Serial dual-wavelength illumination for retinal vessel oximetry using a conventional fundus camera: a proof-of-concept study.
M, T., D, M., & M, H. (2026). Serial dual-wavelength illumination for retinal vessel oximetry using a conventional fundus camera: a proof-of-concept study.. BMC ophthalmology. https://doi.org/10.1186/s12886-026-05216-7
M T, D M, M H. Serial dual-wavelength illumination for retinal vessel oximetry using a conventional fundus camera: a proof-of-concept study.. BMC ophthalmology. 2026; doi: 10.1186/s12886-026-05216-7
M T, D M, M H. Serial dual-wavelength illumination for retinal vessel oximetry using a conventional fundus camera: a proof-of-concept study.[J]. BMC ophthalmology. 2026. DOI: 10.1186/s12886-026-05216-7.
@article{m2026,
author = {Tarhan M and Meller D and Hammer M},
title = {Serial dual-wavelength illumination for retinal vessel oximetry using a conventional fundus camera: a proof-of-concept study.},
journal = {BMC ophthalmology},
year = {2026},
doi = {10.1186/s12886-026-05216-7},
note = {PMID: 42576210},
}
TY - JOUR AU - Tarhan M AU - Meller D AU - Hammer M TI - Serial dual-wavelength illumination for retinal vessel oximetry using a conventional fundus camera: a proof-of-concept study. T2 - BMC ophthalmology PY - 2026 DO - 10.1186/s12886-026-05216-7 AN - PMID:42576210 ER -
PURPOSE: Retinal vessel oximetry requires fundus images at two wavelengths with different hemoglobin absorption characteristics. Simultaneous acquisition using one-chip color cameras may be affected by incomplete spectral separation of detector channels, whereas multi-chip systems such as 3-chip CCD cameras can achieve improved spectral separation. We present a serial dual-wavelength illumination approach integrated into a conventional fundus camera and compare oxygen saturation measurements with those obtained from a commercial retinal oximeter. METHODS: A custom LED illumination unit was fiber-coupled into a fundus camera to provide serial illumination at 548 nm (isosbestic hemoglobin wavelength) and 605 nm (oxygen-sensitive wavelength with differential absorption between oxy- and deoxyhemoglobin), each for 250 ms. Corneal irradiance was 33 mW/cm² at 548 nm and 7 mW/cm² at 605 nm. Sequentially acquired images were registered and analyzed using established retinal oximetry algorithms. Mean arterial and venous oxygen saturation values were compared with measurements from a commercial retinal oximeter in nine participants undergoing routine ophthalmic examination. Linear regression analysis was performed to assess the association between methods, and agreement was additionally evaluated using Bland-Altman analysis. RESULTS: Mean arterial oxygen saturation was 99.4 ± 5.7% with serial illumination and 100.4 ± 3.0% with standard oximetry. Mean venous oxygen saturation was 71.5 ± 7.0% and 69.5 ± 11.6%, respectively. The mean absolute differences between both techniques were 3.6 ± 2.7% for arteries and 8.4 ± 9.3% for veins. Bland-Altman analysis showed a small arterial bias of 0.94% with limits of agreement from - 7.9% to + 9.8%. For venous measurements, bias was - 1.98% with wider limits of agreement (- 26.9% to + 22.9%). Arterial measurements showed borderline non-significant correlation (R = 0.606, p = 0.084). Venous measurements showed no correlation. CONCLUSIONS: Serial illumination is feasible for retinal vessel oximetry and mitigates detector-level spectral crosstalk associated with simultaneous dual-wavelength imaging using one-chip color cameras. Arterial measurements showed only a small systematic bias compared with the commercial retinal oximeter, whereas venous measurements demonstrated greater variability, indicating the need for further optimization and validation.