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Published on: October 1, 2019
Influence of cerebrovascular arteriosclerosis on cerebral oxygenation during exercise
Osamu Nagayama1, Akira Koike, Masayo Hoshimoto
1The Cardiovascular Institute, Minato-ku, Tokyo, Japan.
Insights
Cerebrovascular arteriosclerosis, or hardening of the brain arteries, partly impacts cerebral oxygenation during exercise. The increase in oxygen in the brain during exercise is influenced by cardiopulmonary function and the degree of artery hardening.
Area of Science:
- Cardiovascular Science
- Neurology
- Exercise Physiology
Background:
- Cerebral oxygenation during exercise is influenced by cardiopulmonary function and cerebrovascular arteriosclerosis.
- The specific impact of cerebrovascular arteriosclerosis on cerebral oxygenation during exercise remains unclear.
Purpose of the Study:
- To investigate the relationship between the degree of cerebrovascular arteriosclerosis and cerebral oxygenation during exercise.
Main Methods:
- 109 patients (coronary artery disease or hypertensive heart disease) underwent symptom-limited exercise testing with respiratory gas analysis (CPX).
- Cerebral oxygenation was monitored using near-infrared spectroscopy (NIRS) to measure oxyhemoglobin (O2Hb).
- Cerebrovascular arteriosclerosis was assessed using a brain ischemic score derived from MRI.
Main Results:
- Patients with a higher brain ischemic score exhibited a significantly lower increase in brain O2Hb during exercise compared to those with a lower score.
- The slope of increase in oxygen uptake relative to work rate (ΔVO2/ΔWR) was the sole independent predictor of cerebral O2Hb during exercise.
- Cardiopulmonary exercise testing (CPX) parameters were significantly associated with the degree of cerebrovascular arteriosclerosis.
Conclusions:
- Cardiopulmonary function is the primary determinant of cerebral oxygenation during exercise.
- The extent of cerebrovascular arteriosclerosis plays a partial role in modulating cerebral oxygenation, particularly in patients with atherosclerosis risk factors.
Background:
Although it is assumed that cerebral oxygenation during exercise is influenced by both cardiopulmonary function and cerebrovascular arteriosclerosis, the latter factor has not been fully clarified. In the present study the relationship between the degree of cerebrovascular arteriosclerosis and cerebral oxygenation during exercise was investigated.
Methods And Results:
A total of 109 patients (69 patients with coronary artery disease, 40 patients with hypertensive heart disease) (61.7+/-9.7 years) performed a symptom-limited exercise test with respiratory gas measurements (CPX). From the respiratory gas analysis, peak O(2) uptake (VO(2)), the slope of the increase in VO(2) to the increase in work rate (DeltaVO (2)/DeltaWR), and the slope of the increase in ventilation to the increase in CO(2) output (VE/VCO(2) slope) were calculated. Oxyhemoglobin (O(2)Hb) at the forehead was monitored using near-infrared spectroscopy. The brain ischemic score was counted based upon fluid-attenuated inversion recovery images of magnetic resonance imaging and expressed from 0 to 4. When compared with patients with a lower ischemic score (<2, n=67), those with a higher ischemic score (> or =2, n=42) had a lower increase in brain O(2)Hb during exercise (-1.08 +/-2.7 vs 0.77+/-4.1 micromol/L, p=0.011). Of brain ischemic score, left ventricular ejection fraction, peak VO(2), DeltaVO(2)/DeltaWR, and the VE/VCO(2) slope, DeltaVO(2)/ DeltaWR was found to be the sole independent index determining cerebral O(2)Hb during exercise. The CPX parameters were also significantly related to the degree of cerebrovascular arteriosclerosis.
Conclusions:
Although cerebral oxygenation during exercise is mainly related to cardiopulmonary function, the degree of cerebrovascular arteriosclerosis partly influences cerebral oxygenation in patients with risk factors for atherosclerosis.
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