Afterhyperpolarization Promotes the Firing of Mitral Cells through a Voltage-Dependent Modification of Action

Nicolas Fourcaud-Trocmé1, Mickaël Zbili1, Patricia Duchamp-Viret2

  • 1Lyon Neuroscience Research Center, CNRS UMR 5292 - INSERM U 1028 - Université Claude Bernard Lyon 1, Centre Hospitalier Le Vinatier - Bâtiment 462 - Neurocampus, 95 Boulevard Pinel, 69675 Bron Cedex, France.

Eneuro
|March 12, 2022
PubMed

Insights

Mitral cells (MCs) in the olfactory bulb exhibit bursting action potentials (APs). Afterhyperpolarization (AHP) mechanisms, particularly the fast AHP, are key to sustaining these bursts, while a slow AHP terminates them.

Area of Science:

  • Neuroscience
  • Olfactory System Physiology

Background:

  • Mitral cells (MCs) in the olfactory bulb show spontaneous bursting firing patterns.
  • Bursting activity in MCs is characterized by action potentials (APs) interspersed with silent periods.

Purpose of the Study:

  • To investigate the intrinsic cellular properties governing the bursting activity of olfactory bulb mitral cells.
  • To elucidate the ionic mechanisms underlying AP generation and burst dynamics in MCs.

Main Methods:

  • Patch-clamp recordings were performed on rat olfactory bulb slices.
  • Dynamic changes in action potential threshold were analyzed in relation to membrane potential trajectory.

Main Results:

  • Action potential threshold dynamically varied with preceding membrane potential, becoming more negative after hyperpolarization.
  • Voltage-dependent sodium channel inactivation was identified as a key factor influencing AP threshold dynamics.
  • Fast afterhyperpolarization (AHP) acted as a regenerative mechanism sustaining intraburst firing, while slow AHP contributed to burst termination.

Conclusions:

  • Afterhyperpolarization (AHP) characteristics are critical determinants of mitral cell bursting properties.
  • The interplay between sodium channel dynamics and AHP mechanisms shapes the complex firing patterns of olfactory bulb neurons.

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