Initial report of quantification of retinal blood flow velocity in normal human subjects using the Retinal Functional Imager (RFI)

被引:32
作者
Gennady Landa
Anisha A. Jangi
Patricia M. T. Garcia
Richard B. Rosen
机构
[1] Retina Center, Department of Ophthalmology, New York Eye and Ear Infirmary, New York, NY 10003
[2] New York Medical College, Valhalla, NY
关键词
Human retina; Retinal blood flow velocity; Retinal Functional Imager;
D O I
10.1007/s10792-012-9547-z
中图分类号
学科分类号
摘要
The Retinal Functional Imager (RFI) is a novel method for assessing retinal blood flow (RBF) velocity. The purpose of this study was to evaluate RBF velocities in normal human retinas using the RFI. RBF velocity measurements were performed in normal subjects using the RFI (Optical Imaging Ltd., Rehovot, Israel) at the Retina Center of The New York Eye and Ear Infirmary, New York, USA. Using proprietary software processing, the characteristics of the RBF were visualized and measured. The study population comprised fifty-four eyes of 27 normal subjects (20 male and 34 female). The average arterial blood flow velocity was 4.6 ± 0.6 mm/s in males and 4.8 ± 0.7 mm/s in females (the difference was not statistically significant, p value = 0.27). The average venous blood flow velocity was 3.8 ± 0.5 mm/s in males and 3.6 ± 0.4 mm/s in females (the difference again was not statistically significant, p value = 0.11). The average arterial blood flow velocity was 4.8 ± 0.5 mm/s in the right eye and 4.6 ± 0.7 mm/s in the left eye. The average venous blood flow velocity was 3.7 ± 0.4 mm/s in the right eye and 3.6 ± 0.3 mm/s in the left eye. Venous and arterial blood flow velocities were found to be faster in the right eye than in the left eye in our sample, but the differences were not statistically significant (p value = 0.53 and 0.33, respectively). This is the first report of quantification of the RBF using the RFI. The RFI appears to be an effective tool in quantitative evaluations of RBF velocities. The values from the study constitute a normative database which can be used to evaluate and compare eyes with known or suspected pathology. © Springer Science+Business Media B.V. 2012.
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页码:211 / 215
页数:4
相关论文
共 18 条
[1]  
Horio N., Clermont A.C., Abiko A., Abiko T., Shoelson B.D., Bursell S.-E., Feener E.P., Angiotensin AT <sub>1</sub> receptor antagonism normalizes retinal blood flow and acetylcholine-induced vasodiliation in normotensive diabetic rats, Diabetologia, 47, 1, pp. 113-123, (2004)
[2]  
Hata Y., Clermont A., Yamauchi T., Pierce E.A., Suzuma I., Kagokawa H., Yoshikawa H., Robinson G.S., Ishibashi T., Hashimoto T., Umeda F., Bursell S.E., Aillo L.P., Retinal expression, regulation and functional bioactivity of prostacyclin-stimulating factor, Journal of Clinical Investigation, 106, 4, pp. 541-550, (2000)
[3]  
Kurioka Y., Inaba M., Kawagishi T., Emoto M., Kumeda Y., Inoue Y., Morii H., Nishizawa Y., Increased retinal blood flow in patients with Graves' disease: Influence of thyroid function and ophthalmopathy, European Journal of Endocrinology, 144, 2, pp. 99-107, (2001)
[4]  
Feke G.T., Tagawa H., Deupree D.M., Goger D.G., Sebag J., Weiter J.J., Blood flow in the normal human retina, Investigative Ophthalmology and Visual Science, 30, 1, pp. 58-65, (1989)
[5]  
Harris A., Et al., Atlas of Ocular Blood Flow: Vascular Anatomy, Pathophysiology and Metabolism, (2003)
[6]  
Wang Y., Bower B.A., Izatt J.A., Tan O., Huang D., In vivo total retinal blood flow measurement by Fourier domain Doppler optical coherence tomography, Journal of Biomedical Optics, 12, 4, (2007)
[7]  
Pournaras C.J., Rungger-Brandle E., Riva C.E., Et al., Regulation of retinal blood flow in health and disease, Prog Retin Eye Res, 27, 3, pp. 284-330, (2008)
[8]  
Rechtman E., Harris A., Kumar R., Cantor L.B., Ventrapragada S., Desai M., Friedman S., Kagemann L., Garzozi H.J., An update on retinal circulation assessment technologies, Current Eye Research, 27, 6, pp. 329-343, (2003)
[9]  
Nelson D.A., Krupsky S., Pollack A., Aloni E., Belkin M., Vanzetta I., Rosner M., Grinvald A., Special report: Noninvasive multi-parameter functional optical imaging of the eye, Ophthalmic Surgery Lasers and Imaging, 36, 1, pp. 57-66, (2005)
[10]  
Landa G., Garcia P.M., Rosen R.B., Correlation between retina blood flow velocity assessed by retinal function imager and retina thickness estimated by scanning laser ophthalmoscopy/optical coherence tomography, Ophthalmologica, 223, 3, pp. 155-161, (2009)