Assessment of retinal vein pulsation through video-ophthalmoscopy and simultaneous biosignals acquisition

. 2023 Jun 01 ; 14 (6) : 2645-2657. [epub] 20230512

Status PubMed-not-MEDLINE Jazyk angličtina Země Spojené státy americké Médium electronic-ecollection

Typ dokumentu časopisecké články

Perzistentní odkaz   https://www.medvik.cz/link/pmid37342721

The phenomenon of retinal vein pulsation is still not a deeply understood topic in retinal hemodynamics. In this paper, we present a novel hardware solution for recording retinal video sequences and physiological signals using synchronized acquisition, we apply the photoplethysmographic principle for the semi-automatic processing of retinal video sequences and we analyse the timing of the vein collapse within the cardiac cycle using of an electrocardiographic signal (ECG). We measured the left eyes of healthy subjects and determined the phases of vein collapse within the cardiac cycle using a principle of photoplethysmography and a semi-automatic image processing approach. We found that the time to vein collapse (Tvc) is between 60 ms and 220 ms after the R-wave of the ECG signal, which corresponds to 6% to 28% of the cardiac cycle. We found no correlation between Tvc and the duration of the cardiac cycle and only a weak correlation between Tvc and age (0.37, p = 0.20), and Tvc and systolic blood pressure (-0.33, p = 0.25). The Tvc values are comparable to those of previously published papers and can contribute to the studies that analyze vein pulsations.

Zobrazit více v PubMed

Tornow R.-P., Odstrcilik J., Kolar R., “Time-resolved quantitative inter-eye comparison of cardiac cycle-induced blood volume changes in the human retina,” Biomed. Opt. Express 9(12), 6237 (2018).10.1364/BOE.9.006237 PubMed DOI PMC

Kolář R., Odstrčilík J., Tornow R.-P., “Photoplethysmographic analysis of retinal videodata based on the Fourier domain approach,” Biomed. Opt. Express 12(12), 7405–7421 (2021).10.1364/BOE.441451 PubMed DOI PMC

Evans D. W., Hosking S. L., Embleton S. J., Morgan A. J., Bartlett J. D., “Spectral content of the intraocular pressure pulse wave: glaucoma patients versus normal subjects,” Arch. Clin. Exp. Ophthalmol. 240(6), 475–480 (2002).10.1007/s00417-002-0460-4 PubMed DOI

Wagshul M. E., Eide P. K., Madsen J. R., “The pulsating brain: A review of experimental and clinical studies of intracranial pulsatility,” Fluids Barriers CNS 8(1), 5–23 (2011).10.1186/2045-8118-8-5 PubMed DOI PMC

Levine D. N., Bebie H., “Phase and amplitude of spontaneous retinal vein pulsations: An extended constant inflow and variable outflow model,” Microvasc. Res. 106, 67–79 (2016).10.1016/j.mvr.2016.03.005 PubMed DOI

Gugleta K., Kochkorov A., Katamay R., Zawinka C., Flammer J., Orgul S., “On Pulse-Wave Propagation in the Ocular Circulation,” Investig. Opthalmology Vis. Sci. 47(9), 4019 (2006).10.1167/iovs.06-0168 PubMed DOI

Bollinger O., Saruhan Y., Gugleta K., “Analysis of Retinal Vessel Pulsations with Electrocardiographic Gating,” Klin. Monbl. Augenheilkd. 237(04), 464–468 (2020).10.1055/a-1085-9250 PubMed DOI

Attariwala R., Glucksberg M. R., Aitken V., Cuzzani O. E., Gimbel H. V., “Evaluation of the spontaneous retinal vein pulsation,” in The First Joint BMES/EMBS Conference (1999), p. 1314.

Kain S., Morgan W. H., Yu D. Y., “New observations concerning the nature of central retinal vein pulsation,” Br. J. Ophthalmol. 94(7), 854–857 (2010).10.1136/bjo.2009.169813 PubMed DOI

Kim M., Lee E. J., Seo J. H., Kim T. W., “Relationship of spontaneous retinal vein pulsation with ocular circulatory cycle,” PLoS One 9(5), e97943 (2014).10.1371/journal.pone.0097943 PubMed DOI PMC

Moret F., Reiff C. M., Lagrèze W. A., Bach M., “Quantitative Analysis of Fundus-Image Sequences Reveals Phase of Spontaneous Venous Pulsations,” Transl. Vis. Sci. Technol. 4(5), 3 (2015).10.1167/tvst.4.5.3 PubMed DOI PMC

Chen H. C., Patel V., Chen J., Rassam S. M., Kohner E. M., “Vessel diameter changes during the cardiac cycle,” Eye (Lond). 8(Pt 1), 97–103 (1994).10.1038/eye.1994.19 PubMed DOI

Kumar D. K., Aliahmad B., Hao H., Che Azemin M. Z., Kawasaki R., “A method for visualization of fine retinal vascular pulsation using nonmydriatic fundus camera synchronized with electrocardiogram,” ISRN Ophthalmol. 2013, 1–9 (2013).10.1155/2013/865834 PubMed DOI PMC

