Evidence map›Paper›PMID 41350979›Full record

ArticleBMC genomics2025

A multi-locus genome-wide association study uncovers candidate genes for alkali tolerance in maize (Zea Mays L.) seedlings.

Yulin Yu, Yishuang Wang, Dongxing Wang, Ahmad Rizwan, Haibing Yu, Changjin Wang, Lei Chen, Hao Fang, Xinxin Cheng

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Article in BMC genomics, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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5 · Who and what money

Authors and funding

9 authors.

Yulin Yu *College of Agriculture, Anhui Science and Technology University, Fengyang, 233100, China.
Yishuang Wang *College of Agriculture, Anhui Science and Technology University, Fengyang, 233100, China.
Dongxing WangCollege of Agriculture, Anhui Science and Technology University, Fengyang, 233100, China.
Ahmad RizwanCollege of Agriculture, Anhui Science and Technology University, Fengyang, 233100, China.
Haibing YuCollege of Agriculture, Anhui Science and Technology University, Fengyang, 233100, China.
Changjin WangCollege of Agriculture, Anhui Science and Technology University, Fengyang, 233100, China.
Lei ChenCollege of Agriculture, Anhui Science and Technology University, Fengyang, 233100, China.
Hao FangCollege of Agriculture, Anhui Science and Technology University, Fengyang, 233100, China. fanghao940228@163.com.
Xinxin ChengCollege of Agriculture, Anhui Science and Technology University, Fengyang, 233100, China. chengxx@ahstu.edu.cn.

Funding

Emergency Management of the National Natural Science Foundation of China 31440066Joint Research Program on Elite Maize Breeding in Anhui Province 2021AHMS01Key Discipline Construction Funds for Crop Science of Anhui Sciences and Technology University No. XK-XJGF001Research Development Fund of Anhui Science and Technology University FZ230126
6 · The paper itself

Abstract

Soil salt-alkalization has become a major environmental stress factor limiting the improvement of maize yield. Discovering and deploying genes related to alkali tolerance is of great significance for enhancing maize alkali resistance. Here, we employed an association panel comprising 212 maize inbred lines to identify genetic loci associated with alkali-stress tolerance at the seedling stage using the Maize6H-60 K single-nucleotide polymorphism (SNP) array. A genome-wide association study (GWAS) using six models identified 102 significant SNPs, eight of which showed consistent colocalization across multiple models. These SNPs explained 3.35% to 20.01% of the phenotypic variation. Within the genomic regions covered by the eight co-located SNP loci, we identified a total of 56 candidate genes. Based on functional annotation and homologous gene expression analysis, eight of these genes were considered significantly correlated with alkali tolerance in maize. Subsequent qRT-PCR analysis validated that two candidate genes, Zm00001d014707 and Zm00001d041548, significantly contribute to alkali tolerance in maize seedlings. KEGG pathway and GO enrichment analyses revealed that these genes are potentially involved in stress response and metabolic regulation pathways. The promoter regions of these genes contain regulatory elements associated with stress response and hormone signal transduction. Allelic effect analysis demonstrated that AA and CC were favorable alleles, and their pyramiding constituted a viable strategy to enhance alkali tolerance in maize. These results enhance our understanding of the genetic mechanisms of alkali tolerance in maize and establish a theoretical foundation for generating alkali-tolerant maize lines.

Indexed as

AlkaliesGenes, PlantGenome-Wide Association StudySeedlingsZea maysGene Expression Regulation, PlantPhenotypePolymorphism, Single NucleotideStress, PhysiologicalAlkaliesAllelesCandidate genesGenome-wide association studyMaize (Zea Mays L.)Seedling alkali tolerance

Identifiers

PMID41350979
PMCPMC12797358

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