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Optimal transcostal high-intensity focused ultrasound with combined real-time 3D movement tracking and correction.

机译:结合实时3D运动跟踪和校正的最佳跨肋高强度聚焦超声。

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Recent studies have demonstrated the feasibility of transcostal high intensity focused ultrasound (HIFU) treatment in liver. However, two factors limit thermal necrosis of the liver through the ribs: the energy deposition at focus is decreased by the respiratory movement of the liver and the energy deposition on the skin is increased by the presence of highly absorbing bone structures. Ex vivo ablations were conducted to validate the feasibility of a transcostal real-time 3D movement tracking and correction mode. Experiments were conducted through a chest phantom made of three human ribs immersed in water and were placed in front of a 300 element array working at 1 MHz. A binarized apodization law introduced recently in order to spare the rib cage during treatment has been extended here with real-time electronic steering of the beam. Thermal simulations have been conducted to determine the steering limits. In vivo 3D-movement detection was performed on pigs using an ultrasonic sequence. The maximum error on the transcostal motion detection was measured to be 0.09 +/- 0.097 mm on the anterior-posterior axis. Finally, a complete sequence was developed combining real-time 3D transcostal movement correction and spiral trajectory of the HIFU beam, allowing the system to treat larger areas with optimized efficiency. Lesions as large as 1 cm in diameter have been produced at focus in excised liver, whereas no necroses could be obtained with the same emitted power without correcting the movement of the tissue sample.
机译:最近的研究证明了经肋高强度聚焦超声(HIFU)治疗肝脏的可行性。但是,有两个因素限制了通过肋骨肝脏的热坏死:肝脏的呼吸运动减少了焦点处的能量沉积,而高吸收性骨骼结构的存在增加了皮肤上的能量沉积。进行了体外消融以验证跨肋实时3D运动跟踪和校正模式的可行性。实验是通过将三个人的肋骨浸入水中制成的胸部幻影进行的,并将其放置在工作频率为1 MHz的300元素阵列的前面。最近引入的二值化切趾定律,通过对光束进行实时电子转向,扩展了治疗过程中保留肋骨的空间。已经进行了热模拟以确定转向极限。使用超声波序列对猪进行体内3D运动检测。经肋间运动检测的最大误差在前后轴上测得为0.09 +/- 0.097 mm。最后,开发了结合实时3D肋间运动校正和HIFU光束的螺旋轨迹的完整序列,从而使系统能够以最佳效率处理更大的区域。在切除的肝脏中,焦点处已产生直径最大为1 cm的病变,而在不校正组织样本运动的情况下,以相同的发射功率无法获得坏死。

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