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The Neurobiological Mechanisms of Photoperiod Impact on Brain Functions: A Comprehensive Review Publisher Pubmed



Halabian A1 ; Radahmadi M2
Authors
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Authors Affiliations
  1. 1. Department of Physiology and Pharmacology, Schulich School of Medicine and Dentistry, The University of Western, Ontario, London, N6A 3K7, ON, Canada
  2. 2. Department of Physiology, School of Medicine, Isfahan University of Medical Sciences, Isfahan, 81746-73461, Iran

Source: Reviews in the Neurosciences Published:2024


Abstract

Variations in day length, or photoperiodism, whether natural or artificial light, significantly impact biological, physiological, and behavioral processes within the brain. Both natural and artificial light sources are environmental factors that significantly influence brain functions and mental well-being. Photoperiodism is a phenomenon, occurring either over a 24h cycle or seasonally and denotes all biological responses of humans and animals to these fluctuations in day and night length. Conversely, artificial light occurrence refers to the presence of light during nighttime hours and/or its absence during the daytime (unnaturally long and short days, respectively). Light at night, which is a form of light pollution, is prevalent in many societies, especially common in certain emergency occupations. Moreover, individuals with certain mental disorders, such as depression, often exhibit a preference for darkness over daytime light. Nevertheless, disturbances in light patterns can have negative consequences, impacting brain performance through similar mechanisms albeit with varying degrees of severity. Furthermore, changes in day length lead to alterations in the activity of receptors, proteins, ion channels, and molecular signaling pathways, all of which can impact brain health. This review aims to summarize the mechanisms by which day length influences brain functions through neural circuits, hormonal systems, neurochemical processes, cellular activity, and even molecular signaling pathways. © 2024 Walter de Gruyter GmbH, Berlin/Boston.