4.7 Article

Expression genome-wide association study identifies that phosphatidylinositol-derived signalling regulates ALUMINIUM SENSITIVE3 expression under aluminium stress in the shoots of Arabidopsis thaliana

期刊

PLANT SCIENCE
卷 302, 期 -, 页码 -

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ELSEVIER IRELAND LTD
DOI: 10.1016/j.plantsci.2020.110711

关键词

ALS3 expression; Aluminium stress; Co-expression network; Expression level polymorphisms; Genome-wide association study; Phosphatidylinositol signalling; Single nucleotide polymorphism

资金

  1. JSPS Kakenhi Grants [19K05753, 18H02113, 24688009]

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Through expression genome-wide association study and validation using reverse genetics, we found significant associations between genes related to phosphatidylinositol metabolism and stress signal transduction and variation in the expression level of the Al tolerance gene ALS3, highlighting the regulatory mechanisms of ALS3 expression in the shoot.
To identify unknown regulatory mechanisms leading to aluminium (Al)-induction of the Al tolerance gene ALS3, we conducted an expression genome-wide association study (eGWAS) for ALS3 in the shoots of 95 Arabidopsis thaliana accessions in the presence of Al. The eGWAS was conducted using a mixed linear model with 145,940 genome-wide single nucleotide polymorphisms (SNPs) and the association results were validated using reverse genetics. We found that many SNPs from the eGWAS were associated with genes related to phosphatidylinositol metabolism as well as stress signal transduction, including Ca2+ signals, inter-connected in a co-expression network. Of these, PLC9, CDPK32, ANAC071, DIR1, and a hypothetical protein (AT4G10470) possessed amino acid sequence/ gene expression level polymorphisms that were significantly associated with ALS3 expression level variation. Furthermore, T-DNA insertion mutants of PLC9, CDPK32, and ANAC071 suppressed shoot ALS3 expression in the presence of Al. This study clarified the regulatory mechanisms of ALS3 expression in the shoot and provided genetic evidence of the involvement of phosphatidylinositol-derived signal transduction under Al stress.

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