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Updated: May 4, 2026

Cholinergic Ligand–dependent Modulation of Oxidative Phosphorylation Coupling in Digitonin-permeabilized BE(2)-C Neuroblastoma Cells
Published on: April 28, 2026
α7 nicotinic acetylcholine receptors control cytochrome c release from isolated mitochondria through kinase-mediated
Galyna Gergalova1, Olena Lykhmus1, Sergiy Komisarenko1
1Palladin Institute of Biochemistry, 9, Leontovicha Str., Kyiv 01601, Ukraine.
Abstract:
Nicotinic acetylcholine receptors are ligand-gated ion channels found in the plasma membrane of both excitable and non-excitable cells. Previously we reported that nicotinic receptors containing α7 subunits were present in the outer membranes of mitochondria to regulate the early apoptotic events like cytochrome c release. Here we show that signaling of mitochondrial α7 nicotinic receptors affects intramitochondrial protein kinases. Agonist of α7 nicotinic receptors PNU 282987 (30 nM) prevented the effect of phosphatidyl inositol-3-kinase inhibitor wortmannin, which stimulated cytochrome c release in isolated mouse liver mitochondria, and restored the Akt (Ser 473) phosphorylation state decreased by either 90 μM Ca(2+) or wortmannin. The effect of PNU 282987 was similar to inhibition of calcium-calmodulin-dependent kinase II (upon 90 μM Ca(2+)) or of Src kinase(s) (upon 0.5mM H2O2) and of protein kinase C. Cytochrome c release from mitochondria could be also attenuated by α7 nicotinic receptor antagonist methyllicaconitine or α7-specific antibodies. Allosteric modulator PNU 120526 (1 μM) did not improve the effect of agonist PNU 282987. Acetylcholine (1 μM) and methyllicaconitine (10nM) inhibited superoxide release from mitochondria measured according to alkalization of Ca(2+)-containing medium. It is concluded that α7 nicotinic receptors regulate mitochondrial permeability transition pore formation through ion-independent mechanism involving activation of intramitochondrial PI3K/Akt pathway and inhibition of calcium-calmodulin-dependent or Src-kinase-dependent signaling pathways.
Insights
Mitochondrial alpha7 nicotinic receptors regulate cell death pathways by influencing key protein kinases. These receptors control apoptosis and superoxide release via an ion-independent mechanism involving the PI3K/Akt pathway.
Area of Science:
- Mitochondrial biology
- Cell signaling
- Neuroscience
Background:
- Nicotinic acetylcholine receptors (nAChRs), particularly the alpha7 subtype (α7), are implicated in cellular processes beyond neuronal function.
- Previous research identified α7 nAChRs on the outer mitochondrial membrane, regulating apoptosis.
- The precise signaling mechanisms of mitochondrial α7 nAChRs remain incompletely understood.
Purpose of the Study:
- To investigate the role of mitochondrial α7 nAChRs in regulating intramitochondrial protein kinases.
- To elucidate the signaling pathways affected by mitochondrial α7 nAChRs during apoptotic events.
- To determine the mechanism by which α7 nAChRs modulate mitochondrial function.
Main Methods:
- Isolated mouse liver mitochondria were used to study the effects of α7 nAChR agonists and antagonists.
- Cytochrome c release was measured as an indicator of apoptosis.
- Protein phosphorylation states (e.g., Akt Ser 473) were assessed.
- Superoxide release was quantified using a medium alkalization assay.
Main Results:
- The α7 nAChR agonist PNU 282987 prevented wortmannin-induced cytochrome c release and restored Akt phosphorylation.
- PNU 282987's effects mimicked those of inhibitors targeting calcium-calmodulin-dependent kinase II, Src kinases, and protein kinase C.
- Both α7 nAChR antagonists and antibodies attenuated cytochrome c release.
- Acetylcholine and an α7 nAChR antagonist inhibited mitochondrial superoxide release.
Conclusions:
- Mitochondrial α7 nAChRs regulate the mitochondrial permeability transition pore.
- This regulation occurs via an ion-independent mechanism involving the activation of the intramitochondrial PI3K/Akt pathway.
- α7 nAChRs also inhibit calcium-calmodulin-dependent and Src-kinase-dependent signaling pathways within mitochondria.
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