Effects of immersion water temperature on whole-body fluid distribution in humans

被引:44
|
作者
Stocks, JM
Patterson, MJ
Hyde, DE
Jenkins, AB
Mittleman, KD
Taylor, NAS [1 ]
机构
[1] Univ Wollongong, Dept Biomed Sci, Wollongong, NSW 2522, Australia
[2] USN, Expt Diving Unit, Panama City, FL USA
[3] DesignWrite, Princeton, NJ USA
来源
ACTA PHYSIOLOGICA SCANDINAVICA | 2004年 / 182卷 / 01期
关键词
atrial natriuretic peptide; body fluid regulation; cold-water immersion; intracellular fluid; plasma volume;
D O I
10.1111/j.1365-201X.2004.01302.x
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Aim: In this study, we quantified acute changes in the intracellular and extracellular fluid compartments during upright neutral- and cold-water immersion. We hypothesized that, during short-term cold immersion, fluid shifts would be wholly restricted to the extracellular space. Methods: Seven males were immersed 30 days apart: control (33.3 degrees SD 0.6 degreesC); and cold (18.1 degrees SD 0.3 degreesC). Posture was controlled for 4 h prior to a 60-min seated immersion. Results: Significant reductions in terminal oesophageal (36.9 degrees +/- 0.1 degrees-36.3 degrees +/- 0.1 degreesC) and mean skin temperatures (30.3 degrees +/- 0.3 degrees-23.0 degrees +/- 0.3 degreesC) were observed during the cold, but not the control immersion. Both immersions elicited a reduction in intracellular fluid [20.17 +/- 6.02 mL kg(-1) (control) vs. 22.72 +/- 9.90 mL kg(-1)], while total body water (TBW) remained stable. However, significant plasma volume (PV) divergence was apparent between the trials at 60 min [12.5 +/- 1.0% (control) vs. 6.1 +/- 3.1%; P < 0.05], along with a significant haemodilution in the control state (P < 0.05). Plasma atrial natriuretic peptide concentration increased from 18.0 +/- 1.6 to 58.7 +/- 15.1 ng L-1 (P < 0.05) during cold immersion, consistent with its role in PV regulation. We observed that, regardless of the direction of the PV change, both upright immersions elicited reductions in intracellular fluid. Conclusion: These observations have two implications. First, one cannot assume that PV changes reflect those of the entire extracellular compartment. Second, since immersion also increases interstitial fluid pressure, fluid leaving the interstitium must have been rapidly replaced by intracellular water.
引用
收藏
页码:3 / 10
页数:8
相关论文
共 50 条
  • [31] DEOXYCYTIDINE IN URINE OF HUMANS AFTER WHOLE-BODY IRRADIATION
    BERRY, HK
    SAENGER, EL
    PERRY, H
    KEREIAKES, JG
    FRIEDMAN, BI
    SCHEEL, C
    SCIENCE, 1963, 142 (359) : 396 - &
  • [32] DISPOSITION OF THIOPENTAL DURING WHOLE-BODY HYPERTHERMIA IN HUMANS
    DUBOIS, M
    CHATTERJI, DC
    GREENE, RF
    LEES, DE
    BULL, J
    SMITH, R
    YEAGER, R
    MACNAMARA, TE
    CLINICAL PHARMACOLOGY & THERAPEUTICS, 1981, 29 (02) : 241 - 242
  • [33] An fMRI dataset for whole-body somatotopic mapping in humans
    Sai Ma
    Taicheng Huang
    Yukun Qu
    Xiayu Chen
    Yajie Zhang
    Zonglei Zhen
    Scientific Data, 9
  • [34] An fMRI dataset for whole-body somatotopic mapping in humans
    Ma, Sai
    Huang, Taicheng
    Qu, Yukun
    Chen, Xiayu
    Zhang, Yajie
    Zhen, Zonglei
    SCIENTIFIC DATA, 2022, 9 (01)
  • [35] ELECTROENCEPHALOGRAPHIC CHANGES DURING WHOLE-BODY HYPERTHERMIA IN HUMANS
    DUBOIS, M
    SATO, S
    LEES, DE
    BULL, JM
    SMITH, R
    WHITE, BG
    MOORE, H
    MACNAMARA, TE
    ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1980, 50 (5-6): : 486 - 495
  • [36] EFFECTS OF WHOLE-BODY IRRADIATION ON THE AGE DISTRIBUTION OF SENILE CHANGES IN MICE
    UPTON, AC
    KIMBALL, AW
    RADIATION RESEARCH, 1960, 12 (04) : 482 - 482
  • [37] TEMPERATURE DISTRIBUTION DURING WHOLE-BODY HYPERTHERMIA (WBH) - EXPERIMENTAL STUDIES IN THE DOG
    HUGANDER, A
    ROBINS, HI
    MARTIN, P
    SCHMITT, C
    PAGE, R
    DEWHIRST, M
    STRAHLENTHERAPIE, 1985, 161 (09) : 537 - 537
  • [38] Effects of whole-body vibration on reproductive physiology in a rat model of whole-body vibration
    Krajnak, K.
    Waugh, S.
    Welcome, D.
    Xu, X. S.
    Warren, C.
    McKinney, W.
    Dong, R. G.
    JOURNAL OF TOXICOLOGY AND ENVIRONMENTAL HEALTH-PART A-CURRENT ISSUES, 2022, 85 (23): : 953 - 971
  • [39] Predicting Temperature Changes During Cold Water Immersion and Exercise Scenarios: Application of a Tissue-Blood Interactive Whole-Body Model
    Paul, Anup K.
    Zachariah, Swarup
    Zhu, Liang
    Banerjee, Rupak K.
    NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 2015, 68 (06) : 598 - 618
  • [40] TOTAL-BODY WATER AND WHOLE-BODY IMPEDANCE
    OBERLANDER, J
    CROSBY, L
    GIANDOMENICO, A
    STEIN, T
    MIKUTA, J
    MULLEN, J
    CLINICAL RESEARCH, 1980, 28 (03): : A621 - A621