| Literature DB >> 31820596 |
Xu U Zhang1,2, Piet van der Zee3, Isabella Atzeni4, Dirk J Faber1,2, Ton G van Leeuwen1,2, Henricus J C M Sterenborg1,2,5.
Abstract
When analyzing multidiameter single-fiber reflectance (MDSFR) spectra, the inhomogeneous distribution of melanin pigments in skin tissue is usually not accounted for. Especially in heavily pigmented skins, this can result in bad fits and biased estimation of tissue optical properties. A model is introduced to account for the inhomogeneous distribution of melanin pigments in skin tissue. In vivo visible MDSFR measurements were performed on heavily pigmented skin of type IV to VI. Skin tissue optical properties and related physiological properties were extracted from the measured spectra using the introduced model. The absorption of melanin pigments described by the introduced model demonstrates a good correlation with the co-localized measurement of the well-known melanin index.Entities:
Keywords: inhomogeneous; melanin; melanin index; multidiameter single-fiber reflectance spectroscopy; optical properties; skin
Year: 2019 PMID: 31820596 PMCID: PMC7006040 DOI: 10.1117/1.JBO.24.12.127001
Source DB: PubMed Journal: J Biomed Opt ISSN: 1083-3668 Impact factor: 3.170
Fig. 1Schematic visualization of the interaction between the detected photons and the inhomogeneously distributed absorbers for MDSFR measurements using 400- and diameter fibers.
Fig. 2MDSFR system schematic: light from the source is split into two fibers and led to two shutters that guide the light either to the connector of the or the measurement fibers that first transport the light to the tissue and subsequently collect backscattered light from the tissue and guide it back to the spectrometer. The setup has two channels that are activated one-by-one. The two measurement fibers are integrated into a single-measurement probe. The operation of the setup is controlled by a LabView program (LabView, National Instruments, Austin, Texas).
Fig. 3MDSFR spectra fit of volunteer 8. The error bars indicate the 95% confidence interval calculated from 10 sequential measurements. Spectra from both fibers were fitted simultaneously.
Fitted parameters of the reduced scattering coefficient and the corresponding 95% confidence intervals; MI measured by the mexameter ( uncertainty) and the respective skin type.
| Volunteer no. | MI (-) | Skin type | ||
|---|---|---|---|---|
| 1 | VI | |||
| 2 | VI | |||
| 3 | IV | |||
| 4 | IV | |||
| 5 | IV | |||
| 6 | IV | |||
| 7 | VI | |||
| V8 | VI | |||
| 9 | IV | |||
| 10 | VI | |||
| 11 | VI | |||
| 12 | V |
Fig. 4The average reduced scattering coefficient of all volunteers.
Fig. 5The average (a) anisotropy factor and (b) gamma.
Melanin related fit parameters and the corresponding 95% confidence intervals. The transmission at 700 nm calculated using the average of the melanin related fit parameters; MI measured by the mexameter ( uncertainty).
| Volunteer no. | Eumelanin ( | Pheomelanin ( | Surface fraction (-) | Transmission at 700 nm (-) | MI (-) |
|---|---|---|---|---|---|
| 1 | 0.43 | ||||
| 2 | 0.55 | ||||
| 3 | 0.79 | ||||
| 4 | 0.85 | ||||
| 5 | 0.78 | ||||
| 6 | 0.87 | ||||
| 7 | 0.38 | ||||
| 8 | 0.41 | ||||
| 9 | 0.80 | ||||
| 10 | 0.55 | ||||
| 11 | 0.60 | ||||
| 12 | 0.68 |
Fig. 6The transmission spectra of the melanin layer based on the average of melanin-related fit parameters.
Fitted vascular parameters and the corresponding 95% confidence intervals.
| Volunteer no. | ||||||
|---|---|---|---|---|---|---|
| Oxygen saturation (-) | Hemoglobin concentration ( | Vessel diameter ( | Oxygen saturation (-) | Hemoglobin concentration ( | Vessel diameter ( | |
| 1 | ||||||
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Fig. 7The dependence of the transmission of the melanin layer on the fiber diameter.
Fig. 8The correlation between MI and the average transmission of the melanin layer at 700 nm.
Fig. 9The correlation between the sum of the surface density of melanin pigments: (a) the fitted reduced scattering coefficient at 700 nm and (b) the scattering slope .