The effect of spontaneous beat-to-beat mean arterial blood pressure fluctuations and breath-to-breath end-tidal CO2 fluctuations on beat-to-beat cerebral blood flow velocity variations is studied using the Laguerre-Volterra network methodology for multiple-input nonlinear systems. The observations made from experimental measurements from ten healthy human subjects reveal that, whereas pressure fluctuations explain most of the high-frequency blood flow velocity variations (above 0.04 Hz), end-tidal CO2 fluctuations as well as nonlinear interactions between pressure and CO2 have a considerable effect in the lower frequencies (below 0.04 Hz). They also indicate that cerebral autoregulation is strongly nonlinear and dynamic (frequency-dependent...
Breath-by-breath variability of the end-tidal partial pressure of CO2 (PetCO2) has been shown to be ...
KEY POINTS:Dynamic cerebral autoregulation (CA) is often expressed by the mean arterial blood pressu...
Key pointsDynamic cerebral autoregulation (CA) is expressed by the temporal pattern of cerebral bloo...
The dynamic relationship between cerebral blood flow, arterial blood pressure and arterial CO2 is st...
Abstract: Cerebral Flow Autoregulation (CFA) is the dynamic process by which cerebral blood flow is ...
Despite advances in modelling dynamic autoregulation, only part of the variability of cerebral blood...
Cerebral metabolism is critically dependent on the regulation of cerebral blood flow (CBF), so it wo...
Despite advances in modelling dynamic autoregulation, only part of the variability of cerebral blood...
The effect of spontaneous beat-to-beat mean arterial blood pressure (ABP) fluctuations and breath-to...
<div><p>Cerebral metabolism is critically dependent on the regulation of cerebral blood flow (CBF), ...
Cerebral autoregulation maintains a relatively constant blood flow despite changes of blood pressure...
Quantification of nonlinear interactions between two nonstationary signals presents a computational ...
<div><p>Cerebral autoregulation (CA) is an important vascular control mechanism responsible for rela...
Cerebral metabolism is critically dependent on the regulation of cerebral blood flow (CBF), so it wo...
Cerebral autoregulation is the process of maintaining blood flow to the brain almost constant despit...
Breath-by-breath variability of the end-tidal partial pressure of CO2 (PetCO2) has been shown to be ...
KEY POINTS:Dynamic cerebral autoregulation (CA) is often expressed by the mean arterial blood pressu...
Key pointsDynamic cerebral autoregulation (CA) is expressed by the temporal pattern of cerebral bloo...
The dynamic relationship between cerebral blood flow, arterial blood pressure and arterial CO2 is st...
Abstract: Cerebral Flow Autoregulation (CFA) is the dynamic process by which cerebral blood flow is ...
Despite advances in modelling dynamic autoregulation, only part of the variability of cerebral blood...
Cerebral metabolism is critically dependent on the regulation of cerebral blood flow (CBF), so it wo...
Despite advances in modelling dynamic autoregulation, only part of the variability of cerebral blood...
The effect of spontaneous beat-to-beat mean arterial blood pressure (ABP) fluctuations and breath-to...
<div><p>Cerebral metabolism is critically dependent on the regulation of cerebral blood flow (CBF), ...
Cerebral autoregulation maintains a relatively constant blood flow despite changes of blood pressure...
Quantification of nonlinear interactions between two nonstationary signals presents a computational ...
<div><p>Cerebral autoregulation (CA) is an important vascular control mechanism responsible for rela...
Cerebral metabolism is critically dependent on the regulation of cerebral blood flow (CBF), so it wo...
Cerebral autoregulation is the process of maintaining blood flow to the brain almost constant despit...
Breath-by-breath variability of the end-tidal partial pressure of CO2 (PetCO2) has been shown to be ...
KEY POINTS:Dynamic cerebral autoregulation (CA) is often expressed by the mean arterial blood pressu...
Key pointsDynamic cerebral autoregulation (CA) is expressed by the temporal pattern of cerebral bloo...