A Pilot Characterization of the Human Chronobiome.
Carsten SkarkeNicholas F LahensSeth D RhoadesAmy CampbellKyle BittingerAubrey G BaileyChristopher HoffmannRandal S OlsonLihong ChenGuangrui YangThomas S PriceJason H MooreFrederic D BushmanCasey S GreeneGregory R GrantAalim M WeljieGarret A FitzGeraldPublished in: Scientific reports (2017)
Physiological function, disease expression and drug effects vary by time-of-day. Clock disruption in mice results in cardio-metabolic, immunological and neurological dysfunction; circadian misalignment using forced desynchrony increases cardiovascular risk factors in humans. Here we integrated data from remote sensors, physiological and multi-omics analyses to assess the feasibility of detecting time dependent signals - the chronobiome - despite the "noise" attributable to the behavioral differences of free-living human volunteers. The majority (62%) of sensor readouts showed time-specific variability including the expected variation in blood pressure, heart rate, and cortisol. While variance in the multi-omics is dominated by inter-individual differences, temporal patterns are evident in the metabolome (5.4% in plasma, 5.6% in saliva) and in several genera of the oral microbiome. This demonstrates, despite a small sample size and limited sampling, the feasibility of characterizing at scale the human chronobiome "in the wild". Such reference data at scale are a prerequisite to detect and mechanistically interpret discordant data derived from patients with temporal patterns of disease expression, to develop time-specific therapeutic strategies and to refine existing treatments.
Keyphrases
- heart rate
- blood pressure
- endothelial cells
- cardiovascular risk factors
- poor prognosis
- induced pluripotent stem cells
- electronic health record
- big data
- pluripotent stem cells
- heart rate variability
- single cell
- cardiovascular disease
- metabolic syndrome
- oxidative stress
- type diabetes
- air pollution
- binding protein
- study protocol
- hypertensive patients
- insulin resistance
- artificial intelligence
- genetic diversity
- brain injury
- weight loss
- double blind