In vivo identification of the retinal layer containing photopigments in OCT images through correlation with two-photon psychophysics.


Journal

Scientific reports
ISSN: 2045-2322
Titre abrégé: Sci Rep
Pays: England
ID NLM: 101563288

Informations de publication

Date de publication:
04 Jul 2024
Historique:
received: 14 02 2024
accepted: 18 06 2024
medline: 5 7 2024
pubmed: 5 7 2024
entrez: 4 7 2024
Statut: epublish

Résumé

Two-photon vision enables near-infrared light perception in humans. We investigate the possibility to utilize this phenomenon as an indicator of the location of the outer segments of photoreceptor cells in the OCT images. Since two-photon vision is independent on OCT imaging, it could provide external to OCT reference relative to which positions of retinal layers visible in OCT imaging could be measured. We show coincidence between OCT imaging of outer retinal layers and two-photon light perception. The experiment utilizes an intrinsic nonlinear process in the retina, two-photon absorption of light by visual photopigments, which triggers perception of near-infrared light. By shifting the focus of the imaging/stimulus beam, we link the peak efficiency of two-photon vision with the visibility of outer segments of photoreceptor cells, which can be seen as in vivo identification of a retinal layer containing visual photopigments in OCT images. Determination of the in-focus retinal layer is achieved by analysis of en face OCT image contrast. We discuss experimental methods and experimental factors that may influence two-photon light perception and the accuracy of the results. The limits of resolution are discussed in analysis of the one-photon and two-photon point spread functions.

Identifiants

pubmed: 38965299
doi: 10.1038/s41598-024-65234-7
pii: 10.1038/s41598-024-65234-7
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

15459

Subventions

Organisme : National Science Centre, Poland
ID : 2018/31/B/ST7/03138
Organisme : Ministerio de Universidades and Unión Europea- NextGenerationEU
ID : Recualificación del Sistema Universitario Español

Informations de copyright

© 2024. The Author(s).

