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GWAS and Transcriptome Analyses Unravel ZmGRAS15 Regulates Drought Tolerance and Root Elongation in Maize

Overview
Journal BMC Genomics
Publisher Biomed Central
Specialty Genetics
Date 2025 Mar 14
PMID 40082805
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Abstract

Background: Drought is a major abiotic stress affecting maize development and growth. Unravelling the molecular mechanisms underlying maize drought tolerance and enhancing the drought tolerance of maize is of great importance. However, due to the complexity of the maize genome and the multiplicity of drought tolerance mechanisms, identifying the genetic effects of drought tolerance remains great challenging.

Results: Using a mixed linear model (MLM) based on 362 maize inbred lines, we identified 40 associated loci and 150 candidate genes associated with survival rates. Concurrently, transcriptome analysis was conducted for five drought - tolerant and five drought - sensitive lines under Well-Watered (WW) and Water-Stressed (WS) conditions. Additionally, through co-expression network analysis (WGCNA), we identified five modules significantly associated with the leaf relative water content (RWC) under drought treatment. By integrating the results of GWAS, DEGs, and WGCNA, four candidate genes (Zm00001d006947, Zm00001d038753, Zm00001d003429 and Zm00001d003553) significantly associated with survival rate were successfully identified. Among them, ZmGRAS15 (Zm00001d003553), a GRAS transcription factor considered as a key hub gene, was selected for further functional validation. The overexpression of ZmGRAS15 in maize could significantly enhance drought tolerance through regulating primary root length at the seedling stage.

Conclusion: This study provides valuable information for understanding the genetic basis of drought tolerance and gene resources for maize drought tolerance breeding.

References
1.
Korte A, Farlow A . The advantages and limitations of trait analysis with GWAS: a review. Plant Methods. 2013; 9:29. PMC: 3750305. DOI: 10.1186/1746-4811-9-29. View

2.
Wang X, Wang H, Liu S, Ferjani A, Li J, Yan J . Genetic variation in ZmVPP1 contributes to drought tolerance in maize seedlings. Nat Genet. 2016; 48(10):1233-41. DOI: 10.1038/ng.3636. View

3.
Zhang X, Mi Y, Mao H, Liu S, Chen L, Qin F . Genetic variation in ZmTIP1 contributes to root hair elongation and drought tolerance in maize. Plant Biotechnol J. 2019; 18(5):1271-1283. PMC: 7152618. DOI: 10.1111/pbi.13290. View

4.
Wu X, Feng H, Wu D, Yan S, Zhang P, Wang W . Using high-throughput multiple optical phenotyping to decipher the genetic architecture of maize drought tolerance. Genome Biol. 2021; 22(1):185. PMC: 8223302. DOI: 10.1186/s13059-021-02377-0. View

5.
Gao H, Cui J, Liu S, Wang S, Lian Y, Bai Y . Natural variations of ZmSRO1d modulate the trade-off between drought resistance and yield by affecting ZmRBOHC-mediated stomatal ROS production in maize. Mol Plant. 2022; 15(10):1558-1574. DOI: 10.1016/j.molp.2022.08.009. View