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Published on: June 3, 2016
Bursting mitral cells time the oscillatory coupling between olfactory bulb and entorhinal networks in neonatal mice
Johanna K Kostka1, Sabine Gretenkord1, Marc Spehr2
1Institute of Developmental Neurophysiology, Center for Molecular Neurobiology, University Medical Center Hamburg-Eppendorf, Hamburg, Germany.
Key Points:
During early postnatal development, mitral cells show either irregular bursting or non-bursting firing patterns Bursting mitral cells preferentially fire during theta bursts in the neonatal olfactory bulb, being locked to the theta phase Bursting mitral cells preferentially fire during theta bursts in the neonatal lateral entorhinal cortex and are temporally related to both respiration rhythm- and theta phase Bursting mitral cells act as a cellular substrate of the olfactory drive that promotes the oscillatory entrainment of entorhinal networks ABSTRACT: Shortly after birth, the olfactory system provides not only the main source of environmental inputs to blind, deaf, non-whisking and motorically-limited rodents, but also the drive boosting the functional entrainment of limbic circuits. However, the cellular substrate of this early communication remains largely unknown. Here, we combine in vivo and in vitro patch-clamp and extracellular recordings to reveal the contribution of mitral cell (MC) firing to early patterns of network activity in both the neonatal olfactory bulb (OB) and the lateral entorhinal cortex (LEC), the gatekeeper of limbic circuits. We show that MCs predominantly fire either in an irregular bursting or non-bursting pattern during discontinuous theta events in the OB. However, the temporal spike-theta phase coupling is stronger for bursting than non-bursting MCs. In line with the direct OB-to-LEC projections, both bursting and non-bursting discharge augments during co-ordinated patterns of entorhinal activity, albeit with higher magnitude for bursting MCs. For these neurons, temporal coupling to the discontinuous theta events in the LEC is stronger. Thus, bursting MCs might drive the entrainment of the OB-LEC network during neonatal development.
Insights
Bursting mitral cells in the neonatal olfactory bulb and lateral entorhinal cortex drive early network activity. These bursting cells synchronize with theta rhythms, promoting olfactory-driven entrainment of brain circuits.
Area of Science:
- Neuroscience
- Developmental Biology
- Olfactory System Research
Background:
- The olfactory system is a primary sensory input for neonatal rodents, driving limbic circuit development.
- The cellular mechanisms underlying early olfactory-driven network activity remain largely unknown.
Purpose of the Study:
- To investigate the role of mitral cell (MC) firing patterns in the neonatal olfactory bulb (OB) and lateral entorhinal cortex (LEC).
- To reveal the contribution of MCs to early network activity and limbic circuit entrainment.
Main Methods:
- In vivo and in vitro patch-clamp and extracellular recordings.
- Analysis of mitral cell firing patterns (bursting vs. non-bursting) and their temporal relationship with theta oscillations in the OB and LEC.
Main Results:
- Mitral cells exhibit irregular bursting or non-bursting firing patterns during theta events in the neonatal OB.
- Bursting MCs show stronger temporal coupling to theta phases in both the OB and LEC.
- MC discharge, particularly bursting, augments coordinated activity in the OB-LEC network.
Conclusions:
- Bursting mitral cells serve as a cellular substrate for olfactory input during early development.
- Bursting MCs may drive the oscillatory entrainment of the OB-LEC network, facilitating sensory processing and circuit maturation.
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