Literature DB >> 30778527

Multidimensional Sleep and Mortality in Older Adults: A Machine-Learning Comparison With Other Risk Factors.

Meredith L Wallace1,2, Daniel J Buysse1, Susan Redline3, Katie L Stone4,5, Kristine Ensrud6,7, Yue Leng8, Sonia Ancoli-Israel9, Martica H Hall1.   

Abstract

BACKGROUND: Sleep characteristics related to duration, timing, continuity, and sleepiness are associated with mortality in older adults, but rarely considered in health recommendations. We applied machine learning to: (i) establish the predictive ability of a multidimensional self-reported sleep domain for all-cause and cardiovascular mortality in older adults relative to other established risk factors and (ii) to identify which sleep characteristics are most predictive.
METHODS: The analytic sample includes N = 8,668 older adults (54% female) aged 65-99 years with self-reported sleep characterization and longitudinal follow-up (≤15.5 years), aggregated from three epidemiological cohorts. We used variable importance (VIMP) metrics from a random survival forest to rank the predictive abilities of 47 measures and domains to which they belong. VIMPs > 0 indicate predictive variables/domains.
RESULTS: Multidimensional sleep was a significant predictor of all-cause (VIMP [99.9% confidence interval {CI}] = 0.94 [0.60, 1.29]) and cardiovascular (1.98 [1.31, 2.64]) mortality. For all-cause mortality, it ranked below that of the sociodemographic (3.94 [3.02, 4.87]), physical health (3.79 [3.01, 4.57]), and medication (1.33 [0.94, 1.73]) domains but above that of the health behaviors domain (0.22 [0.06, 0.38]). The domains were ranked similarly for cardiovascular mortality. The most predictive individual sleep characteristics across outcomes were time in bed, hours spent napping, and wake-up time.
CONCLUSION: Multidimensional sleep is an important predictor of mortality that should be considered among other more routinely used predictors. Future research should develop tools for measuring multidimensional sleep-especially those incorporating time in bed, napping, and timing-and test mechanistic pathways through which these characteristics relate to mortality.
© The Author(s) 2019. Published by Oxford University Press on behalf of The Gerontological Society of America. All rights reserved. For permissions, please e-mail: journals.permissions@oup.com.

Entities:  

Keywords:  Elderly; Machine learning; Mortality; Random forest; Sleep health

Year:  2019        PMID: 30778527      PMCID: PMC6853700          DOI: 10.1093/gerona/glz044

Source DB:  PubMed          Journal:  J Gerontol A Biol Sci Med Sci        ISSN: 1079-5006            Impact factor:   6.053


  37 in total

1.  "Mini-mental state". A practical method for grading the cognitive state of patients for the clinician.

Authors:  M F Folstein; S E Folstein; P R McHugh
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Authors:  Sonia Ancoli-Israel
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Authors:  A B Newman; C F Spiekerman; P Enright; D Lefkowitz; T Manolio; C F Reynolds; J Robbins
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Authors:  Martica H Hall; Stephen F Smagula; Robert M Boudreau; Hilsa N Ayonayon; Suzanne E Goldman; Tamara B Harris; Barbara L Naydeck; Susan M Rubin; Laura Samuelsson; Suzanne Satterfield; Katie L Stone; Marjolein Visser; Anne B Newman
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Authors:  Hanne Nybo; Hans Chr Petersen; David Gaist; Bernard Jeune; Kjeld Andersen; Matt McGue; James W Vaupel; Kaare Christensen
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8.  The Pittsburgh Sleep Quality Index: a new instrument for psychiatric practice and research.

Authors:  D J Buysse; C F Reynolds; T H Monk; S R Berman; D J Kupfer
Journal:  Psychiatry Res       Date:  1989-05       Impact factor: 3.222

Review 9.  Night-shift work increases morbidity of breast cancer and all-cause mortality: a meta-analysis of 16 prospective cohort studies.

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Review 10.  Sleep duration and mortality in the elderly: a systematic review with meta-analysis.

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2.  Excess brain age in the sleep electroencephalogram predicts reduced life expectancy.

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5.  Machine Learning in Aging Research.

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7.  Longitudinal Association Between Depressive Symptoms and Multidimensional Sleep Health: The SWAN Sleep Study.

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10.  Sleep, 24-h activity rhythms, and plasma markers of neurodegenerative disease.

Authors:  Thom S Lysen; M Arfan Ikram; Mohsen Ghanbari; Annemarie I Luik
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