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.

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.

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