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Quantification of the cortical contribution to the NIRS signal over the motor cortex using concurrent NIRS-fMRI measurements

  • Louis Gagnon
  • , Meryem A. Yücel
  • , Mathieu Dehaes
  • , Robert J. Cooper
  • , Katherine L. Perdue
  • , Juliette Selb
  • , Theodore J. Huppert
  • , Richard D. Hoge
  • , David A. Boas
  • Massachusetts General Hospital
  • Harvard-MIT Division of Health Sciences and Technology
  • Massachusetts Institute of Technology
  • Boston Children's Hospital
  • Dartmouth College
  • University of Montreal

Research output: Contribution to journalArticlepeer-review

189 Scopus citations

Abstract

Near-Infrared Spectroscopy (NIRS) measures the functional hemodynamic response occurring at the surface of the cortex. Large pial veins are located above the surface of the cerebral cortex. Following activation, these veins exhibit oxygenation changes but their volume likely stays constant. The back-reflection geometry of the NIRS measurement renders the signal very sensitive to these superficial pial veins. As such, the measured NIRS signal contains contributions from both the cortical region as well as the pial vasculature. In this work, the cortical contribution to the NIRS signal was investigated using (1) Monte Carlo simulations over a realistic geometry constructed from anatomical and vascular MRI and (2) multimodal NIRS-BOLD recordings during motor stimulation. A good agreement was found between the simulations and the modeling analysis of . in vivo measurements. Our results suggest that the cortical contribution to the deoxyhemoglobin signal change (δHbR) is equal to 16-22% of the cortical contribution to the total hemoglobin signal change (δHbT). Similarly, the cortical contribution of the oxyhemoglobin signal change (δHbO) is equal to 73-79% of the cortical contribution to the . δHbT signal. These results suggest that . δHbT is far less sensitive to pial vein contamination and therefore, it is likely that the . δHbT signal provides better spatial specificity and should be used instead of . δHbO or . δHbR to map cerebral activity with NIRS. While different stimuli will result in different pial vein contributions, our finger tapping results do reveal the importance of considering the pial contribution.

Original languageEnglish
Pages (from-to)3933-3940
Number of pages8
JournalNeuroImage
Volume59
Issue number4
DOIs
StatePublished - Feb 15 2012

Keywords

  • Balloon Model
  • Monte Carlo simulations
  • NIRS-fMRI
  • Pial vasculature

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