Heat acclimatisation blunts copeptin responses to hypertonicity from dehydrating exercise in humans
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Author(s)
Type
Journal Article
Abstract
Physiological Reports Volume 6, Issue 18
Original Research Open Access
Heat acclimatization blunts copeptin responses to hypertonicity from dehydrating exercise in humans
Michael J. Stacey David R. Woods Stephen J. Brett Sophie E. Britland Joanne L. Fallowfield Adrian J. Allsopp Simon K. Delves
First published: 17 September 2018
https://doi.org/10.14814/phy2.13851
Funding InformationThis work was supported by the National Institute for Health Research (NIHR) Comprehensive Biomedical Research Centre at Imperial College Healthcare NHS Trust and Imperial College London.
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Abstract
Acclimatization favors greater extracellular tonicity from lower sweat sodium, yet hyperosmolality may impair thermoregulation during heat stress. Enhanced secretion or action of vasopressin could mitigate this through increased free water retention. Aims were to determine responses of the vasopressin surrogate copeptin to dehydrating exercise and investigate its relationships with tonicity during short and long‐term acclimatization. Twenty‐three participants completed a structured exercise programme following arrival from a temperate to a hot climate. A Heat Tolerance Test (HTT) was conducted on Day‐2, 6, 9 and 23, consisting of 60‐min block‐stepping at 50% VO2peak, with no fluid intake. Resting sweat [Na+] was measured by iontophoresis. Changes in body mass (sweat loss), core temperature, heart rate, osmolality (serum and urine) and copeptin and aldosterone (plasma) were measured with each Test. From Day 2 to Day 23, sweat [Na+] decreased significantly (adjusted P < 0.05) and core temperature and heart rate fell. Over the same interval, HTT‐associated excursions were increased for serum osmolality (5 [−1, 9] vs. 9 [5, 12] mosm·kg−1), did not differ for copeptin (9.6 [6.0, 15.0] vs. 7.9 [4.3, 14.7] pmol·L−1) and were reduced for aldosterone (602 [415, 946] vs. 347 [263, 537] pmol·L−1). Urine osmolality was unchanging and related consistently to copeptin at end‐exercise, whereas the association between copeptin and serum osmolality was right‐shifted (P = 0.0109) with acclimatization. Unchanging urine:serum osmolality argued against increased renal action of vasopressin. In conclusion, where exercise in the heat is performed without fluid replacement, heat acclimatization does not appear to enhance AVP‐mediated free water retention in humans.
Original Research Open Access
Heat acclimatization blunts copeptin responses to hypertonicity from dehydrating exercise in humans
Michael J. Stacey David R. Woods Stephen J. Brett Sophie E. Britland Joanne L. Fallowfield Adrian J. Allsopp Simon K. Delves
First published: 17 September 2018
https://doi.org/10.14814/phy2.13851
Funding InformationThis work was supported by the National Institute for Health Research (NIHR) Comprehensive Biomedical Research Centre at Imperial College Healthcare NHS Trust and Imperial College London.
About
Sections
Abstract
Acclimatization favors greater extracellular tonicity from lower sweat sodium, yet hyperosmolality may impair thermoregulation during heat stress. Enhanced secretion or action of vasopressin could mitigate this through increased free water retention. Aims were to determine responses of the vasopressin surrogate copeptin to dehydrating exercise and investigate its relationships with tonicity during short and long‐term acclimatization. Twenty‐three participants completed a structured exercise programme following arrival from a temperate to a hot climate. A Heat Tolerance Test (HTT) was conducted on Day‐2, 6, 9 and 23, consisting of 60‐min block‐stepping at 50% VO2peak, with no fluid intake. Resting sweat [Na+] was measured by iontophoresis. Changes in body mass (sweat loss), core temperature, heart rate, osmolality (serum and urine) and copeptin and aldosterone (plasma) were measured with each Test. From Day 2 to Day 23, sweat [Na+] decreased significantly (adjusted P < 0.05) and core temperature and heart rate fell. Over the same interval, HTT‐associated excursions were increased for serum osmolality (5 [−1, 9] vs. 9 [5, 12] mosm·kg−1), did not differ for copeptin (9.6 [6.0, 15.0] vs. 7.9 [4.3, 14.7] pmol·L−1) and were reduced for aldosterone (602 [415, 946] vs. 347 [263, 537] pmol·L−1). Urine osmolality was unchanging and related consistently to copeptin at end‐exercise, whereas the association between copeptin and serum osmolality was right‐shifted (P = 0.0109) with acclimatization. Unchanging urine:serum osmolality argued against increased renal action of vasopressin. In conclusion, where exercise in the heat is performed without fluid replacement, heat acclimatization does not appear to enhance AVP‐mediated free water retention in humans.
Date Issued
2018-09-17
Date Acceptance
2018-08-10
Citation
Physiological Reports, 2018, 6 (18)
ISSN
2051-817X
Publisher
Wiley
Journal / Book Title
Physiological Reports
Volume
6
Issue
18
Copyright Statement
a 2018 Crown copyright. Physiological Reports a 2018 published by Wiley Periodicals, Inc. on behalf of The Physiological Society and the American Physiological Society. This article is published with the permission of the Controller of HMSO and the Queen’s Printer for Scotland.
Sponsor
Society for Endocrinology
Subjects
Science & Technology
Life Sciences & Biomedicine
Physiology
Aldosterone
arginine vasopressin
iontophoresis
nanoduct
THERMOREGULATORY RESPONSES
CUTANEOUS VASODILATION
VASOPRESSIN SECRETION
PLASMA-ALDOSTERONE
RENIN-ACTIVITY
WATER-BALANCE
BLOOD-FLOW
OSMOLALITY
THIRST
VOLUME
Publication Status
Published