Open Access
17 July 2023 Robustness of tissue oxygenation estimates by continuous wave space-resolved near infrared spectroscopy
Author Affiliations +
Abstract

Significance

Continuous wave near infrared spectroscopy (CW-NIRS) is widely exploited in clinics to estimate skeletal muscles and brain cortex oxygenation. Spatially resolved spectroscopy (SRS) is generally implemented in commercial devices. However, SRS suffers from two main limitations: the a priori assumption on the spectral dependence of the reduced scattering coefficient [μs(λ)] and the modeling of tissue as homogeneous.

Aim

We studied the accuracy and robustness of SRS NIRS. We investigated the errors in retrieving hemodynamic parameters, in particular tissue oxygen saturation (StO2), when μs(λ) was varied from expected values, and when layered tissue was considered.

Approach

We simulated hemodynamic variations mimicking real-life scenarios for skeletal muscles. Simulations were performed by exploiting the analytical solutions of the photon diffusion equation in different geometries: (1) semi-infinite homogeneous medium and constant μs(λ); (2) semi-infinite homogeneous medium and linear changes in μs(λ); (3) two-layered media with a superficial thickness s1 = 5, 7.5, 10 mm and constant μs(λ). All simulated data were obtained at source-detector distances ρ = 35, 40, 45 mm, and analyzed with the SRS approach to derive hemodynamic parameters (concentration of oxygenated and deoxygenated hemoglobin, total hemoglobin concentration, and tissue oxygen saturation, StO2) and their relative error.

Results

Variations in μs(λ) affect the estimated StO2 (up to ±10 % ), especially if changes are different at the two wavelengths. However, the main limitation of the SRS method is the presence of a superficial layer: errors strongly larger than 20% were retrieved for the estimated StO2 when the superficial thickness exceeds 5 mm.

Conclusions

These results highlight the need for more sophisticated strategies (e.g., the use of multiple short and long distances) to reduce the influence of superficial tissues in retrieving hemodynamic parameters and warn the SRS users to be aware of the intrinsic limitation of this approach, particularly when exploited in the clinical environment.

CC BY: © The Authors. Published by SPIE under a Creative Commons Attribution 4.0 International License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI.
Caterina Amendola, Davide Contini, Rebecca Re, Lorenzo Spinelli, Lorenzo Frabasile, Pietro Levoni, and Alessandro Torricelli "Robustness of tissue oxygenation estimates by continuous wave space-resolved near infrared spectroscopy," Journal of Biomedical Optics 28(7), 075002 (17 July 2023). https://doi.org/10.1117/1.JBO.28.7.075002
Received: 14 March 2023; Accepted: 26 June 2023; Published: 17 July 2023
Lens.org Logo
CITATIONS
Cited by 4 scholarly publications.
Advertisement
Advertisement
KEYWORDS
Tissues

Hemodynamics

Scattering

Near infrared spectroscopy

Oxygenation

Error analysis

Simulations

Back to Top