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Published on: April 20, 2015
Translocation of TMEM175 Lysosomal Potassium Channel to the Plasma Membrane by Dynasore Compounds
Enikő Pergel1, Irén Veres1, Gergely Imre Csigi1
1Department of Physiology, Semmelweis University, 1094 Budapest, Hungary.
Abstract:
TMEM175 (transmembrane protein 175) coding sequence variants are associated with increased risk of Parkinson's disease. TMEM175 is the ubiquitous lysosomal K+ channel regulated by growth factor receptor signaling and direct interaction with protein kinase B (PKB/Akt). In the present study, we show that the expression of mouse TMEM175 results in very small K+ currents through the plasma membrane in Xenopus laevis oocytes, in good accordance with the previously reported intracellular localization of the channel. However, the application of the dynamin inhibitor compounds, dynasore or dyngo-4a, substantially increased TMEM175 currents measured by the two-electrode voltage clamp method. TMEM175 was more permeable to cesium than potassium ions, voltage-dependently blocked by 4-aminopyridine (4-AP), and slightly inhibited by extracellular acidification. Immunocytochemistry experiments indicated that dyngo-4a increased the amount of epitope-tagged TMEM175 channel on the cell surface. The coexpression of dominant-negative dynamin, and the inhibition of clathrin- or caveolin-dependent endocytosis increased TMEM175 current much less than dynasore. Therefore, dynamin-independent pharmacological effects of dynasore may also contribute to the action on the channel. TMEM175 current rapidly decays after the withdrawal of dynasore, raising the possibility that an efficient internalization mechanism removes the channel from the plasma membrane. Dyngo-4a induced about 20-fold larger TMEM175 currents than the PKB activator SC79, or the coexpression of a constitutively active mutant PKB with the channel. In contrast, the allosteric PKB inhibitor MK2206 diminished the TMEM175 current in the presence of dyngo-4a. These data suggest that, in addition to the lysosomes, PKB-dependent regulation also influences TMEM175 current in the plasma membrane.
Insights
Transmembrane protein 175 (TMEM175) is a lysosomal potassium channel linked to Parkinson's disease risk. Dynamin inhibitors increase TMEM175 currents at the plasma membrane, suggesting PKB-dependent regulation.
Area of Science:
- Molecular Biology
- Cell Biology
- Neuroscience
Background:
- Transmembrane protein 175 (TMEM175) is a lysosomal potassium channel implicated in Parkinson's disease.
- TMEM175 activity is regulated by growth factor signaling and protein kinase B (PKB/Akt).
Purpose of the Study:
- To investigate the regulation of TMEM175 channel activity at the plasma membrane.
- To explore the role of dynamin and PKB in TMEM175 trafficking and function.
Main Methods:
- Two-electrode voltage clamp electrophysiology in Xenopus laevis oocytes.
- Pharmacological inhibition of dynamin using dynasore and dyngo-4a.
- Immunocytochemistry to assess cell surface expression of TMEM175.
- Investigating the effects of PKB activators and inhibitors.
Main Results:
- Dynamin inhibitors (dynasore, dyngo-4a) significantly increased TMEM175-mediated K+ currents at the plasma membrane.
- Dyngo-4a enhanced TMEM175 surface expression, suggesting dynamin regulates its internalization.
- PKB activation increased TMEM175 currents, while inhibition reduced them, indicating PKB-dependent regulation.
Conclusions:
- TMEM175 channels are subject to dynamin-mediated regulation of plasma membrane localization.
- PKB signaling plays a role in modulating TMEM175 channel activity at the cell surface.
- These findings reveal novel regulatory mechanisms for TMEM175 beyond lysosomal localization.
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