Abscisic acid binds to an Arabidopsis thaliana phosphodiesterase and tunes its activity
Kwiatkowski, M.; Kozakiewicz-Piekarz, A.; Bi, C.; Wong, A.; Jaworski, K.; Irving, H.; Gehring, C.
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Growing evidence suggests that plant proteomes contain numerous proteins that specifically bind abscisic acid (ABA). Many of them are complex multidomain proteins where specific ABA-binding can cause biochemical and physiological changes. Here we show that the Arabidopsis thaliana K+ transporter AtKUP5 contains both a functional cytoplasmic N-terminal adenylate cyclase (AC) enabling the synthesis of 3,5-cAMP from ATP and a C-terminal phosphodiesterase (PDE) that hydrolyses 3,5-cAMP to 5-AMP. We found that ABA binds in a ligand-specific manner to the catalytic center of the PDE thereby causing a reduction of 3,5-cAMP hydrolysis in vitro. The hydrolytic activity of the PDE is ABA concentration-dependent, biphasic and requires the presence of an intact ABA-binding site similar to the one in the canonical Pyrabactin resistance 1/PYR-like/Abscisic acid receptors, with Vmax of 1.19 pmole min{square}1 g{square}1 in the absence of ABA, increasing to 1.58 pmole min{square}1 g{square}1 at 2 nM ABA, and decreasing to 0.75 pmole min{square}1 g{square}1 at 50 nM ABA. These findings are therefore consistent with a direct role of ABA in PDE activity modulations and form a functional link between 3,5-cAMP signaling and K+ flux. Furthermore, we predict that a growing number of such receptor-like proteins that specifically and directly interact with ABA will be discovered thereby uncovering complex and ancient layers of signaling and metabolic regulation.
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