol∙L−1 NaCl stress, the different Chinese kale varieties at growth indexes, physiological indexes, seedling rate and salt damage index were significantly different, the relative seedling rate of R4, R14 and R32 reached 100.00%, and the salt damage index was the lowest, which was 20.00%; The correlation analysis showed that the relative seedling rate, the relative content of soluble protein, the relative content of soluble sugar and the relative value of Leaf SPAD were all negatively correlated with the salt damage index, and the relative conductivity and the relative content of malondialdehyde were all positively correlated with the salt damage index. (2) The average value of 14 salt tolerance indexes was used to cluster analyze the salt tolerance of 26 Chinese kale varieties. The tested materials were divided into four categories: high salt tolerance, moderate salt tolerance, low salt tolerance and salt sensitivity. R14, R25, R30 and R32 were highly salt tolerant varieties and R24 was salt sensitive varieties, which laid a foundation for further breeding and genetic research of salt tolerant varieties.
References
1. Zhu, Y., Wang, Q., Guo, W., Gao, Z., Wang, Y., Xu, Y., ... & Li, J. Screening and identification of salt-tolerance genes in Sophora alopecuroides and functional verification of SaAQP. Planta. 2021; 254(4), 1-22.
2. Peng, Z., Jiang, X., Wang, Z., Wang, X., Li, H., He, S., ... & Du, X. Identification of Raf-Like Kinases B Subfamily Genes in Gossypium Species Revealed GhRAF42 Enhanced Salt Tolerance in Cotton. International Journal of Molecular Sciences. 2021; 22(23), 12649.
3. Zhang, J., Wang, P., Tian, H., Jiang, H., Wang, Y., & Yan, C. Identification of interior salt-tolerant bacteria from ice plant Mesembryanthemum crystallinum and evaluation of their promoting effects. Symbiosis. 2018; 76(3), 243-252.
4. Nounjan, N., & Theerakulpisut, P. Physiological evaluation for salt tolerance in green and purple leaf color rice cultivars at seedling stage. Physiology and Molecular Biology of Plants. 2021; 27(12), 2819-2832.
5. Zhao, L., Zhang, F., Liu, B., Yang, S., Xiong, X., Hassani, D., & Zhang, Y. CmRAV1 shows differential expression in two melon (Cucumis melo L. ) cultivars and enhances salt tolerance in transgenic Arabidopsis plants. Acta Biochimica et Biophysica Sinica. 2019; 51(11), 1123-1133.
6. He, L., Li, J., Shi, L., Zhao, Q., Wu, Z., Zeng, S., ... & Gao, J. Exogenous metabolites spray, which identified from metabolomics analysis and transcriptomic analysis, can improve salt tolerance of Chinese cabbages (Brassica rapa L. ssp pekinensis). Journal of Plant Interactions. 2021; 16(1), 452-461.
7. Ahmad, W., Ayyub, C. M., Shehzad, M. A., Ziaf, K., Ijaz, M., Sher, A., ... & Shafi, J. Supplemental potassium mediates antioxidant metabolism, physiological processes, and osmoregulation to confer salt stress tolerance in cabbage (Brassica oleracea L. ). Horticulture. 2019; Environment, and Biotechnology, 60(6), 853-869.
8. Abd Al Galil, Fahd Mohammed, Sureshchandra Popat Zambare, Fahd A. Al-Mekhlafi, and Lamya Ahmed Al-Keridis. "Effect of dimethoate on the developmental rate of forensic importance Calliphoridae flies." Saudi Journal of Biological Sciences 28, no. 2 2021): 1267-1271.
9. Altay, A., & Mirici, İ. H. Efl Instructors’ Implementations of 21st Century Skills in Their Classes. International Journal for Housing Science and Its Applications. 2024; 45(2), 37-46.
10. Al-Mekhlafi, Fahd A., Reem A. Alajmi, Zainab Almusawi, Fahd Mohammed Abd Al GAlil, Pawandeep Kaur, Muhammad Al-Wadaan, and Mohammed S. Al-Khalifa. "A study of insect succession of forensic importance: Dipteran flies (diptera) in two different habitats of small rodents in Riyadh City, Saudi Arabia." Journal of King Saud University-Science 32, no. 7 2020): 3111-3118.
