Direct measurement of tissue blood flow and metabolism with diffuse optics

Author:

Mesquita Rickson C.12,Durduran Turgut3,Yu Guoqiang4,Buckley Erin M.1,Kim Meeri N.1,Zhou Chao5,Choe Regine6,Sunar Ulas7,Yodh Arjun G.1

Affiliation:

1. Department of Physics and Astronomy, University of Pennsylvania, Philadelphia, PA 19104, USA

2. Institute of Physics ‘Gleb Wataghin, University of Campinas – UNICAMP, Campinas, SP 13083–859, Brazil

3. ICFO – Institut de Ciències Fotòniques, Mediterranean Technology Park, Castelldefels, Barcelona 08860, Spain

4. Center for Biomedical Engineering, University of Kentucky, Lexington, KY 40506, USA

5. Department of Electrical Engineering and Computer Science and Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, MA 02139, USA

6. Department of Biomedical Engineering, University of Rochester, Rochester, NY 14642, USA

7. Department of Cell Stress Biology and PDT Center, Roswell Park Cancer Institute, Buffalo, NY 14263, USA

Abstract

Diffuse optics has proven useful for quantitative assessment of tissue oxy- and deoxyhaemoglobin concentrations and, more recently, for measurement of microvascular blood flow. In this paper, we focus on the flow monitoring technique: diffuse correlation spectroscopy (DCS). Representative clinical and pre-clinical studies from our laboratory illustrate the potential of DCS. Validation of DCS blood flow indices in human brain and muscle is presented. Comparison of DCS with arterial spin-labelled MRI, xenon-CT and Doppler ultrasound shows good agreement (0.50< r <0.95) over a wide range of tissue types and source detector distances, corroborating the potential of the method to measure perfusion non-invasively and in vivo at the microvasculature level. All-optical measurements of cerebral oxygen metabolism in both rat brain, following middle cerebral artery occlusion, and human brain, during functional activation, are also described. In both situations, the use of combined DCS and diffuse optical spectroscopy/near-infrared spectroscopy to monitor changes in oxygen consumption by the tissue is demonstrated. Finally, recent results spanning from gene expression-induced angiogenic response to stroke care and cancer treatment monitoring are discussed. Collectively, the research illustrates the capability of DCS to quantitatively monitor perfusion from bench to bedside, providing results that match up both with literature findings and with similar experiments performed with other techniques.

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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