Références

Zysk, A. M., Nguyen, F. T., Oldenburg, A. L., Marks, D. L. & Boppart, S. A. Optical coherence tomography: A review of clinical development from bench to bedside. J. Biomed. Opt. 12, 051403 (2007).
pubmed: 17994864 doi: 10.1117/1.2793736
Gloesmann, M. et al. Histologic correlation of pig retina radial stratification with ultrahigh-resolution optical coherence tomography. Investig. Ophthalmol. Vis. Sci. 44, 1696–1703 (2003).
doi: 10.1167/iovs.02-0654
Anger, E. M. et al. Ultrahigh resolution optical coherence tomography of the monkey fovea. Identification of retinal sublayers by correlation with semithin histology sections. Exp. Eye Res. 78, 1117–1125 (2004).
pubmed: 15109918 doi: 10.1016/j.exer.2004.01.011
Chen, T. C. et al. Histologic correlation of in vivo optical coherence tomography images of the human retina. Am. J. Ophthalmol. 141, 1165–1168 (2006).
pubmed: 16765704 doi: 10.1016/j.ajo.2006.01.086
Drexler, W. et al. Ultrahigh-resolution ophthalmic optical coherence tomography. Nat. Med. 7, 502–507 (2001).
pubmed: 11283681 pmcid: 1950821 doi: 10.1038/86589
Srinivasan, V. J. et al. Characterization of outer retinal morphology with high-speed, ultrahigh-resolution optical coherence tomography. Investig. Ophthalmol. Vis. Sci. 49, 1571–1579 (2008).
doi: 10.1167/iovs.07-0838
Zawadzki, R. J. et al. Adaptive-optics optical coherence tomography for high-resolution and high-speed 3D retinal in vivo imaging. Opt. Express 13, 8532–8546 (2005).
pubmed: 19096728 doi: 10.1364/OPEX.13.008532
Staurenghi, G. et al. Proposed lexicon for anatomic landmarks in normal posterior segment spectral-domain optical coherence tomography: the ININ• OCT consensus. Ophthalmology 121, 1572–1578 (2014).
pubmed: 24755005 doi: 10.1016/j.ophtha.2014.02.023
Cuenca, N. et al. Interpretation of OCT and OCTA images from a histological approach: Clinical and experimental implications. Prog. Retin. Eye Res. 77, 100828 (2020).
pubmed: 31911236 doi: 10.1016/j.preteyeres.2019.100828
Jonnal, R. S. et al. Author response: Outer retinal bands. Investig. Ophthalmol. Vis. Sci. 56, 2507–2510 (2015).
doi: 10.1167/iovs.15-16756
Jonnal, R. S. et al. The properties of outer retinal band three investigated with adaptive-optics optical coherence tomography. Investig. Ophthalmol. Vis. Sci. 58, 4559–4568 (2017).
doi: 10.1167/iovs.16-21138
Bloom, S. M. & Singal, I. P. Revised classification of the optical coherence tomography outer retinal bands based on central serous chorioretinopathy analysis. Retina 41, 181–188 (2021).
pubmed: 32271277 doi: 10.1097/IAE.0000000000002792
Zhang, T., Kho, A. M., Yiu, G. & Srinivasan, V. J. Visible light optical coherence tomography (OCT) quantifies subcellular contributions to outer retinal band 4. Transl. Vis. Sci. Technol. 10, 30 (2021).
pubmed: 34817575 pmcid: 8626857 doi: 10.1167/tvst.10.3.30
Spaide, R. F. & Curcio, C. A. Anatomical correlates to the bands seen in the outer retina by optical coherence tomography: Literature review and model. Retina 31, 1609 (2011).
pubmed: 21844839 pmcid: 3619110 doi: 10.1097/IAE.0b013e3182247535
Cense, B., Chen, T. C., Park, B. H., Pierce, M. C. & De Boer, J. F. Thickness and birefringence of healthy retinal nerve fiber layer tissue measured with polarization-sensitive optical coherence tomography. Investig. Ophthalmol. Vis. Sci. 45, 2606–2612 (2004).
doi: 10.1167/iovs.03-1160
Baumann, B. et al. Polarization sensitive optical coherence tomography of melanin provides intrinsic contrast based on depolarization. Biomed. Opt. Express 3, 1670–1683 (2012).