11. Linić, I., Šamec, D., Grúz, J., Vujčić Bok, V., Strnad, M., & Salopek-Sondi, B. Involvement of phenolic acids in short-term adaptation to salinity stress is species-specific among Brassicaceae. Plants. 2019; 8(6), 155.
12. Linić, I., Mlinarić, S., Brkljačić, L., Pavlović, I., Smolko, A., & Salopek-Sondi, B. Ferulic acid and Salicylic acid foliar treatments reduce short-term salt stress in Chinese cabbage by increasing phenolic compounds accumulation and photosynthetic performance. Plants. 2021; 10(11), 2346.
13. Zou, L., Yu, B., Ma, X. L., Cao, B., Chen, G., Chen, C., & Lei, J. Cloning and expression analysis of the BocMBF1c gene involved in heat tolerance in Chinese kale. International journal of molecular sciences. 2019; 20(22), 5637.
14. dos Santos, B. D., Silva, P. F. D., Matos, R. M. D., D Neto, J., de Lima, V. L., Bonou, S. I., ... & Melo, Y. L. Induction of salt stress tolerance in chives by priming with H2O2 in hydroponic cultivation. Chilean journal of agricultural research. 2021; 81(3), 317-325.
15. Li, D. H., Shen, F. J., Li, H. Y., & Li, W. Kale BoRACK1 is involved in the plant response to salt stress and Peronospora brassicae Gaumann. Journal of plant physiology. 2017; 213, 188-198.
16. Boonnoi, N., Nuntagij, I., & Koohakan, P. Growth and yield of Chinese kale grown in dynamic root floating technique (DRFT) by reused nutrient solution. International Journal of Agricultural Technology. 2017; 13(7), 1467-1477.
17. Sun, X., Xu, L., Wang, Y., Yu, R., Zhu, X., Luo, X., ... & Liu, L. Identification of novel and salt-responsive miRNAs to explore miRNA-mediated regulatory network of salt stress response in radish (Raphanus sativus L. ). BMC genomics. 2015; 16(1), 1-16.
18. Elakkiya, A. T. A Note on Decomposition of Tensor Product of Complete Multipartite Graphs into Gregarious Kite. Journal of Combinatorial Mathematics and Combinatorial Computing, 120, 295-299.
19. Miao, H. Y., Wang, M. Y., Chang, J. Q., Tao, H., Sun, B., & Wang, Q. M. Effects of glucose and gibberellic acid on glucosinolate content and antioxidant properties of Chinese kale sprouts. Journal of Zhejiang University-SCIENCE B. 2017; 18(12), 1093-1100.
20. Kaplan, M., Baser, M., Hasan, K. A. L. E., Irik, H. A., Ulger, I., & Unlukara, A. Change in yield and chemical composition of tall fescue (festuca arundinacea schreb. ) plants under salt stress. Turkish Journal of Field Crops. 2017; 22(2), 204-210.
21. Zhou, C. Q., Lu, C. H., Mai, L., Bao, L. J., Liu, L. Y., & Zeng, E. Y. Response of rice (Oryza sativa L. ) roots to nanoplastic treatment at seedling stage. Journal of Hazardous Materials. 2021; 401, 123412.
22. Rasel, M., Tahjib-Ul-Arif, M., Hossain, M. A., Hassan, L., Farzana, S., & Brestic, M. Screening of salt-tolerant rice landraces by seedling stage phenotyping and dissecting biochemical determinants of tolerance mechanism. Journal of Plant Growth Regulation. 2021; 40(5), 1853-1868.
23. Ma, X., Deng, X., Qi, L., Jiang, Y., Li, H., Wang, Y., & Xing, X. Fully convolutional network for rice seedling and weed image segmentation at the seedling stage in paddy fields. PloS one. 2019; 14(4), e0215676.
24. Chunthaburee, S., Dongsansuk, A., Sanitchon, J., Pattanagul, W., & Theerakulpisut, P. Physiological and biochemical parameters for evaluation and clustering of rice cultivars differing in salt tolerance at seedling stage. Saudi Journal of Biological Sciences. 2016; 23(4), 467-477.
25. Li, J., Cang, Z., Jiao, F., Bai, X., Zhang, D., & Zhai, R. Influence of drought stress on photosynthetic characteristics and protective enzymes of potato at seedling stage. Journal of the Saudi Society of Agricultural Sciences. 2017; 16(1), 82-88.
