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Updated: Jun 17, 2026

Evaluation of Cerebral Blood Flow Autoregulation in the Rat Using Laser Doppler Flowmetry
Published on: January 19, 2020
Influence of changes in blood pressure on cerebral perfusion and oxygenation
Samuel J E Lucas1, Yu Chieh Tzeng, Sean D Galvin
1Department of Physiology, University of Otago, Dunedin, New Zealand.
Insights
Healthy humans show that cerebral blood flow closely tracks blood pressure changes. This suggests a finite slope doesn't always mean impaired cerebral autoregulation (CA), highlighting dynamic responses in brain blood flow regulation.
Area of Science:
- Neuroscience
- Physiology
- Medical Research
Background:
- Cerebral autoregulation (CA) is vital for maintaining stable cerebral blood flow and oxygenation.
- Current assessments of static CA lack a clear definition of "normal" in healthy individuals.
- Understanding CA is crucial for diagnosing and monitoring cerebrovascular diseases.
Purpose of the Study:
- To provide the first clear examination of static cerebral autoregulation in healthy humans across a wide blood pressure range.
- To quantify the relationship between blood pressure and cerebral blood flow velocity.
- To investigate changes in cerebral oxygenation relative to blood pressure variations.
Main Methods:
- 11 healthy participants underwent pharmacological induction of blood pressure changes (40-125 mm Hg).
- Beat-to-beat blood pressure, middle cerebral artery velocity (MCAv), end-tidal Pco(2), and cerebral oxygenation were continuously monitored.
- Transcranial Doppler ultrasound and near-infrared spectroscopy were used for measurements.
Main Results:
- Mean MCAv changed by 0.82% per mm Hg change in mean blood pressure (R(2)=0.82).
- Cortical oxygenation index showed an inverse relationship with mean blood pressure (slope=-0.18%/mm Hg) and MCAv (slope=-0.26%/cm·s⁻¹).
- MCAv pulsatility increased with hypotension, and differential changes in oxygenation and MCAv occurred with hypotension and hypertension.
Conclusions:
- Cerebral blood flow closely follows blood pressure changes in healthy humans under controlled conditions.
- A finite slope in the plateau region of CA assessment does not necessarily indicate defective autoregulation.
- Progressive hypotension and hypertension induce distinct alterations in cerebral oxygenation and blood flow velocity.
Abstract:
Cerebral autoregulation (CA) is a critical process for the maintenance of cerebral blood flow and oxygenation. Assessment of CA is frequently used for experimental research and in the diagnosis, monitoring, or prognosis of cerebrovascular disease; however, despite the extensive use and reference to static CA, a valid quantification of "normal" CA has not been clearly identified. While controlling for the influence of arterial Pco(2), we provide the first clear examination of static CA in healthy humans over a wide range of blood pressure. In 11 healthy humans, beat-to-beat blood pressure (radial arterial), middle cerebral artery blood velocity (MCAv; transcranial Doppler ultrasound), end-tidal Pco(2), and cerebral oxygenation (near infrared spectroscopy) were recorded continuously during pharmacological-induced changes in mean blood pressure. In a randomized order, steady-state decreases and increases in mean blood pressure (8 to 14 levels; range: approximately 40 to approximately 125 mm Hg) were achieved using intravenous infusions of sodium nitroprusside or phenylephrine, respectively. MCAv(mean) was altered by 0.82+/-0.35% per millimeter of mercury change in mean blood pressure (R(2)=0.82). Changes in cortical oxygenation index were inversely related to changes in mean blood pressure (slope=-0.18%/mm Hg; R(2)=0.60) and MCAv(mean) (slope=-0.26%/cm . s(-1); R(2)=0.54). There was a progressive increase in MCAv pulsatility with hypotension. These findings indicate that cerebral blood flow closely follows pharmacological-induced changes in blood pressure in otherwise healthy humans. Thus, a finite slope of the plateau region does not necessarily imply a defective CA. Moreover, with progressive hypotension and hypertension there are differential changes in cerebral oxygenation and MCAv(mean).
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