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2-Vessel Occlusion/Hypotension: A Rat Model of Global Brain Ischemia
Published on: June 22, 2013
Rotenone selectively occludes sensitivity to hypoxia in rat carotid body glomus cells
Patricia Ortega-Sáenz1, Ricardo Pardal, María García-Fernandez
1Laboratorio de Investigaciones Biomédicas, Departamento de Fisiología and Hospital Universitario Virgen del Rocío, Universidad de Sevilla, E-41013, Seville, Spain.
Abstract:
Carotid body glomus cells release transmitters in response to hypoxia due to the increase of excitability resulting from inhibition of O2 -regulated K+ channels. However, the mechanisms involved in the detection of changes of O2 tension are unknown. We have studied the interaction between glomus cell O2 sensitivity and inhibition of the mitochondrial electron transport chain (ETC) in a carotid body thin slice preparation in which catecholamine release from intact single glomus cells can be monitored by amperometry. Inhibition of the mitochondrial ETC at proximal and distal complexes induces external Ca2+-dependent catecholamine secretion. At saturating concentration of the ETC inhibitors, the cellular response to hypoxia is maintained. However, rotenone, a complex I blocker, selectively occludes the responsiveness to hypoxia of glomus cells in a dose-dependent manner. The effect of rotenone is mimicked by 1-methyl-4-phenylpyridinium ion (MPP+), an agent that binds to the same site as rotenone, but not by complex I inhibitors acting on different sites. In addition, the effect of rotenone is not prevented by incubation of the cells with succinate, a substrate of complex II. These data strongly suggest that sensitivity to hypoxia of carotid body glomus cells is not linked in a simple way to mitochondrial electron flow and that a rotenone (and MPP+)-sensitive molecule critically participates in acute oxygen sensing in the carotid body.
Insights
Carotid body glomus cells detect oxygen levels through a mechanism involving a rotenone-sensitive molecule, not solely mitochondrial electron flow. This finding is crucial for understanding cellular oxygen sensing.
Area of Science:
- Cellular Physiology
- Neuroscience
- Respiratory System Biology
Background:
- Carotid body glomus cells are key oxygen sensors, releasing transmitters upon hypoxia.
- Hypoxia-induced excitability involves O2-regulated K+ channels, but oxygen detection mechanisms remain unclear.
Purpose of the Study:
- To investigate the role of the mitochondrial electron transport chain (ETC) in carotid body glomus cell oxygen sensitivity.
- To identify molecular mechanisms underlying acute oxygen sensing in the carotid body.
Main Methods:
- Utilized a carotid body thin slice preparation for studying intact single glomus cells.
- Monitored catecholamine release using amperometry.
- Applied mitochondrial ETC inhibitors (rotenone, MPP+) and substrates (succinate) to assess cellular responses.
Main Results:
- Inhibition of mitochondrial ETC complexes induced Ca2+-dependent catecholamine secretion.
- Rotenone (Complex I inhibitor) dose-dependently occluded glomus cell responsiveness to hypoxia.
- The effect of rotenone was mimicked by MPP+ but not by other Complex I inhibitors or succinate.
Conclusions:
- Carotid body glomus cell hypoxia sensitivity is not directly proportional to mitochondrial electron flow.
- A specific rotenone- and MPP+-sensitive molecule critically participates in acute oxygen sensing.

