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Estimating cerebral oxygen metabolism from fMRI with a dynamic multicompartment windkessel model

  • University of Texas at Arlington
  • Massachusetts General Hospital
  • Dartmouth College
  • Harvard University

Research output: Contribution to journalArticlepeer-review

43 Scopus citations

Abstract

Abstract: Stimulus evoked changes in cerebral blood flow, volume, and oxygenation arise from responses to underlying neuronally mediated changes in vascular tone and cerebral oxygen metabolism. There is increasing evidence that the magnitude and temporal characteristics of these evoked hemodynamic changes are additionally influenced by the local properties of the vasculature including the levels of baseline cerebral blood flow, volume, and blood oxygenation. In this work, we utilize a physiologically motivated vascular model to describe the temporal characteristics of evoked hemodynamic responses and their expected relationships to the structural and biomechanical properties of the underlying vasculature. We use this model in a temporal curve-fitting analysis of the high-temporal resolution functional MRI data to estimate the underlying cerebral vascular and metabolic responses in the brain. We present evidence for the feasibility of our model-based analysis to estimate transient changes in the cerebral metabolic rate of oxygen (CMRO2) in the human motor cortex from combined pulsed arterial spin labeling (ASL) and blood oxygen level dependent (BOLD) MRI. We examine both the numerical characteristics of this model and present experimental evidence to support this model by examining concurrently measured ASL, BOLD, and near-infrared spectroscopy to validate the calculated changes in underlying CMRO2. Hum Brain Mapp 30:1548-1567, 2009. VVC 2008 Wiley-Liss, Inc.

Original languageEnglish
Pages (from-to)1548-1567
Number of pages20
JournalHuman Brain Mapping
Volume30
Issue number5
DOIs
StatePublished - May 2009

Keywords

  • Cerebral metabolism
  • Functional neuroimaging
  • Vascular modeling

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