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Updated: Feb 2, 2026

Determination of Mitochondrial Membrane Potential and Reactive Oxygen Species in Live Rat Cortical Neurons
Published on: May 23, 2011
Otilonium and pinaverium trigger mitochondrial-mediated apoptosis in rat embryo cortical neurons in vitro
Fernanda García-Alvarado1, Giulia Govoni2, Ricardo de Pascual2
1Instituto Teófilo Hernando, Arzobispo Morcillo, 4, 28029, Madrid, Spain; Departamento de Farmacología y Terapéutica, Facultad de Medicina, Universidad Autónoma de Madrid, Arzobispo Morcillo, 4, 28029, Madrid, Spain; Instituto de Investigación Sanitaria, Hospital Universitario de La Princesa, Diego de León, 62, 28006, Madrid, Spain.
Abstract:
In the frame of a repositioning programme with cholinergic medicines in clinical use searching for neuroprotective properties, we surprisingly found that spasmolytic antimuscarinics otilonium and pinaverium exhibited neurotoxic effects in neuronal cultures. We decided to characterize such unexpected action in primary cultures of rat embryo cortical neurons. Neurotoxicity was time- and concentration-dependent, exhibiting approximate EC50 values of 5 μM for both drugs. Seven antimuscarinic drugs endowed with a quaternary ammonium, and another 10 drugs with different cholinergic activities, carrying in their molecule a ternary ammonium did not exhibit neurotoxicity. Both drugs caused a concentration-dependent blockade of whole-cell inward currents through voltage-activated calcium channels (VACCs). Consistent with this, they also blocked the K+-elicited [Ca2+]c transients. Neither antioxidant catalase, glutathione, n-acetylcysteine, nor melatonin protected against neurotoxicity of otilonium or pinaverium. However cyclosporine A, a blocker of the mitochondrial permeability transition pore, prevented the neurotoxic effects of otilonium and pinaverium monitored as the fraction of cells undergoing apoptosis. Furthermore, the caspase-9 and caspase-3 inhibitor Ac-LEHD-CHO mitigated the apoptotic neuronal death of both drugs by around 50%. Data are compatible with the hypothesis that otilonium and pinaverium elicit neuronal death by activating the intrinsic mitochondrial-mediated signaling pathway of apoptosis. This may have its origin in the mitigation of Ca2+ entry and the uncoupling of the Ca2+-dependent generation of mitochondrial bioenergetics, thus causing the opening of the mitochondrial mPTP to elicit apoptotic neuronal death.
Insights
Certain antimuscarinic drugs, otilonium and pinaverium, unexpectedly cause neurotoxicity by triggering apoptosis in neuronal cultures. This occurs via mitochondrial pathways, suggesting a novel mechanism for drug-induced neuronal death.
Area of Science:
- Neuroscience
- Pharmacology
- Cell Biology
Background:
- Cholinergic medicines are investigated for neuroprotective properties.
- Spasmolytic antimuscarinic drugs, otilonium and pinaverium, were unexpectedly found to be neurotoxic.
Purpose of the Study:
- To characterize the neurotoxic effects of otilonium and pinaverium.
- To elucidate the mechanism underlying the observed neurotoxicity.
Main Methods:
- Primary cultures of rat embryo cortical neurons were used.
- Neurotoxicity was assessed via concentration- and time-dependency.
- Whole-cell patch-clamp electrophysiology measured effects on voltage-activated calcium channels (VACCs).
- Apoptosis was evaluated using caspase inhibitors and cyclosporine A.
Main Results:
- Otilonium and pinaverium exhibited concentration-dependent neurotoxicity (EC50 ≈ 5 μM).
- Both drugs blocked VACCs and K+-elicited [Ca2+]c transients.
- Cyclosporine A prevented apoptosis, and caspase inhibitors mitigated it, implicating the mitochondrial pathway.
- Antioxidants did not protect against neurotoxicity.
Conclusions:
- Otilonium and pinaverium induce apoptotic neuronal death.
- The mechanism involves activation of the intrinsic mitochondrial apoptosis pathway.
- This may stem from impaired calcium influx and mitochondrial bioenergetics, leading to mitochondrial permeability transition pore opening.
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