pubmed: 22808437 pmcid: 3395490 doi: 10.1364/BOE.3.001670
Lujan, B. J. et al. Directional optical coherence tomography provides accurate outer nuclear layer and Henle fiber layer measurements. Retina 35, 1511 (2015).
pubmed: 25829348 pmcid: 4514548 doi: 10.1097/IAE.0000000000000527
Hillmann, D. et al. In vivo optical imaging of physiological responses to photostimulation in human photoreceptors. Proc. Natl. Acad. Sci. 113, 13138–13143 (2016).
pubmed: 27729536 pmcid: 5135337 doi: 10.1073/pnas.1606428113
Azimipour, M., Migacz, J. V., Zawadzki, R. J., Werner, J. S. & Jonnal, R. S. Functional retinal imaging using adaptive optics swept-source OCT at 1.6 MHz. Optica 6, 300–303 (2019).
pubmed: 33511257 pmcid: 7839998 doi: 10.1364/OPTICA.6.000300
Pandiyan, V. P. et al. The optoretinogram reveals the primary steps of phototransduction in the living human eye. Sci. Adv. 6, eabc1124 (2020).
pubmed: 32917686 pmcid: 9222118 doi: 10.1126/sciadv.abc1124
Zhang, P. et al. In vivo optophysiology reveals that g-protein activation triggers osmotic swelling and increased light scattering of rod photoreceptors. Proc. Natl. Acad. Sci. 114, E2937–E2946 (2017).
pubmed: 28320964 pmcid: 5389324
Zhang, P. et al. Measurement of diurnal variation in rod outer segment length in vivo in mice with the OCT optoretinogram. Investig. Ophthalmol. Vis. Sci. 61, 9–9 (2020).
doi: 10.1167/iovs.61.3.9
Pijewska, E. et al. Extraction of phase-based optoretinograms (ORG) from serial b-scans acquired over tens of seconds by mouse retinal raster scanning OCT system. Biomed. Opt. Express 12, 7849–7871 (2021).
pubmed: 35003871 pmcid: 8713677 doi: 10.1364/BOE.439900
Jonnal, R. S. et al. The cellular origins of the outer retinal bands in optical coherence tomography images. Investig. Ophthalmol. Vis. Sci. 55, 7904–7918 (2014).
doi: 10.1167/iovs.14-14907
Yao, X., Son, T., Kim, T.-H. & Le, D. Interpretation of anatomic correlates of outer retinal bands in optical coherence tomography. Exp. Biol. Med. 246, 2140–2150 (2021).
doi: 10.1177/15353702211022674
Ruskell, G. The human eye, structure and function clyde w. oyster; sinauer associates, sunderland, ma, 1999, 766 pages, hardback, isbn 0-87893-645-9, £ 49.95. Ophthalmic Physiol. Opt. 20, 349–350. https://doi.org/10.1046/j.1475-1313.2000.00552.x (2000).
Griffin, D. R., Hubbard, R. & Wald, G. The sensitivity of the human eye to infra-red radiation. J. Opt. Soc. Am. 37, 546–554 (1947).
pubmed: 20256359 doi: 10.1364/JOSA.37.000546
Sliney, D. H., Wangemann, R. T., Franks, J. K. & Wolbarsht, M. L. Visual sensitivity of the eye to infrared laser radiation. J. Opt. Soc. Am. 66, 339–341 (1976).
pubmed: 1262982 doi: 10.1364/JOSA.66.000339
Dmitriev, V. G. et al. Nonlinear perception of infrared radiation in the 800–1355 nm range with human eye. Sov. J. Quantum Electron. 9, 475 (1979).
doi: 10.1070/QE1979v009n04ABEH008913
Palczewska, G. et al. Human infrared vision is triggered by two-photon chromophore isomerization. Proc. Natl. Acad. Sci 111, E5445–E5454 (2014).
pubmed: 25453064 pmcid: 4273384 doi: 10.1073/pnas.1410162111
Artal, P., Manzanera, S., Komar, K., Gambín-Regadera, A. & Wojtkowski, M. Visual acuity in two-photon infrared vision. Optica 4, 1488–1491 (2017).
doi: 10.1364/OPTICA.4.001488
Zielińska, A., Kiluk, K., Wojtkowski, M. & Komar, K. System for psychophysical measurements of two-photon vision. Photonics Lett. Pol. 11, 1–3 (2019).
doi: 10.4302/plp.v11i1.837
Gorczynska, I., Bartuzel, M. M., Consejo, A., Sylwestrzak, M. & Stremplewski, P. Location of the retinal band containing photopigments in OCT images through human two-photon vision. Investig. Ophthalmol. Vis. Sci. 63, 4447–F0126 (2022).
