[REM sleep behavior disorder: an overt access to motor and cognitive control during sleep].
Revue neurologique October 1, 2010 DOI: 10.1016/j.neurol.2010.07.016 (opens in new tab) via PubMed
Summary
AI-generated from the abstractREM sleep behavior disorder (RBD) involves violent movements during REM sleep due to loss of normal muscle paralysis, predominantly affecting older adults, either as an idiopathic condition that often precedes Parkinson disease or Lewy body dementia, or alongside other neurological diseases, especially synucleinopathies. During RBD episodes, parkinsonism transiently disappears, patients speak louder and with better articulation, and movements are rapid but jerky, suggesting reduced basal ganglia interference with the primary motor cortex.
Study at a glance
| Characteristics | Observational study Peer reviewed |
|---|---|
| Population | Elderly subjects with REM sleep behavior disorder, both idiopathic and with neurological/neurodegenerative diseases |
| Key finding | During REM sleep behavior disorder episodes, parkinsonism transiently disappears and patients exhibit culturally-acquired behaviors with mastered gestures and appropriate prosody, suggesting these behaviors are generated by the same cortical areas as during wakefulness. |
Abstract
Rapid eye movement (REM) sleep behavior disorder (RBD) is characterized by violent, or potentially violent, movements during REM sleep, corresponding to enacted dreams. During sleep monitoring, there is a partial or total loss of the normal muscle atonia during REM sleep. REM sleep behavior disorder predominantly affects elderly subjects without any other disease (idiopathic RBD, a precursor of Parkinson disease and Lewy body dementia) or suffering from various neurological and neurodegenerative diseases, mainly synucleinopathies. In addition to being a treatable cause of nocturnal injury of the patients or their bed-partners, RBD is a fantastic window into motor and cognitive control during REM sleep. Notably, parkinsonism transiently disappears during RBD. The patient's voice is louder and better articulated than when awake, and movements are rapid (but jerky) suggesting that the deleterious message from the basal ganglia to the primary motor cortex is reduced or bypassed. As we observed culturally-acquired behaviors, retired patients practicing their former work with mastered gestures, as well as sentences pronounced with appropriate prosody, gesturing, fluency, and syntax during the RBD, we suggest that these behaviors are generated by the same cortical areas as during wakefulness. This model also enables the demonstration that REM during REM sleep are coded in the same direction as the arm and hand movements, as if the dreamer were scanning the dream images. This online access to the motor and verbal dream scenario (through the video and audio monitoring), and the physiological measures (via the EEG, eye movements, muscle tone, respiration, heart rate), together with the offline access to the mental content (dream report after the awakening) constitute a triangulation for validating new hypotheses about REM sleep and dreams.