Cerebrovascular effects of the thigh cuff maneuver

R B Panerai1, N P Saeed2, T G Robinson3

  • 1University of Leicester, Department of Cardiovascular Sciences, Leicester Royal Infirmary, Leicester, United Kingdom; and National Institutes for Health Research, Biomedical Research Unit in Cardiovascular Science, Glenfield Hospital, Leicester, United Kingdom rp9@le.ac.uk.

Insights

Sudden release of thigh cuffs causes temporary drops in blood pressure and cerebral blood flow velocity. Cerebral autoregulation remains effective, influenced by heart rate and CO2 levels.

Area of Science:

  • Neurology
  • Physiology
  • Cardiovascular Research

Background:

  • Sudden release of thigh cuffs (THC) can induce arterial hypotension.
  • The precise effects of this maneuver on cerebral circulation require further elucidation.

Purpose of the Study:

  • To investigate the impact of THC-induced hypotension on cerebral blood flow velocity (CBFV) and cerebral autoregulation in healthy individuals.
  • To analyze the interplay between blood pressure, CBFV, end-tidal CO2 (ETCO2), and autoregulation index (ARI) following THC release.

Main Methods:

  • Nine healthy subjects underwent THC maneuvers with continuous monitoring of bilateral middle cerebral artery (MCA) CBFV, finger BP, and ETCO2.
  • Beat-to-beat analysis of hemodynamic and respiratory parameters, including critical closing pressure (CrCP) and resistance-area product (RAP).
  • Time-varying autoregulation index [ARI(t)] was calculated using an autoregressive-moving average model.

Main Results:

  • THC release caused significant transient drops in mean BP, CBFV, and RAP, with rapid CBFV recovery.
  • Heart rate (HR), ETCO2, and ARI(t) showed transient increases, while CrCP remained stable.
  • Mean ARI(t) values post-release were comparable to classical ARI, indicating preserved autoregulation.
  • HR and ETCO2 correlated with peak and subsequent changes in ARI(t), respectively.

Conclusions:

  • The THC maneuver elicits a complex cerebral autoregulatory response in healthy individuals.
  • Cerebral autoregulation appears robust, primarily driven by myogenic mechanisms.
  • Autonomic nervous system activity (indicated by HR) and changes in ETCO2 modulate the cerebral hemodynamic response to hypotension.

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