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TRESK background K(+) channel is inhibited by phosphorylation via two distinct pathways
1Department of Physiology, Semmelweis University, H-1444 Budapest, Hungary.
Abstract:
The two-pore domain K(+) channel, TRESK (TWIK-related spinal cord K(+) channel, KCNK18) is directly regulated by the calcium/calmodulin-dependent phosphatase calcineurin and 14-3-3 adaptor proteins. The calcium signal robustly activates the channel via calcineurin, whereas the anchoring of 14-3-3 interferes with the return of the current to the resting state after the activation in Xenopus oocytes. In the present study, we report that the phosphorylation of TRESK at two distinct regulatory regions, the 14-3-3 binding site (Ser-264) and the cluster of three adjacent serine residues (Ser-274, Ser-276, and Ser-279), are responsible for channel inhibition. The phosphorylation of Ser-264 by protein kinase A accelerated the return of the current of S276E mutant TRESK to the resting state after the calcineurin-dependent activation. In the presence of 14-3-3, the basal current of the S276E mutant was reduced, and its calcineurin-dependent activation was augmented, suggesting that the direct binding of the adaptor protein to TRESK contributed to the basal inhibition of the channel under resting conditions. Unexpectedly, we found that 14-3-3 impeded the recovery of the current of S264E mutant TRESK to the resting state after the calcineurin-dependent activation, despite of the mutated 14-3-3 binding site. This suggests that 14-3-3 inhibited the kinase phosphorylating the regulatory cluster of Ser-274, Ser-276, and Ser-279, independently of the direct interaction between TRESK and 14-3-3. In conclusion, two distinct inhibitory kinase pathways converge on TRESK, and their effect on the calcineurin-dependent regulation is differentially modulated by the functional availability of 14-3-3.
Insights
Two kinase pathways regulate the TRESK channel, impacting its calcium-dependent activation. 14-3-3 proteins modulate these pathways, affecting channel activity differently based on phosphorylation sites.
Area of Science:
- Molecular Biology
- Neuroscience
- Ion Channel Physiology
Background:
- The two-pore domain potassium channel TRESK (KCNK18) is regulated by calcineurin and 14-3-3 proteins.
- Calcium signals activate TRESK via calcineurin, while 14-3-3 binding affects current recovery.
Purpose of the Study:
- Investigate the role of TRESK phosphorylation at Ser-264 and Ser-274/276/279 in channel inhibition.
- Elucidate the interplay between 14-3-3 proteins, phosphorylation, and calcineurin-mediated TRESK activation.
Main Methods:
- Site-directed mutagenesis of TRESK (S276E, S264E).
- Electrophysiological recordings in Xenopus oocytes.
- Co-expression of TRESK variants with calcineurin and 14-3-3 proteins.
Main Results:
- Phosphorylation of TRESK at Ser-264 and Ser-274/276/279 inhibits channel activity.
- Phosphorylation of Ser-264 by protein kinase A accelerates current recovery.
- 14-3-3 proteins contribute to basal TRESK inhibition and augment calcineurin-dependent activation.
- 14-3-3 proteins inhibit TRESK phosphorylation at Ser-274/276/279 independently of direct binding.
Conclusions:
- Two distinct inhibitory kinase pathways converge on TRESK.
- 14-3-3 proteins differentially modulate these pathways, influencing TRESK regulation by calcineurin.
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