Morgan W. H., Abdul-Rahman A., Yu D.-Y., Hazelton M. L., Betz-Stablein B., Lind C. R. P., “Objective Detection of Retinal Vessel Pulsation,” PLoS One 10(2), e0116475 (2015).10.1371/journal.pone.0116475 PubMed DOI PMC

Seo J. H., Kim T.-W., Weinreb R. N., Kim Y. A., Kim M., “Relationship of intraocular pressure and frequency of spontaneous retinal venous pulsation in primary open-angle glaucoma,” Ophthalmology 119(11), 2254–2260 (2012).10.1016/j.ophtha.2012.06.007 PubMed DOI

Chou C. C., Hsu M. Y., Lin C. H., Lin C. C., Wang C. Y., Shen Y. C., Wang I. J., “Risk of developing open-angle glaucoma in patients with carotid artery stenosis: A nationwide cohort study,” PLoS One 13(4), e0194533 (2018).10.1371/journal.pone.0194533 PubMed DOI PMC

Morgan W. H., Vukmirovic A., Abdul-Rahman A., Khoo Y. J., Kermode A. G., Lind C. R., Dunuwille J., Yu D. Y., “Zero retinal vein pulsation amplitude extrapolated model in non-invasive intracranial pressure estimation,” Sci. Rep. 12(1), 5190 (2022).10.1038/s41598-022-09151-7 PubMed DOI PMC

Abegão Pinto L., Vandewalle E., De Clerck E., Marques-Neves C., Stalmans I., “Lack of spontaneous venous pulsation: possible risk indicator in normal tension glaucoma?” Acta Ophthalmol. 91(6), 514–520 (2013).10.1111/j.1755-3768.2012.02472.x PubMed DOI

Morgan W. H., Hazelton M. L., Yu D.-Y., “Retinal venous pulsation: Expanding our understanding and use of this enigmatic phenomenon,” Prog. Retin. Eye Res. 55, 82–107 (2016).10.1016/j.preteyeres.2016.06.003 PubMed DOI

Harder B., Jonas J. B., “Frequency of spontaneous pulsations of the central retinal vein,” Br. J. Ophthalmol. 91(3), 401–402 (2007).10.1136/bjo.2006.103341 PubMed DOI PMC

Morgan W. H., Hazelton M. L., Betz-Stablein B. D., Yu D.-Y., Lind C. R. P., Ravichandran V., House P. H., Mor-Gan W. H., “Photoplethysmographic Measurement of Various Retinal Vascular Pulsation Parameters and Measurement of the Venous Phase Delay,” Invest. Ophthalmol. Visual Sci. 55(9), 5998–6006 (2014).10.1167/iovs.14-15104 PubMed DOI

Kolar R., Vicar T., Odstrcilik J., Valterova E., Skorkovska K., Kralik M., Tornow R.-P., “Multispectral retinal video-ophthalmoscope with fibre optic illumination,” J. Biophotonics 15(9), e202200094 (2022).10.1002/jbio.202200094 PubMed DOI

Sliney D., Aron-Rosa D., DeLori F., Fankhauser F., Landry R., Mainster M., Marshall J., Rassow B., Stuck B., Trokel S., West T. M., Wolffe M., “Adjustment of guidelines for exposure of the eye to optical radiation from ocular instruments: statement from a task group of the International Commission on Non-Ionizing Radiation Protection (ICNIRP),” Appl. Opt. 44(11), 2162–2176 (2005).10.1364/AO.44.002162 PubMed DOI

Kolar R., Liberdova I., Odstrcilik J., Hracho M., Tornow R. P., “Detection of distorted frames in retinal video-sequences via machine learning,” Proc. SPIE 10413, 104130A (2017).10.1117/12.2284172 DOI

Rosner B., “Percentage points for a generalized esd many-outlier procedure,” Technometrics 25(2), 165–172 (1983).10.1080/00401706.1983.10487848 DOI

Michelson G., Harazny J., “Relationship between ocular pulse pressures and retinal vessel velocities,” Ophthalmology 104(4), 664–671 (1997).10.1016/S0161-6420(97)30254-1 PubMed DOI

Labounková I., Labounek R., Kolář R., Tornow R. P., Babbs C. F., McClelland C. M., Miller B. R., Nestrašil I., “Heart rate and age modulate retinal pulsatile patterns,” Commun. Biol. 5(1), 582 (2022).10.1038/s42003-022-03441-6 PubMed DOI PMC

Legler U., Jonas J. B., “Assessment of the spontaneous pulsations of the central retinal vein in daily ophthalmic practice,” Clin. Experiment. Ophthalmol. 35(9), 870–871 (2007).10.1111/j.1442-9071.2007.01641.x PubMed DOI

Wong S. H., White R. P., “The clinical validity of the spontaneous retinal venous pulsation,” J. Neuroophthalmol. 33(1), 17–20 (2013).10.1097/WNO.0b013e3182622207 PubMed DOI

Tornow R.-P., Odstrcilik J., Kolar R., “A multi-color video-ophthalmoscopes allows to measure the spectral distribution of light absorption of blood in the human retina,” Front. Med. 10, 1125154 (2023).10.3389/fmed.2023.1125154 PubMed DOI PMC

Najít záznam

Citační ukazatele

Nahrávání dat ...

    Možnosti archivace