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Regulation of Pro-Apoptotic Phosphorylation of Kv2.1 K+ Channels
Kai He1, Meghan C McCord1, Karen A Hartnett1
1Department of Neurobiology, University of Pittsburgh School of Medicine, E1456 BST, 3500 Terrace St., Pittsburgh, PA, 15261, United States of America.
Abstract:
Caspase activity during apoptosis is inhibited by physiological concentrations of intracellular K+. To enable apoptosis in injured cortical and hippocampal neurons, cellular loss of this cation is facilitated by the insertion of Kv2.1 K+ channels into the plasma membrane via a Zn2+/CaMKII/SNARE-dependent process. Pro-apoptotic membrane insertion of Kv2.1 requires the dual phosphorylation of the channel by Src and p38 at cytoplasmic N- and C-terminal residues Y124 and S800, respectively. In this study, we investigate if these phosphorylation sites are mutually co-regulated, and whether putative N- and C-terminal interactions, possibly enabled by Kv2.1 intracellular cysteine residues C73 and C710, influence the phosphorylation process itself. Studies were performed with recombinant wild type and mutant Kv2.1 expressed in Chinese hamster ovary (CHO) cells. Using immunoprecipitated Kv2.1 protein and phospho-specific antibodies, we found that an intact Y124 is required for p38 phosphorylation of S800, and, importantly, that Src phosphorylation of Y124 facilitates the action of the p38 at the S800 residue. Moreover, the actions of Src on Kv2.1 are substantially decreased in the non-phosphorylatable S800A channel mutant. We also observed that mutations of either C73 or C710 residues decreased the p38 phosphorylation at S800 without influencing the actions of Src on tyrosine phosphorylation of Kv2.1. Surprisingly, however, apoptotic K+ currents were suppressed only in cells expressing the Kv2.1(C73A) mutant but not in those transfected with Kv2.1(C710A), suggesting a possible structural alteration in the C-terminal mutant that facilitates membrane insertion. These results show that intracellular N-terminal domains critically regulate phosphorylation of the C-terminal of Kv2.1, and vice versa, suggesting possible new avenues for modifying the apoptotic insertion of these channels during neurodegenerative processes.
Insights
Intracellular potassium (K+) inhibits apoptosis. Kv2.1 channel phosphorylation, regulated by N- and C-terminal interactions, facilitates K+ loss and neuronal apoptosis. Cysteine mutations reveal specific roles in channel regulation.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Physiological intracellular potassium (K+) concentrations inhibit caspase activity during apoptosis.
- Apoptosis in injured neurons requires K+ loss, facilitated by Kv2.1 K+ channel membrane insertion.
- Kv2.1 channel pro-apoptotic membrane insertion depends on dual phosphorylation by Src and p38 kinases at specific residues.
Purpose of the Study:
- To investigate the mutual co-regulation of Kv2.1 phosphorylation sites (Y124 and S800).
- To determine if N- and C-terminal interactions, involving cysteine residues (C73, C710), influence Kv2.1 phosphorylation.
- To explore the impact of these regulatory mechanisms on apoptotic K+ currents and channel insertion.
Main Methods:
- Expression of wild-type and mutant Kv2.1 channels in Chinese hamster ovary (CHO) cells.
- Immunoprecipitation of Kv2.1 protein and use of phospho-specific antibodies.
- Analysis of phosphorylation at Y124 (by Src) and S800 (by p38) in various Kv2.1 mutants.
Main Results:
- Intact Y124 is essential for p38-mediated S800 phosphorylation; Src phosphorylation of Y124 enhances p38 activity at S800.
- Src phosphorylation of Kv2.1 is reduced in the S800A mutant.
- Mutations at C73 or C710 reduce p38 phosphorylation at S800, but only C73A mutation suppresses apoptotic K+ currents, suggesting a structural role in membrane insertion.
Conclusions:
- Intracellular N- and C-terminal domains of Kv2.1 are mutually regulatory for phosphorylation.
- Specific cysteine residues (C73) play a critical role in regulating Kv2.1 channel function during apoptosis.
- Findings suggest novel strategies for modulating Kv2.1 channel activity in neurodegenerative diseases.
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