Quantitative real-time optical imaging of the tissue metabolic rate of oxygen consumption

  • Ghijsen M
  • Lentsch G
  • Gioux S
  • et al.
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Abstract

© The Authors. Published by SPIE under a Creative Commons Attribution 3.0 Unported License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI. The tissue metabolic rate of oxygen consumption (tMRO 2) is a clinically relevant marker for a number of pathologies including cancer and arterial occlusive disease. We present and validate a noncontact method for quantitatively mapping tMRO 2 over a wide, scalable field of view at 16frames/s. We achieve this by developing a dual-wavelength, near-infrared coherent spatial frequency-domain imaging (cSFDI) system to calculate tissue optical properties (i.e., absorption, μ a, and reduced scattering, μs′, parameters) as well as the speckle flow index (SFI) at every pixel. Images of tissue oxy- and deoxyhemoglobin concentration ([HbO 2 ]and [HHb]) are calculated from optical properties and combined with SFI to calculate tMRO 2. We validate the system using a series of yeast-hemoglobin tissue-simulating phantoms and conduct in vivo tests in humans using arterial occlusions that demonstrate sensitivity to tissue metabolic oxygen debt and its repayment. Finally, we image the impact of cyanide exposure and toxicity reversal in an in vivo rabbit model showing clear instances of mitochondrial uncoupling and significantly diminished tMRO 2. We conclude that dual-wavelength cSFDI provides rapid, quantitative, wide-field mapping of tMRO 2 that can reveal unique spatial and temporal dynamics relevant to tissue pathology and viability.

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APA

Ghijsen, M. T., Lentsch, G. R., Gioux, S., Brenner, M., Durkin, A. J., Choi, B., & Tromberg, B. J. (2018). Quantitative real-time optical imaging of the tissue metabolic rate of oxygen consumption. Journal of Biomedical Optics, 23(03), 1. https://doi.org/10.1117/1.jbo.23.3.036013

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