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Published on: December 10, 2014
Dynamic blood pressure control and middle cerebral artery mean blood velocity variability at rest and during exercise
S Ogoh1, M K Dalsgaard, N H Secher
1Department of Integrative Physiology, University of North Texas Health Science Center, Fort Worth, TX 76107, USA. sogoh@hsc.unt.edu
Insights
Beta-blockers reduce cardiac output during exercise, but do not affect middle cerebral artery blood flow variability. This suggests that reduced cardiac-arterial baroreflex gain does not impact cerebral blood flow control.
Area of Science:
- Cardiovascular Physiology
- Neurovascular Regulation
- Exercise Physiology
Background:
- Beta-1 adrenergic blockade is standard for heart failure and ischemic heart disease.
- This medication reduces cardiac output and cerebral blood flow.
- The impact of beta-blockade on cerebral blood flow variability during exercise, considering baroreflex function, is not well understood.
Purpose of the Study:
- To evaluate the influence of cardiac output variability on middle cerebral artery mean blood velocity (MCA Vmean) during exercise.
- To assess these effects with and without cardiac beta-1 adrenergic blockade.
- To investigate the role of cardiac-arterial baroreflex gain.
Main Methods:
- Eight healthy men underwent moderate and heavy intensity cycling.
- Measurements were taken before and after cardio-selective beta-1 adrenergic blockade (metoprolol).
- Transfer function analysis assessed relationships between cardiac output, mean arterial pressure (MAP), MCA Vmean, and baroreflex gain.
Main Results:
- Exercise reduced the low-frequency gain between cardiac output and MCA Vmean, irrespective of beta-blockade.
- The gain between MAP and MCA Vmean remained stable, unaffected by metoprolol.
- Cardiac-arterial baroreflex gain (MAP-HR gain) decreased with increasing exercise intensity, with or without beta-blockade.
Conclusions:
- Reduced cardiac-arterial baroreflex function during exercise does not alter dynamic control of MCA Vmean.
- Beta-1 adrenergic blockade does not influence this relationship, even when limiting exercise-induced cardiac output increases.
- Cerebral blood flow dynamics are maintained during exercise under beta-blockade.
Aims:
Cardiac failure and ischaemic heart disease patients receive standard of care cardiac beta(1)-adrenergic blockade medication. Such medication reduces cardiac output and cerebral blood flow. It is unknown whether the beta(1)-adrenergic blockade-induced reduction of cardiac output in the presence of an exercise-induced reduction in cardiac-arterial baroreflex gain affects cerebral blood flow variability. This study evaluated the influence of cardiac output variability on beat-to-beat middle cerebral artery mean blood velocity (MCA V(mean)) during exercise with and without cardiac beta(1)-adrenergic blockade.
Methods:
Eight men (22 +/- 1 years; mean +/- SE) performed 15 min bouts of moderate (105 +/- 11 W) and heavy (162 +/- 8 W) intensity cycling before and after cardio-selective beta(1)-adrenergic blockade (0.15 mg kg(-1) metoprolol). The relationship between changes in cardiac output or mean arterial pressure (MAP) and MCA V(mean) as well as cardiac-arterial baroreflex gain were evaluated using transfer function analysis.
Results:
Both exercise intensities decreased the low frequency (LF) transfer function gain between cardiac output and MCA V(mean) (P < 0.05) with no significant influence of beta(1)-blockade. In contrast, the LF transfer function gain between MAP and MCA V(mean) remained stable also with no significant influence of metoprolol (P > 0.05). The LF transfer function gain between MAP and HR, an index of cardiac-arterial baroreflex gain, decreased from rest to heavy exercise with and without beta(1)-blockade (P < 0.05).
Conclusion:
These findings suggest that the exercise intensity related reduction in cardiac-arterial baroreflex function at its operating point does not influence the dynamic control of MCA V(mean), even when the ability of exercise-induced increase in cardiac output is reduced by cardiac beta(1)-adrenergic blockade.
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