Please use this identifier to cite or link to this item: http://bura.brunel.ac.uk/handle/2438/24020
Title: Physiological function during exercise and environmental stress in humans: An integrative view of body systems and homeostasis
Authors: Travers, G
Kippelen, P
Trangmar, S
González-Alonso, J
Keywords: dehydration;hyperthermia;brain;lungs;heart;muscles
Issue Date: 24-Jan-2022
Publisher: MDPI AG
Citation: Travers, G., Kippelen, P., Trangmar, S. J. and González-Alonso, J. (2022) ‘Physiological Function during Exercise and Environmental Stress in Humans—An Integrative View of Body Systems and Homeostasis’, Cells, 11 (383), pp. 1 - 36 (36). doi: 10.3390/cells11030383.
Abstract: Copyright: © 2022 by the authors. Claude Bernard’s milieu intérieur (internal environment) and the associated concept of homeostasis are fundamental to the understanding of the physiological responses to exercise and environmental stress. Maintenance of cellular homeostasis is thought to happen during exercise through the precise matching of cellular energetic demand and supply, and the production and clearance of metabolic by-products. The mind-boggling number of molecular and cellular pathways and the host of tissues and organ systems involved in the processes sustaining locomotion, however, necessitate an integrative examination of the body’s physiological systems. This integrative approach can be used to identify whether function and cellular homeostasis are maintained or compromised during exercise. In this review, we discuss the responses of the human brain, the lungs, the heart, and the skeletal muscles to the varying physiological demands of exercise and environmental stress. Multiple alterations in physiological function and differential homeostatic adjustments occur when people undertake strenuous exercise with and without thermal stress. These adjustments can include: hyperthermia; hyperventilation; cardiovascular strain with restrictions in brain, muscle, skin and visceral organs blood flow; greater reliance on muscle glycogen and cellular metabolism; alterations in neural activity; and, in some conditions, compromised muscle metabolism and aerobic capacity. Oxygen supply to the human brain is also blunted during intense exercise, but global cerebral metabolism and central neural drive are preserved or enhanced. In contrast to the strain seen during severe exercise and environmental stress, a steady state is maintained when humans exercise at intensities and in environmental conditions that require a small fraction of the functional capacity. The impact of exercise and environmental stress upon whole-body functions and homeostasis therefore depends on the functional needs and differs across organ systems.
URI: https://bura.brunel.ac.uk/handle/2438/24020
DOI: https://doi.org/10.3390/cells11030383
Other Identifiers: 383
Appears in Collections:Brunel OA Publishing Fund
Dept of Life Sciences Research Papers

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