Komar, K. Two-photon vision—seeing colors in infrared. Vis. Res. 220, 108404. https://doi.org/10.1016/j.visres.2024.108404 (2024).
doi: 10.1016/j.visres.2024.108404 pubmed: 38608547
Zipfel, W. R., Williams, R. M. & Webb, W. W. Nonlinear magic: Multiphoton microscopy in the biosciences. Nat. Biotechnol. 21, 1369–1377 (2003).
pubmed: 14595365 doi: 10.1038/nbt899
Zielinska, A., Ciacka, P., Szkulmowski, M. & Komar, K. The influence of stimulus defocus on two-photon visibility thresholds. Investig. Ophthalmol. Vis. Sci. 62, 511–511 (2021).
Komar, K. et al. Effect of stimulating beam diameter on two-photon visual thresholds. Investig. Ophthalmol. Vis. Sci. 63, 2233–F0441 (2022).
Doyle, H. et al. Boosting 2-photon vision with adaptive optics. Investig. Ophthalmol. Vis. Sci. 63, 4551–F0465 (2022).
Doyle, H. K. et al. Boosting 2-photon vision with adaptive optics. J. Vis. 23, 4–4 (2023).
pubmed: 37801322 pmcid: 10561787 doi: 10.1167/jov.23.12.4
Kashani, A. H. et al. Retinal thickness analysis by race, gender, and age using stratus OCT. Am. J. Ophthalmol. 149, 496–502 (2010).
pubmed: 20042179 doi: 10.1016/j.ajo.2009.09.025
Hofmann, L. & Palczewski, K. Advances in understanding the molecular basis of the first steps in color vision. Progress Retinal Eye Res. 49, 46–66 (2015).
doi: 10.1016/j.preteyeres.2015.07.004
Gil, P., Tabernero, J., Manzanera, S., Schwarz, C. & Artal, P. Color characterization of infrared two-photon vision. Optica 10, 1737–1744 (2023).
doi: 10.1364/OPTICA.507240
Marzejon, M. J., Kornaszewski, Ł, Wojtkowski, M. & Komar, K. Laser pulse train parameters determine the brightness of a two-photon stimulus. Biomed. Opt. Express 14, 2857–2872 (2023).
pubmed: 37342710 pmcid: 10278621 doi: 10.1364/BOE.489890
Komar, K. et al. Characterization of two-photon vision by measurements of sensitivity threshold. Investig. Ophthalmol. Vis. Sci. 57, 196–196 (2016).
Marzejon, M. J. et al. Two-photon microperimetry with picosecond pulses. Biomed. Opt. Express 12, 462–479 (2021).
pubmed: 33659083 doi: 10.1364/BOE.411168
Delori, F. C., Webb, R. H. & Sliney, D. H. Maximum permissible exposures for ocular safety (Ansi 2000), with emphasis on ophthalmic devices. J. Opt. Soc. Am. A 24, 1250–1265 (2007).
doi: 10.1364/JOSAA.24.001250
Gibson, S. F. & Lanni, F. Diffraction by a circular aperture as a model for three-dimensional optical microscopy. J. Opt. Soc. Am. A 6, 1357–1367 (1989).
pubmed: 2795290 doi: 10.1364/JOSAA.6.001357
Bartuzel, M. M. et al. High-resolution, ultrafast, wide-field retinal eye-tracking for enhanced quantification of fixational and saccadic motion. Biomed. Opt. Express 11, 3164–3180 (2020).
pubmed: 32637248 pmcid: 7316009 doi: 10.1364/BOE.392849
Bartuzel, M. M. et al. Double-mems retinal eye tracker with adjustable temporal and spatial sampling. In Ophthalmic Technologies XXXIII, PC123600V (SPIE, 2023).
Bartuzel, M. M. et al. LissEYEjous-retinal eye tracking based on fast Lissajous scanning design with two mems microscanners. Investig. Ophthalmol. Vis. Sci. 64, 5030–5030 (2023).
Sheehy, C. K., Tiruveedhula, P., Sabesan, R. & Roorda, A. Active eye-tracking for an adaptive optics scanning laser ophthalmoscope. Biomed. Opt. Express 6, 2412–2423 (2015).
pubmed: 26203370 pmcid: 4505698 doi: 10.1364/BOE.6.002412
Charman, W. N. & Heron, G. Microfluctuations in accommodation: an update on their characteristics and possible role. Ophthalmic Physiol. Opt. 35, 476–499 (2015).
pubmed: 26303445 doi: 10.1111/opo.12234
