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Quantitative optical coherence elastography based on fiber-optic probe for in situ measurement of tissue mechanical properties

机译:基于光纤探针的定量光学相干弹性成像技术原位测量组织力学性能

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摘要

We developed a miniature quantitative optical coherence elastography (qOCE) instrument with an integrated Fabry-Perot force sensor, for in situ elasticity measurement of biological tissue. The technique has great potential for biomechanics modeling and clinical diagnosis. We designed the fiber-optic qOCE probe that was used to exert a compressive force to deform tissue at the tip of the probe. Using the space-division multiplexed optical coherence tomography (OCT) signal detected by a spectral domain OCT engine, we were able to quantify the probe deformation that was proportional to the force applied, and to quantify the tissue deformation corresponding to the external stimulus. Simultaneous measurement of force and displacement allowed us to extract Young’s modulus of biological tissue. We experimentally calibrated our qOCE instrument, and validated its effectiveness on tissue mimicking phantoms and biological tissues.
机译:我们开发了带有集成Fabry-Perot力传感器的微型定量光学相干弹性成像(qOCE)仪器,用于生物组织的原位弹性测量。该技术在生物力学建模和临床诊断方面具有巨大潜力。我们设计了光纤qOCE探头,该探头用于施加压力以使探头尖端的组织变形。使用由光谱域OCT引擎检测到的空分复用光学相干断层扫描(OCT)信号,我们能够量化与施加的力成比例的探头变形,并量化与外部刺激相对应的组织变形。同时测量力和位移使我们能够提取生物组织的杨氏模量。我们通过实验校准了qOCE仪器,并验证了其在模拟体模和生物组织的组织上的有效性。

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