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Passive hyperthermia increases blood circulation in specific regions, largely independent of conduit artery mechanics and cardiac performance

Passive hyperthermia increases blood circulation in specific regions, largely independent of conduit artery mechanics and cardiac performance
Passive hyperthermia increases blood circulation in specific regions, largely independent of conduit artery mechanics and cardiac performance
Passive hyperthermia increases net peripheral and systemic blood flow in humans and other animals, yet the underlying haemodynamic forces that selectively accelerate blood movement remain incompletely characterized. Wave intensity analysis offers insight into the respective contributions of the heart and the vascular system to changes in blood circulation during physiological stress; however, the specific impact of hyperthermia on wave intensity metrics has not been elucidated comprehensively. To address this, we investigated wave speed and wave intensity parameters in the common carotid artery, along with local arterial distensibility in the internal carotid, brachial and common femoral arteries, in addition to total arterial compliance, in eight healthy males across four protocols: (1) 3 h of control measurements in normothermic conditions; (2) 3 h of one-leg heating; (3) 3 h of two-leg heating; and (4) 2.5 h of whole-body heating. Forward compression (1.5-fold; P = 0.041) and forward expansion (5.2-fold; P < 0.0001) waves in the common carotid artery (indices of ventricular contractility and late-systolic blood flow deceleration, respectively) increased exclusively during whole-body heating. In contrast, backward compression waves, wave speed, distensibility and reflection index remained unaltered across all conditions. Notably, distensibility in the major conduit arteries perfusing the brain (internal carotid artery), forearm (brachial artery) and leg (common femoral artery), in addition to total arterial compliance, remained unchanged across all conditions. Collectively, these findings suggest that increases in blood circulation within specific regions of the human body during passive hyperthermia are largely independent of conduit artery mechanics and cardiac performance.
Arterial Compliance, Circulation, Hyperthermia, Wave Intensity Analysis, hyperthermia, arterial compliance, circulation, wave intensity analysis
0958-0670
Koch Esteves, Nuno
c3310d39-48af-4724-bf88-c05400aaf6cb
Watanabe, Kazuhito
334f9f44-d315-4bbc-b0a6-04306b6680a5
Cavallo, Francesca R.
10935910-5826-4f59-bd5d-efc4e0180e9e
Khir, Ashraf W.
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González‐Alonso, José
df2a2938-29bc-4701-894e-3a71da30b637
Koch Esteves, Nuno
c3310d39-48af-4724-bf88-c05400aaf6cb
Watanabe, Kazuhito
334f9f44-d315-4bbc-b0a6-04306b6680a5
Cavallo, Francesca R.
10935910-5826-4f59-bd5d-efc4e0180e9e
Khir, Ashraf W.
42d09f0d-5bc5-4b7b-be7d-f4006f434029
González‐Alonso, José
df2a2938-29bc-4701-894e-3a71da30b637

Koch Esteves, Nuno, Watanabe, Kazuhito, Cavallo, Francesca R., Khir, Ashraf W. and González‐Alonso, José (2026) Passive hyperthermia increases blood circulation in specific regions, largely independent of conduit artery mechanics and cardiac performance. Experimental Physiology. (doi:10.1113/EP093331).

Record type: Article

Abstract

Passive hyperthermia increases net peripheral and systemic blood flow in humans and other animals, yet the underlying haemodynamic forces that selectively accelerate blood movement remain incompletely characterized. Wave intensity analysis offers insight into the respective contributions of the heart and the vascular system to changes in blood circulation during physiological stress; however, the specific impact of hyperthermia on wave intensity metrics has not been elucidated comprehensively. To address this, we investigated wave speed and wave intensity parameters in the common carotid artery, along with local arterial distensibility in the internal carotid, brachial and common femoral arteries, in addition to total arterial compliance, in eight healthy males across four protocols: (1) 3 h of control measurements in normothermic conditions; (2) 3 h of one-leg heating; (3) 3 h of two-leg heating; and (4) 2.5 h of whole-body heating. Forward compression (1.5-fold; P = 0.041) and forward expansion (5.2-fold; P < 0.0001) waves in the common carotid artery (indices of ventricular contractility and late-systolic blood flow deceleration, respectively) increased exclusively during whole-body heating. In contrast, backward compression waves, wave speed, distensibility and reflection index remained unaltered across all conditions. Notably, distensibility in the major conduit arteries perfusing the brain (internal carotid artery), forearm (brachial artery) and leg (common femoral artery), in addition to total arterial compliance, remained unchanged across all conditions. Collectively, these findings suggest that increases in blood circulation within specific regions of the human body during passive hyperthermia are largely independent of conduit artery mechanics and cardiac performance.

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Experimental Physiology - 2026 - Koch Esteves - Passive hyperthermia increases blood circulation in specific regions - Version of Record
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Accepted/In Press date: 15 January 2026
e-pub ahead of print date: 15 February 2026
Keywords: Arterial Compliance, Circulation, Hyperthermia, Wave Intensity Analysis, hyperthermia, arterial compliance, circulation, wave intensity analysis

Identifiers

Local EPrints ID: 510144
URI: http://eprints.soton.ac.uk/id/eprint/510144
ISSN: 0958-0670
PURE UUID: 5544c8bb-26f5-49ff-8f91-503217e66740
ORCID for Nuno Koch Esteves: ORCID iD orcid.org/0000-0002-0580-7642

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Date deposited: 18 Mar 2026 17:41
Last modified: 19 Mar 2026 03:12

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Contributors

Author: Nuno Koch Esteves ORCID iD
Author: Kazuhito Watanabe
Author: Francesca R. Cavallo
Author: Ashraf W. Khir
Author: José González‐Alonso

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