心脏导波弹性成像试验研究:在啮齿动物模型中进行体外测试,并进行机械测试验证。

Frontiers in acoustics Pub Date : 2024-01-01 Epub Date: 2024-10-09 DOI:10.3389/facou.2024.1485055
Jingfei Liu, Daniella Corporan, Don Vanderlaan, Muralidhar Padala, Stanislav Y Emelianov
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引用次数: 0

摘要

许多心脏疾病都会改变心肌组织的弹性,因此弹性成像是诊断心脏疾病和评估心血管风险的一种潜在医学成像策略。在现有的弹性成像方法中,超声弹性成像因其固有的低成本、高安全性、广泛可用性和深穿透性等优势而成为一种有吸引力的选择。现有的心脏超声弹性成像研究是基于心脏组织的体积模型实施的,将心肌组织中产生的波视为剪切波。在这项试验研究中,我们考虑了心脏组织的独特几何特征,即作为生物组织的分层结构及其分散性。基于这些考虑,我们将心脏组织建模为层状弥散结构,并开发了一种新的超声弹性成像方法--超声导波弹性成像,以表征心肌弹性。首先在组织模拟模型上验证了分层弥散模型的有效性和所开发的导波弹性成像技术的可靠性。然后,将导波弹性成像技术应用于大鼠心脏组织标本在双轴平面力学测试过程中的实时体外成像。通过比较导波弹性成像和机械测试获得的实时心肌弹性,结果表明两者非常吻合,验证了所开发的心脏导波弹性成像技术作为一种表征心肌弹性的潜在方法的可靠性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A pilot study of cardiac guided wave elastography: An ex vivo testing in a rodent model with mechanical testing validation.

Many heart diseases can change the elasticity of myocardial tissues, making elastography a potential medical imaging strategy for heart disease diagnosis and cardiovascular risk assessment. Among the existing elastography methods, ultrasound elastography is an appealing choice because of ultrasound's inherent advantages of low cost, high safety, wide availability, and deep penetration. The existing investigations of cardiac ultrasound elastography were implemented based on a bulk model of heart tissue, treating the waves generated in the myocardial tissues as shear waves. In this pilot study, we considered the distinct geometric characteristics of heart tissue, i.e., being a layered structure and its dispersive nature as biological tissue. Based on these considerations, we modeled heart tissues as a layered-dispersive structure and developed a new ultrasound elastography method, ultrasonic guided wave elastography, to characterize the myocardial elasticity. The validity of this layered-dispersive model and the reliability of the developed guided wave elastography were first verified on tissue-mimicking phantoms. Then, the guided wave elastography was applied to an ex vivo imaging of a rat heart tissue specimen in real-time during the biaxial planar mechanical testing. The comparison of the real-time myocardial elasticity obtained from guided wave elastography and mechanical testing demonstrated strong matching, verifying the reliability of the developed cardiac guided wave elastography as a potential method for characterizing myocardial elasticity.

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