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Optogenetic Manipulation of Neural Circuits During Monitoring Sleep/wakefulness States in Mice
Published on: June 19, 2019
Narcoleptic orexin receptor knockout mice express enhanced cholinergic properties in laterodorsal tegmental neurons
M Kalogiannis1, S L Grupke, P E Potter
1Department of Physiology, New York Medical College, Valhalla, NY 10595, USA.
Abstract:
Pharmacological studies of narcoleptic canines indicate that exaggerated pontine cholinergic transmission promotes cataplexy. As disruption of orexin (hypocretin) signaling is a primary defect in narcolepsy with cataplexy, we investigated whether markers of cholinergic synaptic transmission might be altered in mice constitutively lacking orexin receptors (double receptor knockout; DKO). mRNA for Choline acetyltransferase (ChAT), vesicular acetylcholine transporter (VAChT) and the high-affinity choline transporter (CHT1) but not acetylcholinesterase (AChE) was significantly higher in samples from DKO than wild-type (WT) mice. This was region-specific; levels were elevated in samples from the laterodorsal tegmental nucleus (LDT) and the fifth motor nucleus (Mo5) but not in whole brainstem samples. Consistent with region-specific changes, we were unable to detect significant differences in Western blots for ChAT and CHT1 in isolates from brainstem, thalamus and cortex or in ChAT enzymatic activity in the pons. However, using ChAT immunocytochemistry, we found that while the number of cholinergic neurons in the LDT and Mo5 were not different, the intensity of somatic ChAT immunostaining was significantly greater in the LDT, but not Mo5, from DKO than from WT mice. We also found that ChAT activity was significantly reduced in cortical samples from DKO compared with WT mice. Collectively, these findings suggest that the orexins can regulate neurotransmitter expression and that the constitutive absence of orexin signaling results in an up-regulation of the machinery necessary for cholinergic neurotransmission in a mesopontine population of neurons that have been associated with both normal rapid eye movement sleep and cataplexy.
Insights
Orexin receptor absence in mice increases cholinergic markers in specific brain regions, suggesting a link between orexin signaling and neurotransmission in narcolepsy-related pathways.
Area of Science:
- Neuroscience
- Sleep Research
- Neurotransmission
Background:
- Narcolepsy with cataplexy is linked to disrupted orexin signaling.
- Cholinergic transmission in the pons is implicated in cataplexy.
Purpose of the Study:
- To investigate alterations in cholinergic synaptic transmission markers in mice lacking orexin receptors.
- To determine if orexin signaling regulates cholinergic neurotransmission.
Main Methods:
- Quantitative real-time PCR for cholinergic markers (ChAT, VAChT, CHT1, AChE).
- Western blotting and enzymatic activity assays for ChAT and CHT1.
- Choline acetyltransferase (ChAT) immunocytochemistry in specific brain nuclei.
Main Results:
- Increased mRNA levels for ChAT, VAChT, and CHT1 in orexin receptor knockout (DKO) mice compared to wild-type (WT).
- Region-specific elevation of cholinergic markers in the laterodorsal tegmental nucleus (LDT) and fifth motor nucleus (Mo5).
- Enhanced somatic ChAT immunostaining intensity in the LDT of DKO mice, indicating increased cholinergic neuron expression.
Conclusions:
- Constitutive absence of orexin signaling leads to up-regulation of cholinergic neurotransmission machinery in mesopontine neurons.
- Orexins play a regulatory role in neurotransmitter expression.
- Findings suggest a connection between orexin signaling, cholinergic systems, and the pathophysiology of narcolepsy and REM sleep.
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