Study2023

Heating-induced peripheral limb microvascular vasodilation reduces arterial wave reflection

Athaide CE, Cohen JN, Stevens KA, Robertson AD, Au JS

Journal of applied physiology (Bethesda, Md. : 1985) · 3 citations

How it was studied

Design
Randomized controlled trial (classified by our AI screen)
Studied in
People
Main outcome
Health markers and function

Who paid for it

Funding
Independent funding
Government
Government of Canada
Government
Natural Sciences and Engineering Research Council of Canada
Government
Gouvernement du Canada | Natural Sciences and Engineering Research Council of Canada
Grants
Natural Sciences and Engineering Research Council of Canada (rgpin-2021-02563); Government of Canada (RGPIN-2021-02563)

Based on 3 listed funder(s).

Publication

Published
2023-04-06 · J Appl Physiol (1985) · vol. 134 · issue 5 · pp. 1232–1239
Publisher
American Physiological Society
Cited
3 citations · more than 66% of similar papers · 0.5× the field average
References
35 works
Access
Paywalled
Research areas
Cardiovascular Health and Disease Prevention · Heart Rate Variability and Autonomic Control · Thermoregulation and physiological responses
Keywords
Vasodilation, Peripheral, Cardiology, Medicine, Internal medicine, Anatomy
MeSH
carotid arteries, humans, heating, blood pressure, vasodilation, adult, female, hemodynamics, pulse wave analysis

5 authors

From CA

  • Chloe E. AthaideUniversity of Waterloo
  • Jeremy N. CohenUniversity of Waterloo
  • Kailey A. StevensUniversity of Waterloo
  • Andrew D. RobertsonUniversity of Waterloo; Research Institute for Aging
  • Jason S. Au · correspondingUniversity of Waterloo

Abstract

Arterial wave reflection augments cardiac afterload increasing myocardial demands. Mathematical models and comparative physiology suggest that the lower limbs are the primary source of reflected waves; however, in vivo human evidence corroborating these observations is lacking. This study was designed to determine whether the vasculature of the lower or upper limbs contributes more to wave reflection. We hypothesized that lower limb heating will result in larger reductions in central wave reflection compared with upper limb heating due to local vasodilation of a larger microvascular bed. Fifteen healthy adults (8 females, 24 ± 3.6 yr) completed a within-subjects experimental crossover protocol with a washout period. The right upper and lower limbs were heated in a randomized order using 38°C water-perfused tubing with a 30-min break between protocols. Central wave reflection was calculated using pressure-flow relationships derived from aortic blood flow and carotid arterial pressure at baseline and after 30 min of heating. We observed a main effect of time for reflected wave amplitude (12.8 ± 2.7 to 12.2 ± 2.6 mmHg; P = 0.03) and augmentation index (-7.5 ± 8.9% to -4.5 ± 9.1%; P = 0.03). No significant main effects or interactions were noted for forward wave amplitude, reflected wave arrival time, or central relative wave reflection magnitude (all P values >0.23). Unilateral limb heating reduced reflected wave amplitude; however, the lack of a difference between conditions does not support the hypothesis that the lower limbs are the primary source of reflection. Future investigations should consider alternative vascular beds, such as splanchnic circulation.NEW & NOTEWORTHY Lower limb contributions to central wave reflections have been theorized without direct evidence in humans. In this study, mild passive heating was used to locally vasodilate either the right arm or leg to control local wave reflection sites. Heating in general reduced the reflected wave amplitude, but there were no differences between the arm or leg heating intervention, failing to provide support for the lower limbs as a primary contributor to wave reflection in humans.

Abstract via Europe PMC. Copyright remains with the authors or publisher.

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