Evening Light Intensity and Phase Delay of the Circadian Clock in Early Childhood

Lauren E Hartstein1, Cecilia Diniz Behn2,3, Kenneth P Wright1

  • 1Department of Integrative Physiology, University of Colorado Boulder, Boulder, Colorado.

Insights

Evening light exposure significantly delays circadian timing in young children, impacting sleep. This suggests home lighting may contribute to childhood sleep problems.

Area of Science:

  • Chronobiology
  • Pediatric Sleep Science
  • Environmental Light Exposure

Background:

  • Late sleep timing in early childhood is linked to adverse behavioral and health outcomes.
  • Circadian clock phase influences sleep timing, with later phases associated with delayed sleep onset.
  • Light is a primary cue for circadian timing, but its effect on children's circadian phase is not well understood.

Purpose of the Study:

  • To investigate the intensity-dependent circadian phase-shifting response to evening light in young children.
  • To determine if evening light exposure affects the dim-light melatonin onset (DLMO) in children aged 3.0 to 4.9 years.

Main Methods:

  • A 10-day in-home study with 33 healthy children (3.0-4.9 years old) involving a stable sleep schedule.
  • Circadian assessment using dim-light conditions and salivary melatonin collection to determine DLMO.
  • A 1-hour light stimulus administered before bedtime on Day 9, with varying light intensities (5-5000 lux).

Main Results:

  • Children exhibited significant circadian phase delays (average 56.1 min) across all tested light intensities, with high variability.
  • No direct relationship was found between light intensity and the magnitude of the phase shift.
  • Greater melatonin suppression during light exposure correlated with larger phase delays (r = -0.73, p < 0.01).

Conclusions:

  • Young children can show significant circadian phase delays in response to evening light exposure.
  • Individual sensitivity to light's phase-shifting effects varies considerably among children.
  • Home lighting environments may influence circadian timing and contribute to pediatric sleep difficulties.

Related Concept Videos

Circadian Rhythms and Gene Regulation02:19

Circadian Rhythms and Gene Regulation

The biological clock is involved in many aspects of regulating complex physiology in all animals. It was in 1935 when German zoologists, Hans Kalmus and Erwin Bünning, discovered the existence of circadian rhythm in Drosophila melanogaster. However, the internal molecular mechanisms behind the circadian clock remained a mystery until 1984, when Jeffrey C. Hall, Michael Rosbash, and Michael W. Young discovered the expression of the Per gene oscillating over a 24-hour cycle. In subsequent...
4.1K
Biological Clocks and Seasonal Responses02:45

Biological Clocks and Seasonal Responses

The circadian—or biological—clock is an intrinsic, timekeeping, molecular mechanism that allows plants to coordinate physiological activities over 24-hour cycles called circadian rhythms. Photoperiodism is a collective term for the biological responses of plants to variations in the relative lengths of dark and light periods. The period of light-exposure is called the photoperiod.
34.9K
Chronopharmacokinetics: Circadian Rhythms and Influence on Drug Response01:15

Chronopharmacokinetics: Circadian Rhythms and Influence on Drug Response

Circadian rhythms are cyclic changes that are crucial in plasma drug concentrations. Various standard circadian parameters, including core body temperature, heart rate, and other cardiovascular factors, directly impact disease states and the therapeutic response to drug therapy.
The time of drug administration is an important factor to consider, as it can influence the toxic dose of a drug. For example, a study conducted by Prins et al. in 1997 examined the effects of the timing of...
105
Time and frequency -Domain Interpretation of Phase-lead Control01:24

Time and frequency -Domain Interpretation of Phase-lead Control

Phase-lead controllers are commonly used in various control systems to enhance response speed and stability. Adjusting the brightness on a television screen offers a practical example of phase-lead control. When contrast is enhanced, a phase-lead controller is employed. Mathematically, phase-lead control is identified when the first parameter is smaller than the second.
The design of phase-lead control involves the strategic placement of poles and zeros to balance steady-state error and system...
124
Stages of Sleep01:22

Stages of Sleep

Sleep progresses through distinct stages, each characterized by specific brain wave patterns and physiological responses ranging from wakefulness to stages of non-rapid eye movement, known as non-REM, to rapid eye movement, referred to as REM. Understanding these stages helps in recognizing how sleep supports various bodily and cognitive functions.
Before sleep begins, in wakefulness, the brain exhibits primarily beta waves, which are high in frequency and low in amplitude, indicating alertness...
423
Time and frequency -Domain Interpretation of Phase-lag Control01:21

Time and frequency -Domain Interpretation of Phase-lag Control

Phase-lag controllers are widely used in control systems to improve stability and reduce steady-state errors. A dimmer switch controlling the brightness of a light bulb serves as a practical example of phase-lag control, gradually adjusting the bulb's brightness. Mathematically, phase-lag control or low-pass filtering is represented when the factor 'a' is less than 1.
Phase-lag controllers do not place a pole at zero, but instead influence the steady-state error by amplifying any...
139