Sleep Spindles: Mechanisms and Functions

Сонные веретена: механизмы и функции
Laura M. J. Fernandez, Anita Lüthi
2019-12-05

electroencephalogram (EEG)non-rapid-eye-movement sleep (NREMS)sleep spindlessynaptic plasticitythalamocortical circuits
Sleep spindles are burstlike signals in the electroencephalogram (EEG) of the sleeping mammalian brain and electrical surface correlates of neuronal oscillations in thalamus. As one of the most inheritable sleep EEG signatures, sleep spindles probably reflect the strength and malleability of thalamocortical circuits that underlie individual cognitive profiles. We review the characteristics, organization, regulation, and origins of sleep spindles and their implication in non-rapid-eye-movement sleep (NREMS) and its functions, focusing on human and rodent. Spatially, sleep spindle-related neuronal activity appears on scales ranging from small thalamic circuits to functional cortical areas, and generates a cortical state favoring intracortical plasticity while limiting cortical output. Temporally, sleep spindles are discrete events, part of a continuous power band, and elements grouped on an infraslow time scale over which NREMS alternates between continuity and fragility. We synthesize diverse and seemingly unlinked functions of sleep spindles for sleep architecture, sensory processing, synaptic plasticity, memory formation, and cognitive abilities into a unifying sleep spindle concept, according to which sleep spindles 1) generate neural conditions of large-scale functional connectivity and plasticity that outlast their appearance as discrete EEG events, 2) appear preferentially in thalamic circuits engaged in learning and attention-based experience during wakefulness, and 3) enable a selective reactivation and routing of wake-instated neuronal traces between brain areas such as hippocampus and cortex. Their fine spatiotemporal organization reflects NREMS as a physiological state coordinated over brain and body and may indicate, if not anticipate and ultimately differentiate, pathologies in sleep and neurodevelopmental, -degenerative, and -psychiatric conditions.
1
Fine spatiotemporal organization of spindles reflects coordinated NREMS across brain and body and may indicate or differentiate sleep, neurodevelopmental, neurodegenerative, and psychiatric pathologies.
2
Sleep spindles are burstlike EEG signals reflecting thalamic neuronal oscillations and are highly heritable sleep EEG signatures.
3
Sleep spindles indicate the strength and malleability of thalamocortical circuits that underlie individual cognitive profiles.
4
Spatially, spindle-related neuronal activity spans scales from small thalamic circuits to large functional cortical areas, promoting intracortical plasticity while limiting cortical output.
5
Temporally, spindles are discrete events within a continuous power band and are grouped on an infraslow timescale during which NREMS alternates between continuity and fragility.
6
The authors propose a unifying concept: spindles (1) create neural conditions for large-scale functional connectivity and plasticity that outlast EEG events, (2) preferentially occur in thalamic circuits engaged by learning and attention during wakefulness, and (3) enable selective reactivation and routing of wake-established neuronal traces between regions like hippocampus and cortex.

Sleep spindles (burstlike EEG events reflecting thalamocortical neuronal oscillations during non-REM sleep)

Mechanisms, spatiotemporal organization, regulation, origins, and functional roles of sleep spindles in NREMS including their contributions to thalamocortical connectivity, intracortical plasticity, sensory processing, memory formation, and cognitive abilities

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2019-12-05
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Laura M. J. Fernandez
Anita Lüthi
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