Structure–activity relationship of antimycin A-like compounds as photosystem II inhibitors
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Antimycin A (AA) is widely used as an inhibitor of the mitochondrial respiratory chain, targeting the Q i site of cytochrome bc 1 (complex III). In photosynthetic organisms, AA is also well known to inhibit the photosynthetic PROTON GRADIENT REGULATION 5 (PGR5)-dependent cyclic electron flow around photosystem I (CEF-PSI). Although AA is frequently used as a specific inhibitor of PGR5-dependent CEF-PSI in photosynthetic reactions, we recently clarified that some of the major components of AA, which is typically a mixture of closely related compounds, also exert direct inhibitory effects on photosystem II (PSII). Nevertheless, the binding site and binding mode of AA in PSII remain largely unexplored. Structurally, AA consists of a salicylic acid moiety connected via an amide bond to a hydrophobic dilactone ring moiety. To identify important structural factors of AA for exhibiting inhibitory effects on PSII (assessed by Q A − reoxidation measurements), we here investigated the relationship between structure and inhibitory potency using 38 AA-like compounds (AALCs), including commercial compounds and a series of synthetic AA analogs. Some AALCs exhibited substantially stronger impacts on PSII than natural AA. High acidity of the phenolic OH and the presence of a free amide NH of the salicylamide moiety were critical for the effects on PSII. In contrast, while the dilactone ring moiety also affected the inhibitory activity, this was replaceable with certain hydrophobic structures. Based on our results, together with the known structure–activity relationship and binding mode of AA in complex III, we propose tentative binding models for AA in PSII.
Highlights
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Structure–activity relationship of AA-like compounds on PSII is examined
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Several AA-like compounds more potent than AA against PSII are identified
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Phenolic OH acidity and free amide NH of salicylamide moiety are key for AA effects
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The dilactone ring moiety is replaceable with certain hydrophobic structures
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Tentative binding models for AA in PSII are proposed