Regulation of Sympathetic Nervous System Function after Cardiovascular Deconditioning

Регуляция функции симпатической нервной системы после сердечно-сосудистой детренированности
Eileen M. Hasser, Julia A. Moffitt
2001-06-01

arterial baroreflexcardiovascular deconditioninghindlimb-unloaded ratrostral ventrolateral medullasympathetic nervous system
Humans subjected to prolonged periods of bed rest or microgravity undergo deconditioning of the cardiovascular system, characterized by resting tachycardia, reduced exercise capability, and a predisposition for orthostatic intolerance. These changes in cardiovascular function are likely due to a combination of factors, including changes in control of body fluid balance or cardiac alterations resulting in inadequate maintenance of stroke volume, altered arterial or venous vascular function, reduced activation of cardiovascular hormones, and diminished autonomic reflex function. There is evidence indicating a role for each of these mechanisms. Diminished reflex activation of the sympathetic nervous system and subsequent vasoconstriction appear to play an important role. Studies utilizing the hindlimb-unloaded (HU) rat, an animal model of deconditioning, evaluated the potential role of altered arterial baroreflex control of the sympathetic nervous system. These studies indicate that HU results in blunted baroreflex-mediated activation of both renal and lumbar sympathetic nerve activity in response to a hypotensive stimulus. HU rats are less able to maintain arterial pressure during hemorrhage, suggesting that diminished ability to increase sympathetic activity has functional consequences for the animal. Reflex control of vasopressin secretion appears to be enhanced following HU. Blunted baroreflex-mediated sympathoexcitation appears to involve altered central nervous system function. Baroreceptor afferent activity in response to changes in arterial pressure is unaltered in HU rats. However, increases in efferent sympathetic nerve activity for a given decrease in afferent input are blunted after HU. This altered central nervous system processing of baroreceptor inputs appears to involve an effect at the rostral ventrolateral medulla (RVLM). Specifically, it appears that tonic GABAA-mediated inhibition of the RVLM is enhanced after HU. Augmented inhibition apparently arises from sources other than the caudal ventrolateral medulla. If similar alterations in control of the sympathetic nervous system occur in humans in response to cardiovascular deconditioning, it is likely that they play an important role in the observed tendency for orthostatic intolerance. Combined with potential changes in vascular function, cardiac function, and hypovolemia, the predisposition for orthostatic intolerance following cardiovascular deconditioning would be markedly enhanced by blunted ability to reflexly activate the sympathetic nervous system.
1
Baroreceptor afferent responses remain intact after unloading, but central processing produces weaker sympathetic efferent responses to equivalent decreases in afferent input.
2
Cardiovascular deconditioning causes resting tachycardia, reduced exercise capacity, and increased susceptibility to orthostatic intolerance through multiple interacting mechanisms.
3
Enhanced tonic GABAA-mediated inhibition of the rostral ventrolateral medulla appears to contribute to impaired baroreflex sympathoexcitation after deconditioning.
4
Hindlimb-unloaded rats exhibit blunted baroreflex-mediated activation of renal and lumbar sympathetic nerve activity during hypotension.
5
Reduced sympathetic activation impairs arterial pressure maintenance during hemorrhage, demonstrating functional consequences of attenuated sympathoexcitation.
6
Reflex control of vasopressin secretion is enhanced after hindlimb unloading, indicating divergent adaptation of neurohumoral responses.

Cardiovascular deconditioning and its regulation of sympathetic nervous system function, primarily in hindlimb-unloaded (HU) rats

Blunted arterial baroreflex-mediated sympathoexcitation and vasoconstriction, including altered central processing at the rostral ventrolateral medulla (RVLM), and its consequences for arterial pressure maintenance and orthostatic intolerance

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2001-06-01
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Eileen M. Hasser
Julia A. Moffitt
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