26. Li, R., Zeng, Y., Xu, J., Wang, Q., Wu, F., Cao, M., ... & Lu, Y. Genetic variation for maize root architecture in response to drought stress at the seedling stage. Breeding science. 2015; 65(4), 298-307.
27. Zhou, C. Q., Lu, C. H., Mai, L., Bao, L. J., Liu, L. Y., & Zeng, E. Y. Response of rice (Oryza sativa L. ) roots to nanoplastic treatment at seedling stage. Journal of Hazardous Materials. 2021; 401, 123412.
28. Rasel, M., Tahjib-Ul-Arif, M., Hossain, M. A., Hassan, L., Farzana, S., & Brestic, M. Screening of salt-tolerant rice landraces by seedling stage phenotyping and dissecting biochemical determinants of tolerance mechanism. Journal of Plant Growth Regulation. 2021; 40(5), 1853-1868.
29. Rehman, A., Wang, N., Peng, Z., He, S., Zhao, Z., Gao, Q., ... & Du, X. Identification of C2H2 subfamily ZAT genes in Gossypium species reveals GhZAT34 and GhZAT79 enhanced salt tolerance in Arabidopsis and cotton. International Journal of Biological Macromolecules. 2021; 184, 967-980.
30. Mazumder, A., Rohilla, M., Bisht, D. S., Krishnamurthy, S. L., Barman, M., Sarma, R. N., ... & Mondal, T. K. Identification and mapping of quantitative trait loci (QTL) and epistatic QTL for salinity tolerance at seedling stage in traditional aromatic short grain rice landrace Kolajoha (Oryza sativa L. ) of Assam. 2020; India. Euphytica, 216(5), 1-18.
31. Wang, J., Zhu, J., Zhang, Y., Fan, F., Li, W., Wang, F., . & Yang, J. Comparative transcriptome analysis reveals molecular response to salinity stress of salt-tolerant and sensitive genotypes of indica rice at seedling stage. Scientific reports. 2018; 8(1), 1-13.
32. Liu, D., Dong, S., Bo, K., Miao, H., Li, C., Zhang, Y., ... & Gu, X. Identification of QTLs controlling salt tolerance in cucumber (Cucumis sativus L. ) seedlings. Plants. 2021; 10(1), 85.
33. Xu, P., Guo, Q., Meng, S., Zhang, X., Xu, Z., Guo, W., & Shen, X. Genome-wide association analysis reveals genetic variations and candidate genes associated with salt tolerance related traits in Gossypium hirsutum. BMC genomics. 2021; 22(1), 1-14.
34. Zhang, H., Xu, W., Chen, H., Chen, J., Chen, X., & Yang, S. Evaluation and QTL mapping of salt tolerance in yardlong bean [Vigna unguiculata (L. ) Walp. Subsp. unguiculata Sesquipedalis group] seedlings. Plant Molecular Biology Reporter. 2020; 38(2), 294-304.
35. Soren, K. R., Madugula, P., Kumar, N., Barmukh, R., Sengar, M. S., Bharadwaj, C., ... & Varshney, R. K. Genetic dissection and identification of candidate genes for salinity tolerance using Axiom® CicerSNP array in chickpea. International journal of molecular sciences. 2020; 21(14), 5058.
36. Zahra, A. Evaluation of sugar beet monogerm O-type lines for salinity tolerance at vegetative stage. African Journal of Biotechnology. 2020; 19(9), 602-612.
37. Bolton, A., & Simon, P. Variation for salinity tolerance during seed germination in diverse carrot [Daucus carota (L. )] germplasm. HortScience. 2019; 54(1), 38-44.
Copyright (c) 2024 Xibo Ren, Huanhuan Du, Suya Li, Jianying Wang, Xiyao Dai, Xuefei Dong, Shijie Ma
This work is licensed under a Creative Commons Attribution 4.0 International License.
Copyright on all articles published in this journal is retained by the author(s), while the author(s) grant the publisher as the original publisher to publish the article.
Articles published in this journal are licensed under a Creative Commons Attribution 4.0 International, which means they can be shared, adapted and distributed provided that the original published version is cited.