Abstract
Although mammals of different species have different sleep patterns, brief sleep-wake transitions commonly are observed across species and appear to occur randomly throughout the sleeping period. The dynamical patterns and functions of these brief awakenings from sleep are not well understood, and they often are viewed as disruptions (random or pathologic) of the sleep process. In this article, we hypothesize that brief awakenings from sleep may reflect aspects of the endogenous sleep control mechanism and thus may exhibit certain robust dynamical patterns across species. We analyze sleep recordings from mice, rats, cats, and humans, and we compare the distributions of sleep and wake episode durations. For all four species, we find that durations of brief wake episodes during the sleep period exhibit a scale-free power-law behavior with an exponent alpha that remains the same for all species (alpha approximately equal to 2.2). In contrast, sleep episode durations for all four species follow exponential distributions with characteristic time scales, which change across species in relation to body mass and metabolic rate. Our findings suggest common dynamical features of brief awakenings and sleep durations across species and may provide insights into the dynamics of the neural circuits controlling sleep.
MeSH Terms
Animals
Body Weight
Brain/physiology
Cats
Electrophysiology
Humans
Mammals/physiology
Mice
Organ Size
Rats
Sleep/physiology
Wakefulness/physiology
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Lo Chung-Chuan
Center for Polymer Studies and Department of Physics, Boston University, Boston, MA 02215, USA. cclo@brandeis.edu
Chou Thomas
Penzel Thomas
Scammell Thomas E
Strecker Robert E
Stanley H Eugene
Ivanov Plamen Ch
References (15)
15 references, click to expand
-
The neurobiology of sleep: genetics, cellular physiology and subcortical networks.
Nat Rev Neurosci. 2002 Aug;3(8):591-605
PMID: 12154361
-
Behavioral state instability in orexin knock-out mice.
J Neurosci. 2004 Jul 14;24(28):6291-300
PMID: 15254084
-
Commentary: models of sleep regulation: successes and continuing challenges.
J Biol Rhythms. 1999 Dec;14(6):569-73
PMID: 10643754
-
Effect of lesions of the ventrolateral preoptic nucleus on NREM and REM sleep.
J Neurosci. 2000 May 15;20(10):3830-42
PMID: 10804223
-
New and revised data on volumes of brain structures in insectivores and primates.
Folia Primatol (Basel). 1981;35(1):1-29
PMID: 7014398
-
The nature of arousal in sleep.
J Sleep Res. 2004 Mar;13(1):1-23
PMID: 14996030
-
Proposed supplements and amendments to 'A Manual of Standardized Terminology, Techniques and Scoring System for Sleep Stages of Human Subjects', the Rechtschaffen & Kales (1968) standard.
Psychiatry Clin Neurosci. 2001 Jun;55(3):305-10
PMID: 11422885
-
Sleep homeostasis and models of sleep regulation.
J Biol Rhythms. 1999 Dec;14(6):557-68
PMID: 10643753
-
Brain site-specificity of extracellular adenosine concentration changes during sleep deprivation and spontaneous sleep: an in vivo microdialysis study.
Neuroscience. 2000;99(3):507-17
PMID: 11029542
-
Neuronal avalanches in neocortical circuits.
J Neurosci. 2003 Dec 3;23(35):11167-77
PMID: 14657176
-
Circadian rhythms from flies to human.
Nature. 2002 May 16;417(6886):329-35
PMID: 12015613
-
Allometric scaling and maximum efficiency in physiological eigen time.
Proc Natl Acad Sci U S A. 2002 Apr 30;99(9):5822-4
PMID: 11959910
-
The sleep switch: hypothalamic control of sleep and wakefulness.
Trends Neurosci. 2001 Dec;24(12):726-31
PMID: 11718878
-
The SIESTA project polygraphic and clinical database.
IEEE Eng Med Biol Mag. 2001 May-Jun;20(3):51-7
PMID: 11446210
-
Self-organized criticality.
Phys Rev A Gen Phys. 1988 Jul 1;38(1):364-374
PMID: 9900174