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Updated: Jun 22, 2026

Spinal Cord Electrophysiology
Published on: January 18, 2010
Cholinergic responses and intrinsic membrane properties of developing thalamic parafascicular neurons
Meijun Ye1, Abdallah Hayar, Edgar Garcia-Rill
1Center for Translational Neuroscience, Department of Neurobiology and Developmental Sciences, University of Arkansas for Medical Sciences, Little Rock, Arkansas 72205, USA.
Insights
Cholinergic input to brainstem parafascicular (Pf) neurons changes during development, with inhibitory responses increasing and excitatory responses decreasing, correlating with reduced REM sleep. This suggests altered Pf cell excitability impacts brain rhythms.
Area of Science:
- Neuroscience
- Developmental Biology
- Sleep Research
Background:
- Parafascicular (Pf) neurons receive cholinergic input from the pedunculopontine nucleus (PPN), active during waking and REM sleep.
- REM sleep declines developmentally in humans and rats.
- Previous research noted changes in PPN receptor-mediated inhibition and GABAergic responses during this developmental period.
Purpose of the Study:
- To investigate the developmental changes in cholinergic modulation of rat Pf neurons.
- To characterize the receptor subtypes mediating these cholinergic responses.
- To correlate these changes with the developmental decrease in REM sleep.
Main Methods:
- Whole-cell patch-clamp recordings in 9- to 20-day-old rat Pf neurons.
- Application of cholinergic agonist carbachol (CAR) and specific cholinergic antagonists.
- Analysis of neuronal responses, membrane properties, and ion channel characteristics.
Main Results:
- Three types of CAR responses identified: inhibitory (55.3%), excitatory (31.1%), and biphasic (6.8%).
- The proportion of CAR-inhibited Pf neurons increased with development, mediated by M2 receptors.
- Excitatory responses involved M1, nicotinic, and possibly M3/M5 receptors; biphasic responses involved multiple muscarinic receptors. CAR-excited cells had altered membrane properties and ion channel densities, which also decreased with development.
Conclusions:
- Cholinergic modulation of Pf neurons is diverse and changes developmentally.
- Pf cells exhibit decreased excitability and cholinergic activation during the developmental decline in REM sleep.
- These alterations may influence cortical rhythmic oscillations and REM sleep regulation.
Abstract:
Parafascicular (Pf) neurons receive cholinergic input from the pedunculopontine nucleus (PPN), which is active during waking and REM sleep. There is a developmental decrease in REM sleep in humans between birth and puberty and 10-30 days in rat. Previous studies have established an increase in muscarinic and 5-HT1 serotonergic receptor-mediated inhibition and a transition from excitatory to inhibitory GABA(A) responses in the PPN during the developmental decrease in REM sleep. However, no studies have been conducted on the responses of Pf cells to the cholinergic input from the PPN during development, which is a major target of ascending cholinergic projections and may be an important mechanism for the generation of rhythmic oscillations in the cortex. Whole cell patch-clamp recordings were performed in 9- to 20-day-old rat Pf neurons in parasagittal slices, and responses to the cholinergic agonist carbachol (CAR) were determined. Three types of responses were identified: inhibitory (55.3%), excitatory (31.1%), and biphasic (fast inhibitory followed by slow excitatory, 6.8%), whereas 6.8% of cells showed no response. The proportion of CAR-inhibited Pf neurons increased with development. Experiments using cholinergic antagonists showed that M2 receptors mediated the inhibitory response, whereas excitatory modulation involved M1, nicotinic, and probably M3 or M5 receptors, and the biphasic response was caused by the activation of multiple types of muscarinic receptors. Compared with CAR-inhibited cells, CAR-excited Pf cells showed 1) a decreased membrane time constant, 2) higher density of hyperpolarization-activated channels (I(h)), 3) lower input resistance (R(in)), 4) lower action potential threshold, and 5) shorter half-width duration of action potentials. Some Pf cells exhibited spikelets, and all were excited by CAR. During development, we observed decreases in I(h) density, R(in), time constant, and action potential half-width. These results suggest that cholinergic modulation of Pf differentially affects separate populations, perhaps including electrically coupled cells. Pf cells tend to show decreased excitability and cholinergic activation during the developmental decrease in REM sleep.
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