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Analyses of Mitochondrial Calcium Influx in Isolated Mitochondria and Cultured Cells
Published on: April 27, 2018
Large-conductance Ca²⁺-activated potassium channel in mitochondria of endothelial EA.hy926 cells
Piotr Bednarczyk1, Agnieszka Koziel, Wieslawa Jarmuszkiewicz
1Department of Biophysics, Warsaw University of Life Sciences, Warsaw, Poland.
Abstract:
In the present study, we describe the existence of a large-conductance Ca²⁺-activated potassium (BKCa) channel in the mitochondria of the human endothelial cell line EA.hy926. A single-channel current was recorded from endothelial mitoplasts (i.e., inner mitochondrial membrane) using the patch-clamp technique in the mitoplast-attached mode. A potassium-selective current was recorded with a mean conductance equal to 270 ± 10 pS in a symmetrical 150/150 mM KCl isotonic solution. The channel activity, which was determined as the open probability, increased with the addition of calcium ions and the potassium channel opener NS1619. Conversely, the activity of the channel was irreversibly blocked by paxilline and iberiotoxin, BKCa channel inhibitors. The open-state probability was found to be voltage dependent. The substances known to modulate BKCa channel activity influenced the bioenergetics of mitochondria isolated from human endothelial EA.hy926 cells. In isolated mitochondria, 100 μM Ca²⁺, 10 μM NS1619, and 0.5 μM NS11021 depolarized the mitochondrial membrane potential and stimulated nonphosphorylating respiration. These effects were blocked by iberiotoxin and paxilline in a potassium-dependent manner. Under phosphorylating conditions, NS1619-induced, iberiotoxin-sensitive uncoupling diverted energy from ATP synthesis during the phosphorylating respiration of the endothelial mitochondria. Immunological analysis with antibodies raised against proteins of the plasma membrane BKCa channel identified a pore-forming α-subunit and an auxiliary β₂-subunit of the channel in the endothelial mitochondrial inner membrane. In conclusion, we show for the first time that the inner mitochondrial membrane in human endothelial EA.hy926 cells contains a large-conductance calcium-dependent potassium channel with properties similar to those of the surface membrane BKCa channel.
Insights
Scientists discovered a large-conductance calcium-activated potassium (BKCa) channel in human endothelial cell mitochondria. This channel impacts mitochondrial bioenergetics and shares properties with plasma membrane BKCa channels.
Area of Science:
- Mitochondrial Biology
- Ion Channel Physiology
- Endothelial Cell Function
Background:
- Large-conductance calcium-activated potassium (BKCa) channels are crucial for regulating cellular excitability.
- Their presence and function within mitochondria, particularly in endothelial cells, remain largely unexplored.
Purpose of the Study:
- To investigate the existence and functional characteristics of BKCa channels in the inner mitochondrial membrane of human endothelial cells.
- To determine the impact of these mitochondrial BKCa channels on endothelial cell bioenergetics.
Main Methods:
- Patch-clamp recordings from endothelial mitoplasts to characterize ion channel activity.
- Assessment of mitochondrial membrane potential and respiration in isolated mitochondria.
- Immunological analysis to identify BKCa channel subunits within mitochondrial membranes.
Main Results:
- A potassium-selective channel with a conductance of 270 ± 10 pS was identified in endothelial mitoplasts.
- Channel activity was modulated by calcium, NS1619, paxilline, and iberiotoxin, consistent with BKCa channel properties.
- Mitochondrial BKCa channel activation depolarized the membrane potential, stimulated respiration, and altered ATP synthesis, effects blocked by inhibitors.
- Immunological detection confirmed the presence of BKCa channel α and β₂ subunits in the inner mitochondrial membrane.
Conclusions:
- The inner mitochondrial membrane of human endothelial cells harbors a functional BKCa channel.
- This mitochondrial BKCa channel plays a significant role in regulating endothelial mitochondrial bioenergetics.
- The findings reveal a novel role for BKCa channels in mitochondrial function beyond the plasma membrane.

