» Articles » PMID: 12766246

Static and Dynamic Changes in Carotid Artery Diameter in Humans During and After Strenuous Exercise

Overview
Journal J Physiol
Specialty Physiology
Date 2003 May 27
PMID 12766246
Citations 18
Authors
Affiliations
Soon will be listed here.
Abstract

Arterial baroreflex function is altered by dynamic exercise, but it is not clear to what extent baroreflex changes are due to altered transduction of pressure into deformation of the barosensory vessel wall. In this study we measured changes in mean common carotid artery diameter and the pulsatile pressure : diameter ratio (PDR) during and after dynamic exercise. Ten young, healthy subjects performed a graded exercise protocol to exhaustion on a bicycle ergometer. Carotid dimensions were measured with an ultrasound wall-tracking system; central arterial pressure was measured with the use of radial tonometry and the generalized transfer function; baroreflex sensitivity (BRS) was assessed in the post-exercise period by spectral analysis and the sequence method. Data are given as means +/- S.E.M. Mean carotid artery diameter increased during exercise as compared with control levels, but carotid distension amplitude did not change. PDR was reduced from 27.3+/-2.7 to 13.7+/-1.0 microm mmHg(-1). Immediately after stopping exercise, the carotid artery constricted and PDR remained reduced. At 60 min post-exercise, the carotid artery dilated and the PDR increased above control levels (33.9+/-1.4 microm mmHg(-1)). The post-exercise changes in PDR were closely paralleled by those in BRS (0.74< or = r < or =0.83, P<0.05). These changes in mean carotid diameter and PDR suggest that the mean baroreceptor activity level increases during exercise, with reduced dynamic sensitivity; at the end of exercise baroreceptors are suddenly unloaded, then at 1 h post-exercise, baroreceptor activity increases again with increasing dynamic sensitivity. The close correlation between PDR and BRS observed at post-exercise underlies the significance of mechanical factors in arterial baroreflex control.

Citing Articles

Effects of Aerobic vs. Resistance Exercise on Vascular Function and Vascular Endothelial Growth Factor in Older Women.

Kim H, Seo M, Jung H Healthcare (Basel). 2023; 11(18).

PMID: 37761675 PMC: 10530817. DOI: 10.3390/healthcare11182479.


An analytical method informed by clinical imaging data for estimating outlet boundary conditions in computational fluid dynamics analysis of carotid artery blood flow.

Kizhisseri M, Gharaie S, Schluter J Sci Rep. 2023; 13(1):14973.

PMID: 37696859 PMC: 10495450. DOI: 10.1038/s41598-023-42004-5.


Concurrent exercise training induces additional benefits to hydrochlorothiazide: Evidence for an improvement of autonomic control and oxidative stress in a model of hypertension and postmenopause.

Ferreira M, Dos Santos Ferreira Silva M, Dias D, Bernardes N, Irigoyen M, De Angelis K PLoS One. 2023; 18(8):e0289715.

PMID: 37549182 PMC: 10406179. DOI: 10.1371/journal.pone.0289715.


On the identification of hypoxic regions in subject-specific cerebral vasculature by combined CFD/MRI.

Perinajova R, van Ooij P, Kenjeres S R Soc Open Sci. 2023; 10(1):220645.

PMID: 36636311 PMC: 9810418. DOI: 10.1098/rsos.220645.


Acute circulatory and femoral hemodynamic responses induced by standing core exercise at different rotational cadence: a crossover study.

Lin H, Chou C, Chao H, Wang S, Chen C BMC Sports Sci Med Rehabil. 2022; 14(1):194.

PMID: 36397168 PMC: 9670670. DOI: 10.1186/s13102-022-00589-w.


References
1.
Halliwill J, Taylor J, Eckberg D . Impaired sympathetic vascular regulation in humans after acute dynamic exercise. J Physiol. 1996; 495 ( Pt 1):279-88. PMC: 1160743. DOI: 10.1113/jphysiol.1996.sp021592. View

2.
Bonyhay I, Jokkel G, Kollai M . Relation between baroreflex sensitivity and carotid artery elasticity in healthy humans. Am J Physiol. 1996; 271(3 Pt 2):H1139-44. DOI: 10.1152/ajpheart.1996.271.3.H1139. View

3.
Bonyhay I, Jokkel G, Karlocai K, Reneman R, Kollai M . Effect of vasoactive drugs on carotid diameter in humans. Am J Physiol. 1997; 273(4):H1629-36. DOI: 10.1152/ajpheart.1997.273.4.H1629. View

4.
Lenard Z, Fulop D, Visontai Z, Jokkel G, Reneman R, Kollai M . Static versus dynamic distensibility of the carotid artery in humans. J Vasc Res. 2000; 37(2):103-11. DOI: 10.1159/000025721. View

5.
Mateo J, Laguna P . Improved heart rate variability signal analysis from the beat occurrence times according to the IPFM model. IEEE Trans Biomed Eng. 2000; 47(8):985-96. DOI: 10.1109/10.855925. View