Flavonols affect the interrelated glucosinolate and camalexin biosynthetic pathways in Arabidopsis thaliana

Author:

Naik Jogindra1ORCID,Tyagi Shivi1ORCID,Rajput Ruchika1ORCID,Kumar Pawan1,Pucker Boas2ORCID,Bisht Naveen C1ORCID,Misra Prashant3ORCID,Stracke Ralf2ORCID,Pandey Ashutosh1ORCID

Affiliation:

1. National Institute of Plant Genome Research, Aruna Asaf Ali Marg , New Delhi 110067 , India

2. Faculty of Biology, Genetics and Genomics of Plants, Bielefeld University , 33615 Bielefeld , Germany

3. Plant Sciences and Agrotechnology Division, CSIR-Indian Institute of Integrative Medicine , Canal Road, Jammu 180001 , India

Abstract

Abstract Flavonols are structurally and functionally diverse biomolecules involved in plant biotic and abiotic stress tolerance, pollen development, and inhibition of auxin transport. However, their effects on global gene expression and signaling pathways are unclear. To explore the roles of flavonol metabolites in signaling, we performed comparative transcriptome and targeted metabolite profiling of seedlings from the flavonol-deficient Arabidopsis loss-of-function mutant flavonol synthase1 (fls1) with and without exogenous supplementation of flavonol derivatives (kaempferol, quercetin, and rutin). RNA-seq results indicated that flavonols modulate various biological and metabolic pathways, with significant alterations in camalexin and aliphatic glucosinolate synthesis. Flavonols negatively regulated camalexin biosynthesis but appeared to promote the accumulation of aliphatic glucosinolates via transcription factor-mediated up-regulation of biosynthesis genes. Interestingly, upstream amino acid biosynthesis genes involved in methionine and tryptophan synthesis were altered under flavonol deficiency and exogenous supplementation. Quercetin treatment significantly up-regulated aliphatic glucosinolate biosynthesis genes compared with kaempferol and rutin. In addition, expression and metabolite analysis of the transparent testa7 mutant, which lacks hydroxylated flavonol derivatives, clarified the role of quercetin in the glucosinolate biosynthesis pathway. This study elucidates the molecular mechanisms by which flavonols interfere with signaling pathways, their molecular targets, and the multiple biological activities of flavonols in plants.

Funder

National Institute of Plant Genome Research

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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