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Published on: August 29, 2015
Phosphorylation-dependent binding of 14-3-3 proteins controls TRESK regulation
Gábor Czirják1, Drazsen Vuity, Péter Enyedi
1Department of Physiology, Semmelweis University, H-1444 Budapest, Hungary.
Abstract:
The two-pore domain K(+) channel, TRESK (TWIK-related spinal cord K(+) channel) is reversibly activated by the calcium/calmodulin-dependent protein phosphatase, calcineurin. In the present study, we report that 14-3-3 proteins directly bind to the intracellular loop of TRESK and control the kinetics of the calcium-dependent regulation of the channel. Coexpression of 14-3-3eta with TRESK blocked, whereas the coexpression of a dominant negative form of 14-3-3eta accelerated the return of the K(+) current to the resting state after the activation mediated by calcineurin in Xenopus oocytes. The direct action of 14-3-3 was spatially restricted to TRESK, since 14-3-3eta was also effective, when it was tethered to the channel by a flexible polyglutamine-containing chain. The effect of both the coexpressed and chained 14-3-3 was alleviated by the microinjection of Ser(P)-Raf259 phosphopeptide that competes with TRESK for binding to 14-3-3. The gamma and eta isoforms of 14-3-3 controlled TRESK regulation, whereas the beta, zeta, epsilon, sigma, and tau isoforms failed to influence the mechanism significantly. Phosphorylation of serine 264 in mouse TRESK was required for the binding of 14-3-3eta. Because 14-3-3 proteins are ubiquitous, they are expected to control the duration of calcineurin-mediated TRESK activation in all the cell types that express the channel, depending on the phosphorylation state of serine 264. This kind of direct control of channel regulation by 14-3-3 is unique within the two-pore domain K(+) channel family.
Insights
14-3-3 proteins directly bind to the TRESK channel, controlling its calcium-dependent activation kinetics. Specific 14-3-3 isoforms regulate TRESK activity, with phosphorylation at serine 264 being crucial for this interaction.
Area of Science:
- Molecular Biology
- Neuroscience
- Ion Channel Physiology
Background:
- The two-pore domain potassium channel, TRESK, is regulated by calcineurin.
- Understanding TRESK channel regulation is crucial for cellular signaling pathways.
Purpose of the Study:
- To investigate the direct interaction between 14-3-3 proteins and the TRESK channel.
- To elucidate the role of 14-3-3 proteins in modulating TRESK channel kinetics and calcium-dependent activation.
Main Methods:
- Coexpression of TRESK and 14-3-3 isoforms in Xenopus oocytes.
- Utilizing a tethered 14-3-3eta construct to assess spatial restriction of its action.
- Employing phosphopeptide competition assays to confirm binding specificity.
Main Results:
- 14-3-3 proteins directly bind to the intracellular loop of TRESK.
- 14-3-3eta isoforms modulate the kinetics of calcineurin-mediated TRESK activation.
- Phosphorylation of serine 264 on TRESK is essential for 14-3-3 binding.
Conclusions:
- 14-3-3 proteins directly control TRESK channel activity and duration of activation.
- This interaction is isoform-specific, with gamma and eta being significant regulators.
- The findings reveal a unique mechanism of ion channel regulation within the two-pore domain K+ channel family.
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