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Metabolite profiling and genome‐wide association studies reveal response mechanisms of phosphorus deficiency in maize seedling

Authors :
Zhang Suzhi
Zhi Nie
Ling Wu
Lu Quanxiao
Wu Yuanqi
Xuan He
Yaou Shen
Feng Xing
Tingzhao Rong
Haijian Lin
Ma Peng
Ding Xin
Zhiyong Ren
Dan Liu
Shibin Gao
Xiao Zhang
Bowen Luo
Guangtang Pan
Source :
The Plant Journal
Publication Year :
2019
Publisher :
John Wiley and Sons Inc., 2019.

Abstract

SUMMARY Inorganic phosphorus (Pi) is an essential element in numerous metabolic reactions and signaling pathways, but the molecular details of these pathways remain largely unknown. In this study, metabolite profiles of maize (Zea mays L.) leaves and roots were compared between six low‐Pi‐sensitive lines and six low‐Pi‐tolerant lines under Pi‐sufficient and Pi‐deficient conditions to identify pathways and genes associated with the low‐Pi stress response. Results showed that under Pi deprivation the concentrations of nucleic acids, organic acids and sugars were increased, but that the concentrations of phosphorylated metabolites, certain amino acids, lipid metabolites and nitrogenous compounds were decreased. The levels of secondary metabolites involved in plant immune reactions, including benzoxazinoids and flavonoids, were significantly different in plants grown under Pi‐deficient conditions. Among them, the 11 most stable metabolites showed significant differences under low‐ and normal‐Pi conditions based on the coefficient of variation (CV). Isoleucine and alanine were the most stable metabolites for the identification of Pi‐sensitive and Pi‐resistant maize inbred lines. With the significant correlation between morphological traits and metabolites, five low‐Pi‐responding consensus genes associated with morphological traits and simultaneously involved in metabolic pathways were mined by combining metabolites profiles and genome‐wide association study (GWAS). The consensus genes induced by Pi deficiency in maize seedlings were also validated by reverse‐transcription quantitative polymerase chain reaction (RT‐qPCR). Moreover, these genes were further validated in a recombinant inbred line (RIL) population, in which the glucose‐6‐phosphate‐1‐epimerase encoding gene mediated yield and correlated traits to phosphorus availability. Together, our results provide a framework for understanding the metabolic processes underlying Pi‐deficient responses and give multiple insights into improving the efficiency of Pi use in maize.<br />Significance statement Metabolite profiling and GWAS were applied to reveal maize low‐Pi response mechanisms.

Details

Language :
English
ISSN :
1365313X and 09607412
Volume :
97
Issue :
5
Database :
OpenAIRE
Journal :
The Plant Journal
Accession number :
edsair.doi.dedup.....b6ce4a0b52dde322858285aa979086d5