Literature DB >> 33418561

Comparison of static and dynamic cerebral autoregulation under anesthesia influence in a controlled animal model.

Alexander Ruesch1, Deepshikha Acharya1, Samantha Schmitt1,2,3, Jason Yang1, Matthew A Smith1,2,3, Jana M Kainerstorfer1,2.   

Abstract

The brain's ability to maintain cerebral blood flow approximately constant despite cerebral perfusion pressure changes is known as cerebral autoregulation (CA) and is governed by vasoconstriction and vasodilation. Cerebral perfusion pressure is defined as the pressure gradient between arterial blood pressure and intracranial pressure. Measuring CA is a challenging task and has created a variety of evaluation methods, which are often categorized as static and dynamic CA assessments. Because CA is quantified as the performance of a regulatory system and no physical ground truth can be measured, conflicting results are reported. The conflict further arises from a lack of healthy volunteer data with respect to cerebral perfusion pressure measurements and the variety of diseases in which CA ability is impaired, including stroke, traumatic brain injury and hydrocephalus. To overcome these differences, we present a healthy non-human primate model in which we can control the ability to autoregulate blood flow through the type of anesthesia (isoflurane vs fentanyl). We show how three different assessment methods can be used to measure CA impairment, and how static and dynamic autoregulation compare under challenges in intracranial pressure and blood pressure. We reconstructed Lassen's curve for two groups of anesthesia, where only the fentanyl anesthetized group yielded the canonical shape. Cerebral perfusion pressure allowed for the best distinction between the fentanyl and isoflurane anesthetized groups. The autoregulatory response time to induced oscillations in intracranial pressure and blood pressure, measured as the phase lag between intracranial pressure and blood pressure, was able to determine autoregulatory impairment in agreement with static autoregulation. Static and dynamic CA both show impairment in high dose isoflurane anesthesia, while low isoflurane in combination with fentanyl anesthesia maintains CA, offering a repeatable animal model for CA studies.

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Year:  2021        PMID: 33418561      PMCID: PMC7794034          DOI: 10.1371/journal.pone.0245291

Source DB:  PubMed          Journal:  PLoS One        ISSN: 1932-6203            Impact factor:   3.240


  32 in total

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Journal:  Physiol Rev       Date:  1959-04       Impact factor: 37.312

2.  Guidelines for the Management of Pediatric Severe Traumatic Brain Injury, Third Edition: Update of the Brain Trauma Foundation Guidelines.

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Review 3.  Contribution of mathematical modelling to the interpretation of bedside tests of cerebrovascular autoregulation.

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Journal:  Anesthesiol Clin       Date:  2016-09

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Journal:  Pediatr Crit Care Med       Date:  2004-05       Impact factor: 3.624

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Journal:  Neuroimage       Date:  2013-06-14       Impact factor: 6.556

7.  Cerebral hemodynamics in preterm infants during positional intervention measured with diffuse correlation spectroscopy and transcranial Doppler ultrasound.

Authors:  Erin M Buckley; Noah M Cook; Turgut Durduran; Meeri N Kim; Chao Zhou; Regine Choe; Guoqiang Yu; Susan Schultz; Chandra M Sehgal; Daniel J Licht; Peter H Arger; Mary E Putt; Hallam H Hurt; Arjun G Yodh
Journal:  Opt Express       Date:  2009-07-20       Impact factor: 3.894

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Journal:  Biomed Opt Express       Date:  2010-08-10       Impact factor: 3.732

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Authors:  Maya Harary; Rianne G F Dolmans; William B Gormley
Journal:  Sensors (Basel)       Date:  2018-02-05       Impact factor: 3.576

10.  Cerebral autoregulation, cerebrospinal fluid outflow resistance, and outcome following cerebrospinal fluid diversion in normal pressure hydrocephalus.

Authors:  Afroditi Despina Lalou; Marek Czosnyka; Joseph Donnelly; John D Pickard; Eva Nabbanja; Nicole C Keong; Matthew Garnett; Zofia H Czosnyka
Journal:  J Neurosurg       Date:  2018-03-16       Impact factor: 5.115

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  4 in total

1.  Changes in neurovascular coupling with cerebral perfusion pressure indicate a link to cerebral autoregulation.

Authors:  Deepshikha Acharya; Alexander Ruesch; Samantha Schmitt; Jason Yang; Matthew A Smith; Jana M Kainerstorfer
Journal:  J Cereb Blood Flow Metab       Date:  2022-01-25       Impact factor: 6.960

2.  Continuous Time-Domain Cerebrovascular Reactivity Metrics and Discriminate Capacity for the Upper and Lower Limits of Autoregulation: A Scoping Review of the Animal Literature.

Authors:  Amanjyot Singh Sainbhi; Logan Froese; Alwyn Gomez; Carleen Batson; Kevin Y Stein; Arsalan Alizadeh; Frederick A Zeiler
Journal:  Neurotrauma Rep       Date:  2021-12-20

3.  Non-Invasive Spectroscopy for Measuring Cerebral Tissue Oxygenation and Metabolism as a Function of Cerebral Perfusion Pressure.

Authors:  Deepshikha Acharya; Ankita Mukherjea; Jiaming Cao; Alexander Ruesch; Samantha Schmitt; Jason Yang; Matthew A Smith; Jana M Kainerstorfer
Journal:  Metabolites       Date:  2022-07-20

4.  Using near-infrared spectroscopy and a random forest regressor to estimate intracranial pressure.

Authors:  Filip A J Relander; Alexander Ruesch; Jason Yang; Deepshikha Acharya; Bradley Scammon; Samantha Schmitt; Emily C Crane; Matthew A Smith; Jana M Kainerstorfer
Journal:  Neurophotonics       Date:  2022-10-11       Impact factor: 4.212

  4 in total

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