Molecular tools, potential frontiers for enhancing salinity tolerance in rice: A critical review and future prospective
- PMID: 35968147
- PMCID: PMC9366114
- DOI: 10.3389/fpls.2022.966749
Molecular tools, potential frontiers for enhancing salinity tolerance in rice: A critical review and future prospective
Abstract
Improvement of salinity tolerance in rice can minimize the stress-induced yield losses. Rice (Oryza sativa) is one of Asia's most widely consumed crops, native to the subtropical regions, and is generally associated with sensitivity to salinity stress episodes. Salt-tolerant rice genotypes have been developed using conventional breeding methods; however, the success ratio is limited because of the complex nature of the trait and the high cost of development. The narrow genetic base of rice limited the success of conventional breeding methods. Hence, it is critical to launch the molecular tools for screening rice novel germplasm for salt-tolerant genes. In this regard, the latest molecular techniques like quantitative trait loci (QTL) mapping, genetic engineering (GE), transcription factors (TFs) analysis, and clustered regularly interspaced short palindromic repeats (CRISPR) are reliable for incorporating the salt tolerance in rice at the molecular level. Large-scale use of these potent genetic approaches leads to identifying and editing several genes/alleles, and QTL/genes are accountable for holding the genetic mechanism of salinity tolerance in rice. Continuous breeding practices resulted in a huge decline in rice genetic diversity, which is a great worry for global food security. However, molecular breeding tools are the only way to conserve genetic diversity by exploring wild germplasm for desired genes in salt tolerance breeding programs. In this review, we have compiled the logical evidences of successful applications of potent molecular tools for boosting salinity tolerance in rice, their limitations, and future prospects. This well-organized information would assist future researchers in understanding the genetic improvement of salinity tolerance in rice.
Keywords: CRISPR/Cas9; genes; rice; salinity stress; tolerance.
Copyright © 2022 Rasheed, Li, Nawaz, Mahmood, Hassan, Shah, Hussain, Azmat, Gillani, Majeed, Qari and Wu.
Conflict of interest statement
The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
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References
-
- Abdallah M.-S., Abdelgawad Z., El-Bassiouny H. (2016). Alleviation of the adverse effects of salinity stress using trehalose in two rice varieties. South Afr. J. Bot. 103, 275–282. doi: 10.1016/j.sajb.2015.09.019 - DOI
-
- Alam M. N. U., Jewel G. N. A., Azim T., Seraj Z. I. (2021). Novel QTLs for salinity tolerance revealed by genome-wide association studies of biomass, chlorophyll and tissue ion content in 176 rice landraces from Bangladesh. PLoS One 16:e0259456. doi: 10.1371/journal.pone.0259456, PMID: - DOI - PMC - PubMed
-
- Ali F., Chen W., Fiaz S., Wang Y., Wei X., Xie L., et al. . (2022). QTL mapping for grain appearance quality traits using doubled haploid population of rice under different environments. Pak. J. Bot. 54, 1265–1275.
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