Cardiovascular response to lower body negative pressure stimulation before, during, and after space flight

被引:28
|
作者
Baisch, F [1 ]
Beck, L
Blomqvist, G
Wolfram, G
Drescher, J
Rome, JL
Drummer, C
机构
[1] Deutsch Zentrum Luft & Raumfahrt, Inst Luft & Raumfahrtmed, D-51140 Cologne, Germany
[2] Rhein Westfal TH Aachen, Inst Flugmed, D-5100 Aachen, Germany
[3] Univ Texas, SW Med Ctr, Dept Internal Med & Physiol, Div Cardiol, Dallas, TX USA
关键词
hypovolemia; LBNP; orthostatic intolerance; sympathetic activity;
D O I
10.1046/j.1365-2362.2000.00750.x
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background It is well known that space travel cause post-flight orthostatic hypotension and it was assumed that autonomic cardiovascular control deteriorates in space. Lower body negative pressure (LBNP) was used to asses autonomic function of the cardiovascular system. Methods LBNP tests were performed on six crew-members before and on the first days post-flight in a series of three space missions. Additionally, two of the subjects performed LBNP tests in-flight. LBNP mimics fluid distribution of upright posture in a gravity independent way. It causes an artificial sequestration of blood, reduces preload, and filtrates plasma into the lower part of the body. Fluid distribution was assessed by bioelectrical impedance and anthropometric measurements. Results Heart rate, blood pressure, and total peripheral resistance increased significantly during LBNP experiments in-flight. The decrease in stroke volume, the increased pooling of blood, and the increased filtration of plasma into the lower limbs during LBNP indicated that a plasma volume reduction and a deficit of the interstitial volume of lower limbs rather than a change in cardiovascular control was responsible for the in-flight response. Post-flight LBNP showed no signs of cardiovascular deterioration. The still more pronounced haemodynamic changes during LBNP reflected the expected behaviour of cardiovascular control faced with less intravascular volume. In-flight, the status of an intra-and extravascular fluid deficit increases sympathetic activity, the release of vasoactive substances and consequently blood pressure. Post-flight, blood pressure decreases significantly below pre-flight values after restoration of volume deficits. Conclusion We conclude that the cardiovascular changes in-flight are a consequence of a fluid deficit rather than a consequence of changes in autonomic signal processing.
引用
收藏
页码:1055 / 1065
页数:11
相关论文
共 50 条
  • [31] Neurohormonal responses to oscillatory lower body negative pressure in healthy subjects
    Singh, Akanksha
    Srivastav, Shival
    Yadav, Kavita
    Chandran, Dinu S.
    Jaryal, Ashok Kumar
    Deepak, K. K.
    ACTA ASTRONAUTICA, 2021, 186 (186) : 396 - 402
  • [32] Autonomic control mechanism of maximal lower body negative pressure application
    Selvaraj, Nandakumar
    Shelley, Kirk H.
    Silverman, David G.
    Stachenfeld, Nina
    Chon, Ki H.
    2012 ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY (EMBC), 2012, : 3120 - 3123
  • [33] Heart rate variability during simulated hemorrhage with lower body negative pressure in high and low tolerant subjects
    Hinojosa-Laborde, Carmen
    Rickards, Caroline A.
    Ryan, Kathy L.
    Convertino, Victor A.
    FRONTIERS IN PHYSIOLOGY, 2011, 2
  • [34] Cerebral blood velocity regulation during progressive blood loss compared with lower body negative pressure in humans
    Rickards, Caroline A.
    Johnson, Blair D.
    Harvey, Ronee E.
    Convertino, Victor A.
    Joyner, Michael J.
    Barnes, Jill N.
    JOURNAL OF APPLIED PHYSIOLOGY, 2015, 119 (06) : 677 - 685
  • [35] Computational model of cardiovascular response to centrifugation and lower body cycling exercise
    Diaz-Artiles, Ana
    Heldt, Thomas
    Young, Laurence R.
    JOURNAL OF APPLIED PHYSIOLOGY, 2019, 127 (05) : 1453 - 1468
  • [36] Circulatory responses to lower body negative pressure in young Afghans and Danes: implications for understanding ethnic effects on blood pressure regulation
    Asmar, Ali
    Bulow, Jens
    Simonsen, Lene
    Rasmussen, Jonas G.
    Christensen, Niels J.
    Frandsen, Erik
    Norsk, Peter
    EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY, 2014, 114 (11) : 2321 - 2329
  • [37] Moderate sodium restriction does not alter lower body negative pressure tolerance
    Davrath, LR
    Gotshall, RW
    Tucker, A
    Sadeh, WZ
    Luckasen, GJ
    Downes, TR
    Coonts, CC
    AVIATION SPACE AND ENVIRONMENTAL MEDICINE, 1999, 70 (06): : 577 - 582
  • [38] QUANTIFICATION OF TOLERANCE TO LOWER-BODY NEGATIVE-PRESSURE IN A HEALTHY POPULATION
    LIGHTFOOT, JT
    TSINTGIRAS, KM
    MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 1995, 27 (05): : 697 - 706
  • [39] Assessment of changes in blood volume during lower body negative pressure-induced hypovolemia using bioelectrical impedance analysis
    Anakmeteeprugsa, Suthawan
    Gonzalez-Fiol, Antonio
    Vychodil, Rostislav
    Shelley, Kirk
    Alian, Aymen
    JOURNAL OF CLINICAL MONITORING AND COMPUTING, 2024, 38 (02) : 293 - 299
  • [40] Effects of ANF infusion on the renal responses to lower-body negative pressure in humans
    Mauran, P
    Pham, I
    Sediame, S
    Jolly, T
    Chabrier, PE
    Carayon, A
    Andrivet, P
    Adnot, S
    JOURNAL OF CARDIOVASCULAR PHARMACOLOGY, 1998, 31 (05) : 669 - 676