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首页> 外文期刊>Medical Physics >Technical Note: In vivo In vivo Young's modulus mapping of pancreatic ductal adenocarcinoma during HIFU HIFU ablation using harmonic motion elastography ( HME HME )
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Technical Note: In vivo In vivo Young's modulus mapping of pancreatic ductal adenocarcinoma during HIFU HIFU ablation using harmonic motion elastography ( HME HME )

机译:技术说明:在使用谐波运动弹性术(HME HME)的HIFU HIFU消融过程中胰腺导管腺癌的体内杨氏模量映射

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Purpose Noninvasive quantitative assessment of coagulated tissue during high‐intensity focused ultrasound ( HIFU ) ablation is one of the essential steps for tumor treatment, especially in such cases as the Pancreatic Ductal Adenocarcinoma ( PDA ) that has low probability of diagnosis at the early stages and high probability of forming solid carcinomas resistant to chemotherapy treatment at the late stages. Methods Harmonic motion elastography ( HME ) is a technique for the localized estimation of tumor stiffness. This harmonic motion imaging ( HMI )‐based technique is designed to map the tissue Young's modulus or stiffness noninvasively. A focused ultrasound ( FUS ) transducer generates an oscillating, acoustic radiation force in its focal region. The two‐dimensional (2D) shear wave speed, and consequently the Young's modulus maps, is generated by tracking the radio frequency ( RF ) signals acquired at high frame rates. By prolonging the sonication for more than 50?s using the same methodology, the 2D Young's modulus maps are reconstructed while HIFU is applied and ablation is formed on PDA murine tumors. Results The feasibility of this technique in measuring the regional Young's modulus was first assessed in tissue‐mimicking phantoms. The contrast‐to‐noise ratio ( CNR ) was found to be higher than 11.7? dB for each 2D reconstructed Young's modulus map. The mean error in this validation study was found to be equal to less than 19%. Then HME was applied on two transgenic mice with pancreatic ductal adenocarcinoma tumors. The Young's modulus median value of this tumor at the start of the HIFU application was equal to 2.1? kP a while after 45?s of sonication it was found to be approximately three times stiffer (6.7? kP a). Conclusions The HME was described herein and showed its capability of measuring tissue stiffness noninvasively by measuring the shear wave speed propagation inside the tissue and reconstructing a 2D Young's modulus map. Application of the methodology in?vivo and during HIFU were thus reported here for the first time.
机译:目的,在高强度聚焦超声(HIFU)消融期间的凝固组织的无侵入定量评估是肿瘤处理的基本步骤之一,特别是在这种情况下,作为胰腺导管腺癌(PDA)在早期阶段的诊断概率低概率在晚期阶段形成耐化疗治疗的固体癌的高概率。方法谐波运动弹性显影(HME)是肿瘤刚度局部估计的技术。基于谐波运动成像(HMI)的技术旨在使组织杨氏模量或刚度映射。聚焦超声(FUS)换能器在其焦区区域产生振荡的声学辐射力。通过跟踪在高帧速率下获取的射频(RF)信号来产生二维(2D)剪切波速度,并因此产生杨氏模数图。通过使用相同的方法延长超过50μs的超声处理,在施加HIFU和烧蚀的同时重建2D杨氏模量图,在PDA鼠肿瘤上形成消融。结果在组织模拟幻像中首次评估该技术在测量区域杨氏模量时的可行性。发现对比度率(CNR)高于11.7?每个2D重建年轻的模数映射的DB。该验证研究中的平均误差被发现等于小于19%。然后用胰腺导管腺癌肿瘤施加在两只转基因小鼠上的HME。在HIFU应用开始时这种肿瘤的杨氏模量中值等于2.1? kp a虽然被超声处理后发现它是大约三倍(6.7?kp a)。结论本文描述了HME,并通过测量组织内部的剪切波速传播并重建2D杨氏模量图,显示其无侵略性地测量组织刚度的能力。因此,在这里首次报告了方法中的方法和HIFU期间的应用。

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