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Published on: October 11, 2018
Development of REM sleep drive and clinical implications
T Kobayashi1, C Good, K Mamiya
1Center for Translational Neuroscience, Department of Anatomy and Neurobiology, College of Medicine, University of Arkansas for Medical Sciences, Little Rock, Arkansas 72205, USA.
Insights
Rapid eye movement (REM) sleep decreases significantly during development. This study investigates changes in brainstem neurons, finding that altered excitatory and inhibitory responses may underlie REM sleep regulation.
Area of Science:
- Neuroscience
- Sleep Science
- Developmental Biology
Background:
- Human Rapid Eye Movement (REM) sleep declines from 50% in newborns to 15% in adults, primarily between birth and puberty.
- A failure in this developmental decrease in REM sleep drive could lead to lifelong increases in REM sleep.
- In rats, REM sleep decreases from over 70% to 15% between 10-30 days postpartum.
Purpose of the Study:
- To investigate the neurobiological mechanisms underlying the developmental decrease in REM sleep.
- To examine changes in pedunculopontine nucleus (PPN) neuronal responses during a critical developmental period in rats.
Main Methods:
- Intracellular recordings were performed on brainstem slices from rats aged 12-21 days.
- Neuronal responses to N-methyl-D-aspartic acid (NMDA), kainic acid, and serotonergic agonists were measured.
- Modulation of PPN projections to ascending and descending targets was examined.
Main Results:
- Excitatory responses of PPN neurons to NMDA decreased, while responses to kainic acid increased during development.
- Inhibitory responses to serotonergic type 1 agonists increased, but not to serotonergic type 2 agonists.
- PPN projections showed common signals modulating arousal and postural/locomotor functions.
Conclusions:
- Developing PPN neurons become increasingly activated by kainic acid and inhibited by serotonergic type 1 receptors.
- These neurochemical and receptor changes are potentially linked to the developmental reduction in REM sleep.
- Disturbances in these developmental processes may contribute to disorders characterized by increased REM sleep drive.
Abstract:
Rapid eye movement (REM) sleep in the human declines from approximately 50% of total sleep time ( approximately 8 h) in the newborn to approximately 15% of total sleep time (approximately 1 h) in the adult, and this decrease takes place mainly between birth and the end of puberty. We hypothesize that without this developmental decrease in REM sleep drive, lifelong increases in REM sleep drive may ensue. In the rat, the developmental decrease in REM sleep occurs 10-30 days after birth, declining from >70% of total sleep time in the newborn to the adult level of approximately 15% of sleep time during this period. Rats at 12-21 days of age were anesthetized with ketamine and decapitated, and brain stem slices were cut for intracellular recordings. We found that excitatory responses of pedunculopontine nucleus (PPN) neurons to N-methyl-D-aspartic acid decrease, while responses to kainic acid increase, over this critical period. During this developmental period, inhibitory responses to serotonergic type 1 agonists increase but responses to serotonergic type 2 agonists do not change. The results suggest that as PPN neurons develop, they are increasingly activated by kainic acid and increasingly inhibited by serotonergic type 1 receptors. These processes may be related to the developmental decrease in REM sleep. Developmental disturbances in each of these systems could induce differential increases in REM sleep drive, accounting for the postpubertal onset of a number of different disorders manifesting increases in REM sleep drive. Examination of modulation by PPN projections to ascending and descending targets revealed the presence of common signals modulating ascending arousal-related functions and descending postural/locomotor-related functions.
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