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.

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