Exertional heat stress and sodium balance: Leaders, followers, and adaptations

被引:5
|
作者
McCubbin, Alan J. [1 ]
机构
[1] Monash Univ, Dept Nutr Dietet & Food, Level 1,264 Ferntree Gully Rd, Notting Hill, Vic 3168, Australia
来源
AUTONOMIC NEUROSCIENCE-BASIC & CLINICAL | 2021年 / 235卷
关键词
Sweat; Salt; Endurance; Thermoregulation; Heat; EXERCISE-ASSOCIATED HYPONATREMIA; PREEXERCISE HYPERHYDRATION; MENSTRUAL-CYCLE; PLASMA SODIUM; FLUID BALANCE; SWEAT RATE; PERFORMANCE; ALDOSTERONE; WATER; SALT;
D O I
10.1016/j.autneu.2021.102863
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Exertional heat stress presents a different acute challenge to salt balance compared to at rest. Sodium (Na+) and chloride (Cl- ) losses during exercise are overwhelmingly driven by eccrine sweat glands (the "leader"), with minimal urinary excretion. Total salt losses are therefore largely influenced by thermoregulatory need, although adaptations from prior heat exposure or altered dietary intake influences sweat gland ion reabsorption, and therefore sweat Na+ ([Na+]sweat) and Cl- concentrations. The hypotheses that body Na+ and Cl- conservation, or their release from osmotically inactive stores, can occur during the timeframe of a single bout of exertional heat stress, has not been studied to date. The consequences of unreplaced Na+ and Cl- losses during exertional heat stress appear limited primarily to their interactions with water balance. However, the water volume ingested is substantially more influential than salt intake on total body water, plasma volume, osmolality, and thermoregulation during exercise. Acute salt and water loading 1-3 h prior to exercise can induce isosmotic hyperhydration in situations where this is deemed beneficial. During exercise, only scenarios of whole body [Na+]sweat > 75th centile, combined with fluid replacement >80% of losses, are likely to require significant replacement to prevent hyponatremia. Post-exercise, natriuresis resumes as the main regulator of salt losses, with the kidneys (the "follower") working to restore salt balance incurred from any exercise-induced deficit. If such a deficit exceeds usual dietary intake, and rapid restoration of hydration status is desirable, a deliberate increase in salt intake may assist in volume restoration.
引用
收藏
页数:8
相关论文
共 49 条
  • [31] Locally applied heat stress during exercise training may promote adaptations to mitochondrial enzyme activities in skeletal muscle
    Maunder, Ed
    King, Andrew
    Rothschild, Jeffrey A.
    Brick, Matthew J.
    Leigh, Warren B.
    Hedges, Christopher P.
    Merry, Troy L.
    Kilding, Andrew E.
    PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, 2024, 476 (06): : 939 - 948
  • [32] Phlorotannin Alleviates Liver Injury by Regulating Redox Balance, Apoptosis, and Ferroptosis of Broilers under Heat Stress
    Zhao, Zhong-Xiang
    Yuan, Yue-Ming
    Zhao, Zhi-Hui
    Yao, Qing-Hua
    Ye, Xue-Qing
    Wang, Yao-Yao
    Liu, Hui-Mei
    Jha, Rajesh
    Balasubramanian, Balamuralikrishnan
    Liu, Wen-Chao
    ANTIOXIDANTS, 2024, 13 (09)
  • [33] DAIRY COW THERMAL BALANCE MODEL DURING HEAT STRESS: PART 2. MODEL ASSESSMENT
    Janni, Kevin A.
    Nelson, Chad R.
    Heins, Bradley J.
    Sharpe, Kirsten
    JOURNAL OF THE ASABE, 2023, 66 (02): : 461 - 468
  • [34] Acute L-glutamine supplementation does not improve gastrointestinal permeability, injury or microbial translocation in response to exhaustive high intensity exertional-heat stress
    Ogden, Henry B.
    Fallowfield, Joanne L.
    Child, Robert B.
    Davison, Glen
    Fleming, Simon C.
    Delves, Simon K.
    Millyard, Alison
    Westwood, Caroline S.
    Layden, Joseph D.
    EUROPEAN JOURNAL OF SPORT SCIENCE, 2022, 22 (12) : 1865 - 1876
  • [35] Does biological sex impact intestinal epithelial injury, small intestine permeability, gastrointestinal symptoms and systemic cytokine profile in response to exertional-heat stress?
    Snipe, Rhiannon M. J.
    Costa, Ricardo J. S.
    JOURNAL OF SPORTS SCIENCES, 2018, 36 (24) : 2827 - 2835
  • [36] Elevations in sweat sodium concentration following ischemia-reperfusion injury during passive heat stress
    Hess, Hayden W.
    Baker, Tyler B.
    Keeler, Jason M.
    Freemas, Jessica A.
    Worley, Morgan L.
    Johnson, Blair D.
    Schlader, Zachary J.
    JOURNAL OF APPLIED PHYSIOLOGY, 2023, 134 (06) : 1364 - 1375
  • [37] Late-gestation heat stress in Holstein dams programs in utero development of daughter's germline, triggering skin and hair morphology adaptations of granddaughters
    Davidson, B. D.
    Gonzales, E. T.
    Mast, G. L.
    Laporta, J.
    JDS COMMUNICATIONS, 2024, 5 (01): : 83 - 88
  • [38] Influence of a sodium-saccharin sweetener on the rumen content and rumen epithelium microbiota in dairy cattle during heat stress
    Koester, Lucas R.
    Hayman, Kris
    Anderson, Chiron J.
    Tibbs-Cortes, Bienvenido W.
    Daniels, Karrie M.
    Seggerman, Faith M.
    Gorden, Patrick J.
    Lyte, Mark
    Schmitz-Esser, Stephan
    JOURNAL OF ANIMAL SCIENCE, 2023, 101
  • [39] Effects of water restriction after feeding during heat stress on nutrient digestibility, nitrogen balance, blood profile and characteristics in Corriedale ewes
    Nejad, J. Ghasserni
    Lohakare, J. D.
    West, J. W.
    Sung, K. I.
    ANIMAL FEED SCIENCE AND TECHNOLOGY, 2014, 193 : 1 - 8
  • [40] Impact of Heat Stress on the Balance between Oxidative Markers and the Antioxidant Defence System in the Plasma of Mid-Lactating Modicana Dairy Cows
    Alberghina, Daniela
    Amato, Annalisa
    Brancato, Giacoma
    Cavallo, Carmelo
    Liotta, Luigi
    Lopreiato, Vincenzo
    ANIMALS, 2024, 14 (14):