Del Águila-Carrasco, A. J., Kruger, P. B., Lara, F. & López-Gil, N. Aberrations and accommodation. Clin. Exp. Optom. 103, 95–103 (2020).
pubmed: 31284325 doi: 10.1111/cxo.12938
Bernucci, M. et al. Measuring S, M, and L cone sensitivities in the living human eye using phase-sensitive AO-OCT. Investig. Ophthalmol. Vis. Sci. 62, 52–52 (2021).
Jonnal, R. S. et al. Possible s-cone mosaic investigated with adaptive optics optical coherence tomography. Investig. Ophthalmol. Vis. Sci. 58, 308–308 (2017).
Jonas, J. B., Schneider, U. & Naumann, G. O. Count and density of human retinal photoreceptors. Graefe’s Arch. Clin. Exp. Ophthalmol. 230, 505–510 (1992).
doi: 10.1007/BF00181769
Komar, K., Solarz-Niesluchowski, J., Marzejon, M., Pniewski, J. & Wojtkowski, M. Comparison of repeatability of visual thresholds determination for one-and two-photon vision mechanisms. Investig. Ophthalmol. Vis. Sci. 64, 1512–1512 (2023).
Goodman, J. W. Statistical Optics (Wiley, 2015).
Stein, D. et al. A new quality assessment parameter for optical coherence tomography. Br. J. Ophthalmol. 90, 186–190 (2006).
pubmed: 16424531 pmcid: 1860175 doi: 10.1136/bjo.2004.059824
Santos, A. et al. Evaluation of autofocus functions in molecular cytogenetic analysis. J. Microsc. 188, 264–272 (1997).
pubmed: 9450330 doi: 10.1046/j.1365-2818.1997.2630819.x
Laser Institute of America. American national standard for safe use of lasers ANSI Z136. 1-2014 (2014).
Kingdom, F. A. & Prins, N. Chapter 3—varieties of psychophysical procedures. In Psychophysics 2nd edn (eds Kingdom, F. A. & Prins, N.) 37–54 (Academic Press, 2016). https://doi.org/10.1016/B978-0-12-407156-8.00003-7 .
doi: 10.1016/B978-0-12-407156-8.00003-7
Denk, W., Strickler, J. H. & Webb, W. W. Two-photon laser scanning fluorescence microscopy. Science 248, 73–76 (1990).
pubmed: 2321027 doi: 10.1126/science.2321027
Gholami, S. et al. Multistate multiconfiguration quantum chemical computation of the two-photon absorption spectra of bovine rhodopsin. J. Phys. Chem. Lett. 10, 6293–6300 (2019).
pubmed: 31545053 pmcid: 7141604 doi: 10.1021/acs.jpclett.9b02291
Gorczynska, I., Migacz, J. V., Zawadzki, R. J., Capps, A. G. & Werner, J. S. Comparison of amplitude-decorrelation, speckle-variance and phase-variance OCT angiography methods for imaging the human retina and choroid. Biomed. Opt. Express 7, 911–942 (2016).
pubmed: 27231598 pmcid: 4866465 doi: 10.1364/BOE.7.000911
Guizar-Sicairos, M., Thurman, S. T. & Fienup, J. R. Efficient subpixel image registration algorithms. Opt. Lett. 33, 156–158 (2008).
pubmed: 18197224 doi: 10.1364/OL.33.000156

Auteurs

Maciej M Bartuzel (MM)

Institute of Physics, Faculty of Physics, Astronomy and Informatics, Nicolaus Copernicus University in Torun, Toruń, Poland. maciej.bartuzel@gmail.com.

Alejandra Consejo (A)

Aragon Institute for Engineering Research (I3A), University of Zaragoza, Zaragoza, Spain.

Patrycjusz Stremplewski (P)

Institute of Physics, Faculty of Physics, Astronomy and Informatics, Nicolaus Copernicus University in Torun, Toruń, Poland.

Marcin Sylwestrzak (M)

Institute of Physics, Faculty of Physics, Astronomy and Informatics, Nicolaus Copernicus University in Torun, Toruń, Poland.

Maciej Szkulmowski (M)

Institute of Physics, Faculty of Physics, Astronomy and Informatics, Nicolaus Copernicus University in Torun, Toruń, Poland.

Iwona Gorczynska (I)

Institute of Physics, Faculty of Physics, Astronomy and Informatics, Nicolaus Copernicus University in Torun, Toruń, Poland.

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