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Comparison of aortic and carotid baroreflex stimulus-response characteristics in humans
S A Smith1, R G Querry, P J Fadel
1Department of Integrative Physiology, University of North Texas Health Science Center, Fort Worth 76107, USA. scott.smith@utsouthwestern.edu
Insights
The arterial, aortic, and carotid baroreflexes control heart rate similarly across a shared range of blood pressures, acting as vital anti-hypotensive and anti-hypertensive mechanisms in healthy individuals.
Area of Science:
- Cardiovascular Physiology
- Autonomic Nervous System Regulation
Background:
- Baroreflexes are crucial for maintaining blood pressure homeostasis.
- Understanding the distinct and overlapping roles of arterial, aortic, and carotid baroreflexes is essential for comprehending cardiovascular control.
Purpose of the Study:
- To characterize the stimulus-response relationships of arterial, aortic, and carotid baroreflexes in mediating cardiac chronotropic function.
- To determine if these baroreflexes operate within similar arterial pressure ranges.
Main Methods:
- Measured heart rate responses to acute changes in mean arterial pressure (MAP) and carotid sinus pressure (CSP) in 11 healthy individuals.
- Utilized pharmacological agents (phenylephrine, sodium nitroprusside) and neck pressure/suction to isolate and assess aortic and carotid baroreflexes.
- Quantified baroreflex control of heart rate using logistic function analysis of stimulus-response curves.
Main Results:
- No significant differences were found in the arterial pressures at which threshold and saturation occurred for the arterial, aortic, and carotid baroreflexes.
- The threshold pressures were approximately 72 mmHg for arterial and carotid, and 67 mmHg for aortic.
- Saturation occurred around 98-102 mmHg for all baroreflexes studied.
Conclusions:
- The baroreceptor populations studied operate over the same range of arterial pressures.
- Each baroreflex functions as an important anti-hypotensive and anti-hypertensive mechanism.
- A model of aortic baroreflex function in healthy humans is presented, potentially aiding in identifying baroreflex dysfunction.
Abstract:
In order to characterize the stimulus-response relationships of the arterial, aortic, and carotid baroreflexes in mediating cardiac chronotropic function, we measured heart rate (HR) responses elicited by acute changes in mean arterial pressure (MAP) and carotid sinus pressure (CSP) in 11 healthy individuals. Arterial (aortic + carotid) baroreflex control of HR was quantified using ramped changes in MAP induced by bolus injection of phenylephrine (PE) and sodium nitroprusside (SN). To assess aortic-cardiac responses, neck pressure (NP) and suction (NS) were applied during PE and SN administration, respectively, to counter alterations in CSP thereby isolating the aortic baroreflex. Graded levels of NP and NS were delivered to the carotid sinus using a customized neck collar device to assess the carotid-cardiac baroreflex, independent of drug infusion. The operating characteristics of each reflex were determined from the logistic function of the elicited HR response to the induced change in MAP. The arterial pressures at which the threshold was located on the stimulus-response curves determined for the arterial, aortic and carotid baroreflexes were not significantly different (72+/-4, 67+/-3, and 72+/-4 mm Hg, respectively, P > 0.05). Similarly, the MAP at which the saturation of the reflex responses were elicited did not differ among the baroreflex arcs examined (98+/-3, 99+/-2, and 102+/-3 mm Hg, respectively). These data suggest that the baroreceptor populations studied operate over the same range of arterial pressures. This finding indicates each baroreflex functions as both an important anti-hypotensive and anti-hypertensive mechanism. In addition, this investigation describes a model of aortic baroreflex function in normal healthy humans, which may prove useful in identifying the origin of baroreflex dysfunction in disease- and training-induced conditions.
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