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Genetic Diversity of Selected Rice Genotypes under Water Stress Conditions

202058 citationsOpen accessKafr el-Sheikh University

In plain language

This study characterised 16 rice genotypes under normal and drought conditions to identify genetic differentiation and drought tolerance. Using Simple Sequence Repeats (SSR) markers, researchers assessed grain and agronomic parameters. Significant genotype × environment interactions were observed. Specific genotypes, including Giza179, IET1444, Hybrid1, and Hybrid2, demonstrated high grain yield and water use efficiency under stress. Genetic analysis revealed diversity, with genotypes clustering into groups, some showing drought tolerance or moderate tolerance. The findings suggest that genotypes like GZ1368-S-5-4, IET1444, Giza 178, and Giza179 are suitable for breeding programmes aimed at developing drought-tolerant rice varieties.

Key takeaways

  • Genotype × environment interactions significantly affected major rice traits.
  • Several genotypes, including Giza179, IET1444, Hybrid1, and Hybrid2, exhibited high grain yield and water use efficiency under water stress.
  • Genetic analysis using SSR markers revealed significant diversity among the rice genotypes.
  • Genotypes were grouped into clusters, identifying both drought-tolerant and moderately tolerant types.
  • Specific genotypes like GZ1368-S-5-4, IET1444, Giza 178, and Giza179 are suitable for developing drought-tolerant rice varieties.

Why it matters

Drought severely threatens global rice production and food security. Identifying and utilising genetically diverse, drought-tolerant rice genotypes is crucial for developing resilient crops. This research provides valuable genetic resources for breeding programmes to enhance rice productivity in water-scarce regions.

Commercialisation angle

This early-stage research provides genetic material for developing new drought-tolerant rice varieties. Plant breeders and agricultural organisations could utilise the identified genotypes, such as GZ1368-S-5-4, IET1444, Giza 178, and Giza179, in breeding programmes to create more resilient rice crops. This work directly supports efforts to improve food security in regions affected by water scarcity.

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Abstract

Drought is the most challenging abiotic stress for rice production in the world. Thus, developing new rice genotype tolerance to water scarcity is one of the best strategies to achieve and maximize high yield potential with water savings. The study aims to characterize 16 rice genotypes for grain and agronomic parameters under normal and drought stress conditions, and genetic differentiation, by determining specific DNA markers related to drought tolerance using Simple Sequence Repeats (SSR) markers and grouping cultivars, establishing their genetic relationship for different traits. The experiment was conducted under irrigated (normal) and water stress conditions. Mean squares due to genotype × environment interactions were highly significant for major traits. For the number of panicles/plants, the genotypes Giza179, IET1444, Hybrid1, and Hybrid2 showed the maximum mean values. The required sterility percentage values were produced by genotypes IET1444, Giza178, Hybrid2, and Giza179, while, Sakha101, Giza179, Hybrid1, and Hybrid2 achieved the highest values of grain yield/plant. The genotypes Giza178, Giza179, Hybrid1, and Hybrid2, produced maximum values for water use efficiency. The effective number of alleles per locus ranged from 1.20 alleles to 3.0 alleles with an average of 1.28 alleles, and the He values for all SSR markers used varied from 0.94 to 1.00 with an average of 0.98. The polymorphic information content (PIC) values for the SSR were varied from 0.83 to 0.99, with an average of 0.95 along with a highly significant correlation between PIC values and the number of amplified alleles detected per locus. The highest similarity coefficient between Giza181 and Giza182 (Indica type) was observed and are susceptible to drought stress. High similarity percentage between the genotypes (japonica type; Sakha104 with Sakha102 and Sakha106 (0.45), Sakha101 with Sakha102 and Sakha106 (0.40), Sakha105 with Hybrid1 (0.40), Hybrid1 with Giza178 (0.40) and GZ1368-S-5-4 with Giza181 (0.40)) was also observed, which are also susceptible to drought stress. All genotypes are grouped into two major clusters in the dendrogram at 66% similarity based on Jaccard's similarity index. The first cluster (A) was divided into two minor groups A1 and A2, in which A1 had two groups A1-1 and A1-2, containing drought-tolerant genotypes like IET1444, GZ1386-S-5-4 and Hybrid1. On the other hand, the A1-2 cluster divided into A1-2-1 containing Hybrid2 genotype and A1-2-2 containing Giza179 and Giza178 at coefficient 0.91, showing moderate tolerance to drought stress. The genotypes GZ1368-S-5-4, IET1444, Giza 178, and Giza179, could be included as appropriate materials for developing a drought-tolerant variety breeding program. Genetic diversity to grow new rice cultivars that combine drought tolerance with high grain yields is essential to maintaining food security.

Research topics

  • Rice Cultivation and Yield Improvement
  • GABA and Rice Research
  • Plant responses to water stress

Sustainable Development Goals

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DOI: 10.3390/plants10010027

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