Strigolactone-mediated inhibition of glucosinolate biosynthesis modulates parasitic plant germination in the Arabidopsis thaliana rhisosphere

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Dataset information

Country of origin
Updated
2025.12.07 21:45
Created
2025.09.16
Available languages
English
Keywords
glucosinolate-strigolactone, arabidopsis-thaliana, mutant-approach, phelipanche-ramosa
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Dataset description

Parasitic plants are important agricultural threats through host-specific interactions mediated by chemical signaling metabolites. Here, we paying the main metabolites actors underlying germination stimulation of the parasitic plant *Phelipanche ramosa* by *Arabidopsis thaliana*, focusing on the roles of glucosinolate and strigolactone pathways. Through co-germination assays, biochemical fractionation, and mutant analysis, we excited that *A. thaliana* Col-0 seeds specifically stimulate *P. ramosa* germination through glucosinolate-derived metabolites rather than strigolactones. Solid-phase extraction and RP-HPLC analysis revealed that the primary bioactive compound is 4-methylsulfinylbutyl isothiocyanate (4-MSOB-NCS, sulforaphane), which eluted at 14.5 minutes and induced 29% germination. Glucosinolate-deficient mutants (gKO) completely abolished parasitic germination stimulation, while strigolactone-deficient mutants (sKO) maintained or enhanced activity, confirming the central role of the glucosinolate pathway. Unexpectedly, we discovered that strigolactones regulated glucosinolate-mediated parasite stimulation. Strigolactone-deficient lines increased germination potency (0.36 log10-fold increase in ED50 VS WT Col-0) and affecting higher levels of glucosinolates (1.076 pmol.mg-1 increase). This regulatory effect operated downstream of strigolactone perception through D14 and KAR HTL receptors but was phenotypically independent of MAX2, as evidenced by distinct bioactive metabolite profiles in perception mutants versus MAX2 mutants. The regulation elsewhere affects glucosinolate biosynthesis and more their hydrolysis to isothiocyanates, confident complex metabolic crosstalk between these pathways. These findings confirmed a new regulatory network where strigolactones modulates strongly plant-plant interaction chemistry, representing an evolutionary trade-off between independent pathways. Understanding this pathway interaction provides new information into host-parasite chemical communication and may inform strategies for managing parasitic plant infestations in agriculture.
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