Renal and segmental artery hemodynamics during whole body passive heating and cooling recovery
Chapman CL, Benati JM, Johnson BD, Vargas NT, Lema PC, Schlader ZJ
Journal of applied physiology (Bethesda, Md. : 1985) · 25 citations
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How it was studied
- Design
- Controlled clinical trial (classified by our AI screen)
- Studied in
- People
- Main outcome
- Health markers and function
Who paid for it
- Funding
- Funding not disclosed
Publication
- Published
- 2019-08-15 · J Appl Physiol (1985) · vol. 127 · issue 4 · pp. 974–983
- Publisher
- American Physiological Society
- Cited
- 26 citations · more than 83% of similar papers · 1.6× the field average
- References
- 50 works
- Access
- Paywalled
- Research areas
- Thermoregulation and physiological responses · Climate Change and Health Impacts · Thermal Regulation in Medicine
- Keywords
- Hemodynamics, Renal artery, Cardiology, Medicine, Internal medicine, Kidney
- MeSH
- kidney, arteries, sympathetic nervous system, humans, heat stress disorders, heating, heart rate, vascular resistance, regional blood flow, renal circulation, vasoconstriction, adult, female, male, hemodynamics, cold temperature, hot temperature, young adult, arterial pressure
6 authors
From US
- Christopher L. ChapmanUniversity at Buffalo, State University of New York
- Julia M. BenatiUniversity at Buffalo, State University of New York
- Blair D. JohnsonUniversity at Buffalo, State University of New York
- Nicole T. VargasUniversity at Buffalo, State University of New York
- Penelope Chun LemaUniversity at Buffalo, State University of New York
- Zachary J. Schlader · correspondingIndiana University Bloomington; University at Buffalo, State University of New York
Abstract
High environmental temperatures are associated with increased risk of acute kidney injury, which may be related to reductions in renal blood flow. The susceptibility of the kidneys may be increased because of heat stress-induced changes in renal vascular resistance (RVR) to sympathetic activation. We tested the hypotheses that, compared with normothermia, increases in RVR during the cold pressor test (CPT, a sympathoexcitatory maneuver) are attenuated during passive heating and exacerbated after cooling recovery. Twenty-four healthy adults (22 ± 2 yr; 12 women, 12 men) completed CPTs at normothermic baseline, after passive heating to a rise in core temperature of ~1.2°C, and after cooling recovery when core temperature returned to ~0.2°C above normothermic baseline. Blood velocity was measured by Doppler ultrasound in the distal segment of the right renal artery (Renal, n = 24 during thermal stress, n = 12 during CPTs) or the middle portion of a segmental artery (Segmental, n = 12). RVR was calculated as mean arterial pressure divided by renal or segmental blood velocity. RVR increased at the end of CPT during normothermic baseline in both arteries (Renal: by 1.0 ± 1.0 mmHg·cm-1·s, Segmental: by 2.2 ± 1.2 mmHg·cm-1·s, P ≤ 0.03), and these increases were abolished with passive heating (P ≥ 0.76). At the end of cooling recovery, RVR in both arteries to the CPT was restored to that of normothermic baseline (P ≤ 0.17). These data show that increases in RVR to sympathetic activation during passive heating are attenuated and return to that of normothermic baseline after cooling recovery.NEW & NOTEWORTHY Our data indicate that increases in renal vascular resistance to the cold pressor test (i.e., sympathetic activation) are attenuated during passive heating, but at the end of cooling recovery this response returns to that of normothermic baseline. Importantly, hemodynamic responses were assessed in arteries going to (renal artery) and within (segmental artery) the kidney, which has not been previously examined in the same study during thermal and/or sympathetic stressors.
Abstract via Europe PMC. Copyright remains with the authors or publisher.
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