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.

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