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Greater variability in daily sleep efficiency predicts depression and anxiety in young adults: Estimation of depression severity using the two-week sleep quality records of wearable devices

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Authors

Lim, Jae-A; Yun, Je-Yeon; Choi, Soo Hee; Park, Susan; Suk, Hye Won; Jang, Joon Hwan

Issue Date
2022-11
Publisher
Frontiers Media S.A.
Citation
Frontiers in Psychiatry, Vol.13, p. 1041747
Abstract
ObjectivesSleep disturbances are associated with both the onset and progression of depressive disorders. It is important to capture day-to-day variability in sleep patterns; irregular sleep is associated with depressive symptoms. We used sleep efficiency, measured with wearable devices, as an objective indicator of daily sleep variability. Materials and methodsThe total sample consists of 100 undergraduate and graduate students, 60% of whom were female. All were divided into three groups (with major depressive disorder, mild depressive symptoms, and controls). Self-report questionnaires were completed at the beginning of the experiment, and sleep efficiency data were collected daily for 2 weeks using wearable devices. We explored whether the mean value of sleep efficiency, and its variability, predicted the severity of depression using dynamic structural equation modeling. ResultsMore marked daily variability in sleep efficiency significantly predicted levels of depression and anxiety, as did the average person-level covariates (longer time in bed, poorer quality of life, lower extraversion, and higher neuroticism). ConclusionLarge swings in day-to-day sleep efficiency and certain clinical characteristics might be associated with depression severity in young adults.
ISSN
1664-0640
URI
https://hdl.handle.net/10371/188792
DOI
https://doi.org/10.3389/fpsyt.2022.1041747
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