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Effect of increases in cardiac contractility on cerebral blood flow in humans
Shigehiko Ogoh1, Gilbert Moralez2, Takuro Washio3
1Department of Biomedical Engineering, Toyo University, Kawagoe-shi, Saitama, Japan; ogoh@toyo.jp.
Insights
Dobutamine increased cardiac contractility but not internal carotid artery blood flow. External carotid artery blood flow rose, potentially protecting the brain from overperfusion during enhanced cardiac function.
Area of Science:
- Cardiovascular Physiology
- Cerebrovascular Regulation
Background:
- The impact of acute increases in cardiac contractility on cerebral blood flow (CBF) is not well understood.
- The role of external carotid artery (ECA) vasculature in modulating CBF during heightened cardiac function requires investigation.
Purpose of the Study:
- To investigate the effect of acute increases in cardiac contractility on cerebral blood flow (CBF) in healthy subjects.
- To determine if external carotid artery (ECA) downstream vasculature influences the regulation of CBF during dobutamine administration.
Main Methods:
- Twelve healthy subjects received intravenous infusions of dobutamine at low (5 μg·kg⁻¹·min⁻¹) and high (15 μg·kg⁻¹·min⁻¹) doses.
- Cardiac output, internal carotid artery (ICA) and ECA blood flow, and echocardiographic parameters were measured during infusions.
- Calculations included blood flow and vascular conductance for both ICA and ECA.
Main Results:
- Dobutamine increased cardiac contractility, cardiac output, and arterial pressure.
- Internal carotid artery (ICA) blood flow and conductance slightly decreased from baseline during dobutamine infusions.
- External carotid artery (ECA) blood flow and conductance significantly increased during dobutamine infusions.
Conclusions:
- Acute increases in cardiac contractility do not elevate internal carotid artery (ICA) blood flow despite increased cardiac output.
- Increased external carotid artery (ECA) blood flow and vascular conductance may protect intracranial cerebral arteries from overperfusion.
- Dobutamine administration does not appear to cause cerebral overperfusion or increase the risk of cerebral vascular damage.
Abstract:
The effect of acute increases in cardiac contractility on cerebral blood flow (CBF) remains unknown. We hypothesized that the external carotid artery (ECA) downstream vasculature modifies the direct influence of acute increases in heart rate and cardiac function on CBF regulation. Twelve healthy subjects received two infusions of dobutamine [first a low dose (5 μg·kg-1·min-1) and then a high dose (15 μg·kg-1·min-1)] for 12 min each. Cardiac output, blood flow through the internal carotid artery (ICA) and ECA, and echocardiographic measurements were performed during dobutamine infusions. Despite increases in cardiac contractility, cardiac output, and arterial pressure with dobutamine, ICA blood flow and conductance slightly decreased from resting baseline during both low- and high-dose infusions. In contrast, ECA blood flow and conductance increased appreciably during both low- and high-dose infusions. Greater ECA vascular conductance and corresponding increases in blood flow may protect overperfusion of intracranial cerebral arteries during enhanced cardiac contractility and associated increases in cardiac output and perfusion pressure. Importantly, these findings suggest that the acute increase of blood perfusion attributable to dobutamine administration does not cause cerebral overperfusion or an associated risk of cerebral vascular damage.NEW & NOTEWORTHY A dobutamine-induced increase in cardiac contractility did not increase internal carotid artery blood flow despite an increase in cardiac output and arterial blood pressure. In contrast, external carotid artery blood flow and conductance increased. This external cerebral blood flow response may assist with protecting from overperfusion of intracranial blood flow.
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