Key result
Voluntary static arm exercise in tetraplegic subjects caused a blunted initial heart rate increase and a mean arterial blood pressure increase approximately one-third above the control response.
Why the study?
How does sympathetic decentralization in tetraplegic subjects alter cardiovascular adaptation during voluntary static arm exercise compared to normal subjects?
Observational (n=6)
How does sympathetic decentralization in tetraplegic subjects alter cardiovascular adaptation during voluntary static arm exercise compared to normal subjects?
Cardiovascular adaptation during voluntary static arm exercise in tetraplegic subjects is mainly accomplished by increasing cardiac output via vagally-controlled tachycardia, with absent peripheral vasoconstriction due to sympathetic decentralization.
Alerts clinicians to exaggerated pressor responses during arm exercise in tetraplegia; extends mechanistic insights into vagal compensation but remains hypothesis-generating.
The purpose of the present study was 1) to investigate whether an increase in heart rate (HR) at the onset of voluntary static arm exercise in tetraplegic subjects was similar to that of normal subjects and 2) to identify how the cardiovascular adaptation during static exercise was disturbed by sympathetic decentralization. Mean arterial blood pressure (MAP) and HR were noninvasively recorded during static arm exercise at 35% of maximal voluntary contraction in six tetraplegic subjects who had complete cervical spinal cord injury (C(6)-C(7)). Stroke volume (SV), cardiac output (CO), and total peripheral resistance (TPR) were estimated by using a Modelflow method simulating aortic input impedance from arterial blood pressure waveform. In tetraplegic subjects, the increase in HR at the onset of static exercise was blunted compared with age-matched control subjects, whereas the peak increase in HR at the end of exercise was similar between the two groups. CO increased during exercise with no or slight decrease in SV. MAP increased approximately one-third above the control pressor response but TPR did not rise at all throughout static exercise, indicating that the slight pressor response is determined by the increase in CO. We conclude that the cardiovascular adaptation during voluntary static arm exercise in tetraplegic subjects is mainly accomplished by increasing cardiac pump output according to the tachycardia, which is controlled by cardiac vagal outflow, and that sympathetic decentralization causes both absent peripheral vasoconstriction and a decreased capacity to increase HR, especially at the onset of exercise.
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Takahashi et al. (2004) conducted an observational in Tetraplegia (n=6). Voluntary static arm exercise vs. Age-matched control subjects was evaluated on Heart rate and mean arterial blood pressure response. Voluntary static arm exercise in tetraplegic subjects caused a blunted initial heart rate increase and a mean arterial blood pressure increase approximately one-third above the control response.
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