Noncontact phase-sensitive dynamic optical coherence elastography at megahertz rate

被引:1
|
作者
Singh, Manmohan [1 ]
Wu, Chen [1 ]
Liu, Chih-Hao [1 ]
Li, Jiasong [1 ]
Schill, Alexander [1 ]
Nair, Achuth [1 ]
Kistenev, Yury V. [2 ]
Larin, Kirill V. [1 ,2 ,3 ]
机构
[1] Univ Houston, Dept Biomed Engn, 4800 Calhoun Rd, Houston, TX 77004 USA
[2] Tomsk State Univ, Interdisciplinary Lab Biophoton, Tomsk 634050, Russia
[3] Baylor Coll Med, Dept Mol Physiol & Biophys, Houston, TX 77030 USA
关键词
Optical coherence elastography; cornea; Fourier domain mode-locked; MAGNETIC-RESONANCE ELASTOGRAPHY; GRAPHICS PROCESSING UNIT; COLLAGEN CROSS-LINKING; DOMAIN MODE-LOCKING; BIOMECHANICAL PROPERTIES; US ELASTOGRAPHY; AIR-PUFF; TOMOGRAPHY; TISSUE; OCT;
D O I
10.1117/12.2208404
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Dynamic optical coherence elastography (OCE) techniques have shown great promise at quantitatively obtaining the biomechanical properties of tissue. However, the majority of these techniques have required multiple temporal OCT acquisitions (M-B mode) and corresponding excitations, which lead to clinically unfeasible acquisition times and potential tissue damage. Furthermore, the large data sets and extended laser exposures hinder their translation to the clinic, where patient discomfort and safety are critical criteria. In this work we demonstrate noncontact true kilohertz frame-rate dynamic optical coherence elastography by directly imaging a focused air-pulse induced elastic wave with a home-built phase-sensitive OCE system based on a 4X buffered Fourier Domain Mode Locked swept source laser with an A-scan rate of similar to 1.5 MHz. The elastic wave was imaged at a frame rate of similar to 7.3 kHz using only a single excitation. In contrast to previous techniques, successive B-scans were acquired over the measurement region (B-M mode) in this work. The feasibility of this method was validated by quantifying the elasticity of tissue-mimicking agar phantoms as well as porcine corneas ex vivo at different intraocular pressures. The results demonstrate that this method can acquire a depth-resolved elastogram in milliseconds. The reduced data set enabled a rapid elasticity assessment, and the ultra-fast acquisition speed allowed for a clinically safe laser exposure to the cornea.
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页数:8
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