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Kvantovaya Elektronika, 2019, Volume 49, Number 1, Pages 20–24 (Mi qe16959)  

This article is cited in 9 scientific papers (total in 9 papers)

Laser biophotonics

Measuring the elastic wave velocity in the lens of the eye as a function of intraocular pressure using optical coherent elastography

C. Wua, S. R. Aglyamovb, H. Zhanga, K. V. Larina

a Department of Biomedical Engineering, University of Houston, USA
b Department of Mechanical Engineering, University of Houston, USA
Full-text PDF (790 kB) Citations (9)
References:
Abstract: The dependence of the elastic properties of the eye lens on the intraocular pressure is investigated in porcine eyes ex vivo. To measure the stiffness of the lens, the method of dynamic optical coherent elastography is used, in which the propagation velocity of surface elastic waves in the lens is measured using phase-sensitive optical coherent tomography. Measurement data show an increase in Young's modulus of the lens by ~30% with an increase in intraocular pressure from 10 to 40 mm Hg. This result allows us to conclude that the effect of intraocular pressure on the rigidity of the lens is less significant than on the rigidity of other eye tissues, such as the cornea and sclera. The method of optical coherent elastography makes it possible to measure the elastic properties of the lens without removing it from the eyeball and has considerable potential for clinical use.
Keywords: optical coherence tomography, elastography, shear waves, crystalline lens, intraocular pressure, Young's modulus.
Funding agency Grant number
National Institutes of Health NIH/NEI R01EY022362
Received: 24.09.2018
Revised: 18.10.2018
English version:
Quantum Electronics, 2019, Volume 49, Issue 1, Pages 20–24
DOI: https://doi.org/10.1070/QEL16900
Bibliographic databases:
Document Type: Article
Language: Russian


Citation: C. Wu, S. R. Aglyamov, H. Zhang, K. V. Larin, “Measuring the elastic wave velocity in the lens of the eye as a function of intraocular pressure using optical coherent elastography”, Kvantovaya Elektronika, 49:1 (2019), 20–24 [Quantum Electron., 49:1 (2019), 20–24]
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  • This publication is cited in the following 9 articles:
    Citing articles in Google Scholar: Russian citations, English citations
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