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Quantitative elasticity measurement of urinary bladder wall using laser-induced surface acoustic waves

机译:激光诱导的声表面波定量测量膀胱壁弹性

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摘要

The maintenance of urinary bladder elasticity is essential to its functions, including the storage and voiding phases of the micturition cycle. The bladder stiffness can be changed by various pathophysiological conditions. Quantitative measurement of bladder elasticity is an essential step toward understanding various urinary bladder disease processes and improving patient care. As a nondestructive, and noncontact method, laser-induced surface acoustic waves (SAWs) can accurately characterize the elastic properties of different layers of organs such as the urinary bladder. This initial investigation evaluates the feasibility of a noncontact, all-optical method of generating and measuring the elasticity of the urinary bladder. Quantitative elasticity measurements of ex vivo porcine urinary bladder were made using the laser-induced SAW technique. A pulsed laser was used to excite SAWs that propagated on the bladder wall surface. A dedicated phase-sensitive optical coherence tomography (PhS-OCT) system remotely recorded the SAWs, from which the elasticity properties of different layers of the bladder were estimated. During the experiments, series of measurements were performed under five precisely controlled bladder volumes using water to estimate changes in the elasticity in relation to various urinary bladder contents. The results, validated by optical coherence elastography, show that the laser-induced SAW technique combined with PhS-OCT can be a feasible method of quantitative estimation of biomechanical properties.
机译:膀胱弹性的维持对其功能至关重要,包括排尿周期的储存和排尿阶段。膀胱的僵硬程度可以通过各种病理生理条件来改变。膀胱弹性的定量测量是了解各种膀胱疾病过程和改善患者护理的重要步骤。作为一种非破坏性,非接触性的方法,激光诱导的表面声​​波(SAW)可以准确地表征不同器官层(例如膀胱)的弹性特性。这项初步研究评估了产生和测量膀胱弹性的非接触全光学方法的可行性。使用激光诱导的声表面波技术对离体猪膀胱进行了定量弹性测量。使用脉冲激光激发在膀胱壁表面传播的声表面波。专用的相敏光学相干断层扫描(PhS-OCT)系统远程记录了SAW,从中可以估算膀胱不同层的弹性。在实验过程中,使用水在五个精确控制的膀胱容积下进行一系列测量,以估算与各种膀胱内容物有关的弹性变化。通过光学相干弹性成像验证的结果表明,激光诱导的声表面波技术与PhS-OCT结合可以是定量评估生物力学性能的一种可行方法。

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