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Modulation of glioma BK channels via erbB2
M L Olsen1, A K Weaver, P S Ritch
1Department of Neurobiology and Civitan International Research Center, University of Alabama at Birmingham, Birmingham, AL 35294, USA.
Abstract:
Glioma cells show up-regulation and constitutive activation of erbB2, and its expression correlates positively with increased malignancy. A similar correlation has been demonstrated for the expression of gBK, a calcium-sensitive, large-conductance K(+) channel. We show here that glioma BK channels are a downstream target of erbB2/neuregulin signaling. Tyrphostin AG825 was able to disrupt the constituitive erbB2 activation in a dose-dependent manner, causing a 30-mV positive shift in gBK channel activation in cell-attached patches. Conversely, maximal stimulation of erbB2 with a recombinant neuregulin (NRG-1beta) caused a 12-mV shift in the opposite direction. RT-PCR studies reveal no change in the BK splice variants expressed in treated glioma cells. Furthermore, isolation of surface proteins through biotinylation did not show a change in gBK channel expression, and probing with phospho-specific antibodies showed no alteration in channel phosphorylation. However, fura-II Ca(2+) fluorescence imaging revealed a 35% decrease in the free intracellular Ca(2+) concentration after erbB2 inhibition and an increase in NRG-1beta-treated cells, suggesting that the observed changes most likely were due to alterations in [Ca(2+)](i). Consistent with this conclusion, neither tyrphostin AG825 nor NRG-1beta was able to modulate gBK channels under inside-out or whole-cell recording conditions when intracellular Ca(2+) was fixed. Thus, gBK channels are a downstream target for the abundantly expressed neuregulin-1 receptor erbB2 in glioma cells. However, unlike the case in other systems, this modulation appears to occur via changes in [Ca(2+)](i) without changes in channel expression or phosphorylation. The enhanced sensitivity of gBK channels in glioma cells to small, physiological Ca(2+) changes appears to be a prerequisite for this modulation.
Insights
Glioma BK channels are regulated by erbB2/neuregulin signaling, impacting intracellular calcium levels. This modulation occurs through calcium concentration changes, not channel expression or phosphorylation.
Area of Science:
- Neuro-oncology
- Molecular cell biology
- Ion channel physiology
Background:
- Glioma malignancy correlates with erbB2 and BK channel expression.
- erbB2 (ErbB2 receptor tyrosine kinase) and neuregulin signaling are implicated in glioma progression.
- Large-conductance calcium-sensitive potassium (BK) channels (gBK) play a role in cellular excitability and function.
Purpose of the Study:
- To investigate if glioma BK channels are a downstream target of erbB2/neuregulin signaling.
- To elucidate the mechanism by which erbB2/neuregulin signaling modulates gBK channel activity in glioma cells.
Main Methods:
- Cell-attached patch-clamp recordings to assess gBK channel activation.
- Tyrphostin AG825 treatment to inhibit erbB2 activation.
- Recombinant neuregulin-1 beta (NRG-1beta) stimulation.
- RT-PCR to analyze BK splice variants.
- Biotinylation for surface protein isolation.
- Western blotting with phospho-specific antibodies.
- Fura-II calcium imaging to measure intracellular calcium concentration ([Ca(2+)](i)).
Main Results:
- Inhibition of erbB2 with Tyrphostin AG825 shifted gBK channel activation positively (30 mV), while NRG-1beta stimulation shifted it negatively (12 mV).
- No changes in BK splice variants or gBK channel surface expression or phosphorylation were observed.
- Fura-II imaging showed decreased [Ca(2+)](i) upon erbB2 inhibition and increased [Ca(2+)](i) with NRG-1beta stimulation.
- Modulation of gBK channels by Tyrphostin AG825 or NRG-1beta was abolished when intracellular calcium was fixed.
Conclusions:
- Glioma BK channels are a downstream target of erbB2/neuregulin signaling.
- Modulation of gBK channels by this pathway occurs via alterations in intracellular calcium concentration, not changes in channel expression or phosphorylation.
- Enhanced sensitivity of glioma gBK channels to physiological calcium fluctuations may be crucial for this modulation.
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