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Direct Estimation of Evoked Hemoglobin Changes by Multimodality Fusion Imaging

Overview
Journal J Biomed Opt
Date 2008 Nov 22
PMID 19021411
Citations 22
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Abstract

In the last two decades, both diffuse optical tomography (DOT) and blood oxygen level dependent (BOLD)-based functional magnetic resonance imaging (fMRI) methods have been developed as noninvasive tools for imaging evoked cerebral hemodynamic changes in studies of brain activity. Although these two technologies measure functional contrast from similar physiological sources, i.e., changes in hemoglobin levels, these two modalities are based on distinct physical and biophysical principles leading to both limitations and strengths to each method. In this work, we describe a unified linear model to combine the complimentary spatial, temporal, and spectroscopic resolutions of concurrently measured optical tomography and fMRI signals. Using numerical simulations, we demonstrate that concurrent optical and BOLD measurements can be used to create cross-calibrated estimates of absolute micromolar deoxyhemoglobin changes. We apply this new analysis tool to experimental data acquired simultaneously with both DOT and BOLD imaging during a motor task, demonstrate the ability to more robustly estimate hemoglobin changes in comparison to DOT alone, and show how this approach can provide cross-calibrated estimates of hemoglobin changes. Using this multimodal method, we estimate the calibration of the 3 tesla BOLD signal to be -0.55%+/-0.40% signal change per micromolar change of deoxyhemoglobin.

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References
1.
Detre J, Wang J . Technical aspects and utility of fMRI using BOLD and ASL. Clin Neurophysiol. 2002; 113(5):621-34. DOI: 10.1016/s1388-2457(02)00038-x. View

2.
Li A, Zhang Q, Culver J, Miller E, Boas D . Reconstructing chromosphere concentration images directly by continuous-wave diffuse optical tomography. Opt Lett. 2004; 29(3):256-8. DOI: 10.1364/ol.29.000256. View

3.
Chen H, Yao D, Liu Z . A comparison of Gamma and Gaussian dynamic convolution models of the fMRI BOLD response. Magn Reson Imaging. 2005; 23(1):83-8. DOI: 10.1016/j.mri.2004.11.002. View

4.
Ntziachristos V, Yodh A, Schnall M, Chance B . MRI-guided diffuse optical spectroscopy of malignant and benign breast lesions. Neoplasia. 2002; 4(4):347-54. PMC: 1661680. DOI: 10.1038/sj.neo.7900244. View

5.
Delpy D, Cope M, Cady E, Wyatt J, Hamilton P, Hope P . Cerebral monitoring in newborn infants by magnetic resonance and near infrared spectroscopy. Scand J Clin Lab Invest Suppl. 1987; 188:9-17. View