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Determination of tissue optical properties by steady-state spatial frequency-domain reflectometry

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Abstract

A new non-invasive method to measure the optical properties of biological tissue is described. This method consists of illuminating the investigated sample with light which is spatially periodically modulated in intensity. The spatial modulation of the backscattered light and the diffuse reflectivity of the sample, both detected with an imaging technique, are used to deduce the absorption and reduced scattering coefficient from a table generated by Monte Carlo simulations. This principle has three major advantages: Firstly, it permits the immediate acquisition of the average values of the optical coefficients over a relatively large area (typ. 20 mm in diameter), thus avoiding the perturbations generated by small tissue heterogeneities; It also provides good flexibility for measuring the optical coefficients at various wavelengths and it does not require the use of a detector with a large dynamic range. The method was first validated on phantoms with known optical properties. Finally, we measured the optical properties of human skin at 400 nm, 500 nm, 633 nm and 700 nm in vivo.

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REFERENCES

  1. Ishimaru A. Wave propagation and scattering in random media. New York: Academic Press, 1978

    Google Scholar 

  2. Patterson MS, Wilson BC, Wyman DR. The propagation of optical radiation in tissue: 1. Models of radiation transport and their application. Lasers Med Sci 1991; 6:155–68

    Google Scholar 

  3. Wilson BC, Patterson MS. The physics of photodynamic therapy. Phys Med Biol 1986; 31:327–60

    Google Scholar 

  4. Wilson BC, Adam G. A Monte Carlo model for the absorption and flux distributions of light in tissue. Phys Med Biol 1983; 10:824–30

    Google Scholar 

  5. Arridge SR, Cope M, Delpy DT, The theoretical basis for the determination of optical pathlengths in tissue: temporal and frequency analysis. Phys Med Biol 1992; 37:1531–60

    Google Scholar 

  6. Star WM. Light dosimetry in vivo. Phys Med Biol 1997; 42:763–87

    Google Scholar 

  7. Richards-Kortum R, Sevick-Muraca E. Quantitative optical spectroscopy for tissue diagnosis. Annu Rev Phys Chem 1996; 47:555–606

    Google Scholar 

  8. Andersson-Engels S, af Klinteberg C, Svanberg K, Svanberg S. In vivo fluorescence imaging for tissue diagnostics. Phys Med Biol 1997; 47:815–24

    Google Scholar 

  9. Henyey LG, Greenstein JL. Diffuse radiation in the galaxy. Astrophys J 1941; 93:70–83

    Google Scholar 

  10. v.d.Hulst HC. Light Scattering by Small Particles, New York: Dover, 1981

    Google Scholar 

  11. Graaff R, Aarnoudse JG, de Mul FF, Jentink HW. Light propagation parameters for anisotropically scattering media based on a rigorous solution of the transport equation. Appl Opt 1989; 28:2273–9

    Google Scholar 

  12. Cheong W, Prahl SA, Welch AJ. A review of the optical properties of biological tissues. IEEE J Quantum Electron 1990; 26:2166–85

    Google Scholar 

  13. Graaff R, Aarnoudse JG, de Mul FF, Jentink HW. Similarity relations for anisotropic scattering in absorbing media. Opt Eng 1993; 32:244–52

    Google Scholar 

  14. Yoon G, Prahl SA, Welch AJ. Accuracies of the diffusion approximation and its similarity relations for laser irradiated biological media. Appl Opt 1989; 28:2250–5

    Google Scholar 

  15. Graaff R, Dassel ACM, Koelink MH et al. Optical properties of human dermis in vitro and in vivo. Appl Opt 1993; 32:435–47

    Google Scholar 

  16. Prahl SA, Vitkin IA. Determination of optical properties of turbid media using pulsed photothermal radiometry. Phys Med Biol 1992; 37:1203–17

    Google Scholar 

  17. Patterson MS, Chance B, Wilson BC. Time resolved reflectance and transmittance for noninvasive measurement of tissue optical properties. Appl Opt 1989; 28:2331–6

    Google Scholar 

  18. Patterson MS, Moulton JD, Wilson BC et al. Frequency-domain reflectance for the determination of scattering and absorption properties of tissue. Appl Opt 1991; 30:4474–6

    Google Scholar 

  19. Groenhuis RAJ, Ferwerdea HA, Ten Bosch JJ. Scattering and absorption of turbid materials determined from reflection measurements. 1: Theory. Appl Opt 1983; 22:2456–62

    Google Scholar 

  20. Groenhuis RAJ, Ten Bosch JJ, Ferwerdea HA. Scattering and absorption of turbid materials determined from reflection measurements. 2: Measuring method and calibration. Appl Opt 1983; 22:2463–7

    Google Scholar 

  21. Kienle A, Lilge L, Patterson MS et al. Spatially resolved absolute diffuse reflectance measurements for noninvasive determination of the optical scattering and absorption coefficients of biological tissue. Appl Opt 1996; 35: 2304–14

    Google Scholar 

  22. Bays B, Wagnières G, Robert D et al. Clinical determination of tissue optical properties by endoscopic spatially resolved reflectometry. Appl Opt 1996; 35:1756–66

    Google Scholar 

  23. Wang L, Jacques SL. Monte Carlo Modeling of Light Transport in Multi-Layered Tissues in Standard C, University of Texas MD, Anderson Cancer Center, Houston, Texas, 1992

    Google Scholar 

  24. Wagnières, G. Photochimiotherapie et photodeteçtion du cancer a l'aide de photosensibilisateurs ou de colorants fluorescents, These No. 1024, EPFL, Lausanne, Switzerland, 1992

  25. Kienle A, Lilge L, Patterson MS. Investigation of multi-layered tissue with in vivo reflectance measurements. Proc SPIE 2326, Lille, 1994:212–21

    Google Scholar 

  26. van Staveren HJ, Moes CJM, van Marle J et al. Light scattering in intralipid 10% in the wavelength range of 400–1000 run. Appl Opt 1991; 30:4507–14

    Google Scholar 

  27. Wagnières G, Cheng S, Zellwegger M et al. An optical phantom with tissue-like properties in the visible for use in PDT and fluorescence spectroscopy. Phys Med Biol 1997; 42:1–12

    Google Scholar 

  28. Bays B, Wagnières G, Robert D et al. A three-dimensional optical phantom and its applications in photodynamic therapy. Lasers Surg Med 1997; 21:227–34

    Google Scholar 

  29. Madsen SJ, Patterson MS, Wilson BC. The use of India ink as an optical absorber in tissue-simulating phantoms. Phys Med Biol 1992; 37:985–93

    Google Scholar 

  30. van Staveren HJ, Beek JF, Ramaekers JWH et al. Integrating sphere effect in whole bladder wall photodynamic therapy: I. 532 nm versus 630 nm optical irradiation. Phys Med Biol 1994; 39:947–59

    Google Scholar 

  31. Kienle A, Patterson MS. Improved solutions of the steady-state and time-resolved diffusion equations for reflectance from a semi-infinite turbid medium. J Opt Soc A 1997; 14:246–54

    Google Scholar 

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Dögnitz, N., Wagnières, G. Determination of tissue optical properties by steady-state spatial frequency-domain reflectometry. Laser Med Sci 13, 55–65 (1998). https://doi.org/10.1007/BF00592960

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  • DOI: https://doi.org/10.1007/BF00592960

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