The effects of exercise and training on human cardiovascular reflex control

被引:71
|
作者
O'Sullivan, SE [1 ]
Bell, C [1 ]
机构
[1] Univ Dublin Trinity Coll, Dept Physiol, Dublin 2, Ireland
来源
关键词
heart rate; vagus; sympathetic; baroreflex; training; exercise; blood pressure; hypertension;
D O I
10.1016/S0165-1838(00)00148-X
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
During physical activity, there is a graded withdrawal of vagal cardiac tone and a graded increase in sympathetic cardiac and vasomotor tone, initiated through both central command from the somatic motor cortex and muscle chemoreceptive and mechanoreceptive inputs. Tn parallel, there is an upward resetting of the operating point of the arterial baroflex, with preserved reflex sensitivity. In contrast to the traditional interpretation that blood Row through exercising muscle is independent of vasomotor neural influences because of the dominance of local dilator metabolites, recent evidence suggests that both constrictor and dilator sympathetic neural influences may be involved in determining absolute levels of perfusion. Post-exercise, there is a period of relative hypotension that is associated with decreased peripheral resistance. Some. but not all, evidence indicates a causal role for reduced sympathetic drive. Chronic exercise training appears to reduce resting sympathetic activity, with parallel changes in the gain of a variety of cardiovascular autonomic reflexes initiated from cardiovascular sites. These changes may be attributable at least partly to masking of arterial baroreflexes by the impact of elevated blood volume on low-pressure baroreceptors. The reductions in sympathetic drive that follow training are more pronounced in patients with essential hypertension than in normotensive individuals and are likely to underlie the anti-hypertensive effect of exercise. (C) 2000 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:16 / 24
页数:9
相关论文
共 50 条
  • [1] Autonomic cardiovascular reflex control of hemodynamics during exercise in heart failure with reduced ejection fraction and the effects of exercise training
    Boyes, Natasha G.
    Marciniuk, Darcy D.
    Haddad, Haissam
    Tomczak, Corey R.
    [J]. REVIEWS IN CARDIOVASCULAR MEDICINE, 2022, 23 (02)
  • [2] Effects of exercise training on baroreflex control of the cardiovascular system
    Krieger, EM
    Da Silva, GJJ
    Negrao, CE
    [J]. NEURO-CARDIOVASCULAR REGULATION: FROM MOLECULES TO MAN, 2001, 940 : 338 - 347
  • [3] Reflex control of the cardiovascular system during exercise in disease
    Vianna, Lauro C.
    Fisher, James P.
    [J]. CURRENT OPINION IN PHYSIOLOGY, 2019, 10 : 110 - 117
  • [4] Effects of training with flow restriction on the exercise pressor reflex
    Patrik Sundblad
    Roger Kölegård
    Eric Rullman
    Thomas Gustafsson
    [J]. European Journal of Applied Physiology, 2018, 118 : 1903 - 1909
  • [5] Effects of training with flow restriction on the exercise pressor reflex
    Sundblad, Patrik
    Kolegard, Roger
    Rullman, Eric
    Gustafsson, Thomas
    [J]. EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY, 2018, 118 (09) : 1903 - 1909
  • [6] REFLEX CONTROL OF THE HUMAN CARDIOVASCULAR-SYSTEM
    SHEPHERD, JT
    MANCIA, G
    [J]. REVIEWS OF PHYSIOLOGY BIOCHEMISTRY AND PHARMACOLOGY, 1986, 105 : 1 - 99
  • [7] CARDIOVASCULAR CONTROL DURING EXERCISE - CENTRAL AND REFLEX NEURAL MECHANISMS
    MITCHELL, JH
    [J]. AMERICAN JOURNAL OF CARDIOLOGY, 1985, 55 (10): : D34 - D41
  • [8] Effects of exercise training on cardiovascular adrenergic system
    Leosco, Dario
    Parisi, Valentina
    Femminella, Grazia D.
    Formisano, Roberto
    Petraglia, Laura
    Allocca, Elena
    Bonaduce, Domenico
    [J]. FRONTIERS IN PHYSIOLOGY, 2013, 4
  • [9] Cardiovascular Effects of Exercise Training Molecular Mechanisms
    Gielen, Stephan
    Schuler, Gerhard
    Adams, Volker
    [J]. CIRCULATION, 2010, 122 (12) : 1221 - 1238
  • [10] Forebrain neurocircuitry associated with human reflex cardiovascular control
    Shoemaker, J. Kevin
    Goswami, Ruma
    [J]. FRONTIERS IN PHYSIOLOGY, 2015, 6