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Inner Mitochondrial Membrane Sensitivity to Na+ Reveals Partially Segmented Functional CoQ Pools
Published on: July 20, 2022
Heme is required for carbon monoxide activation of mitochondrial BKCa channel
Daria Rotko1, Piotr Bednarczyk2, Piotr Koprowski1
1Laboratory of Intracellular Ion Channels, Nencki Institute of Experimental Biology, Polish Academy of Sciences, Pastuera 3, 02-093, Warsaw, Poland.
Insights
Carbon monoxide (CO) may modulate mitochondrial BKCa channels, but only when heme is bound. Carbon monoxide-releasing molecules showed complex, unspecific effects on these channels.
Area of Science:
- Mitochondrial physiology
- Ion channel function
- Gaseous mediator signaling
Background:
- Carbon monoxide (CO) is an endogenous gasotransmitter regulating physiological processes.
- Mitochondria, rich in hemoproteins, are potential targets for CO.
- Large-conductance calcium-activated (mitoBKCa) channels are present in the inner mitochondrial membrane.
Purpose of the Study:
- To investigate if CO modulates mitoBKCa channel activity.
- To determine if CO-releasing molecules (CORMs) affect mitoBKCa channels.
- To explore the role of heme in CO's action on mitoBKCa channels.
Main Methods:
- Patch-clamp electrophysiology on human astrocytoma U-87 MG cell mitochondria.
- Application of CORM-2, CORM-401, and CORM-A1.
- Application of CO-saturated solution and exogenous heme.
Main Results:
- CORMs exhibited pleiotropic effects, including inhibition of mitoBKCa channels.
- CO-saturated solution did not significantly alter channel activity.
- CO stimulated heme-inhibited mitoBKCa channels, indicating a requirement for heme binding.
Conclusions:
- Heme binding to mitoBKCa channels is necessary for CO-mediated modulation.
- CORMs may exert complex, unspecific effects on mitoBKCa channels.
- CO's role in regulating mitochondrial function warrants further investigation.
Abstract:
Carbon monoxide (CO) is an endogenously synthesized gaseous mediator and is involved in the regulation of numerous physiological processes. Mitochondria, in which hemoproteins are abundant, are among the targets for CO action. Large-conductance calcium-activated (mitoBKCa) channels in the inner mitochondrial membrane share multiple biophysical similarities with the BKCa channels of the plasma membrane and could be a potential target for CO. To test this hypothesis, the activity of the mitoBKCa channels in human astrocytoma U-87 MG cell mitochondria was assessed with the patch-clamp technique. The effects of CO-releasing molecules (CORMs), such as CORM-2, CORM-401, and CORM-A1, were compared to the application of a CO-saturated solution to the mitoBKCa channels in membrane patches. The applied CORMs showed pleiotropic effects including channel inhibition, while the CO-containing solution did not significantly modulate channel activity. Interestingly, CO applied to the mitoBKCa channels, which were inhibited by exogenously added heme, stimulated the channel. To summarize, our findings indicate a requirement of heme binding to the mitoBKCa channel for channel modulation by CO and suggest that CORMs might have complex unspecific effects on mitoBKCa channels.
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