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Integrated endoscope for real-time 3D ultrasound imaging and hyperthermia: feasibility study.

机译:用于实时3D超声成像和热疗的集成内窥镜:可行性研究。

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The goal of this research is to determine the feasibility of using a single endoscopic probe for the combined purpose of real-time 3D (RT3D) ultrasound imaging of a target organ and the delivery of ultrasound therapy to facilitate the absorption of compounds for cancer treatment. Recent research in ultrasound therapy has shown that ultrasound-mediated drug delivery improves absorption of treatments for prostate, cervical and esophageal cancer. The ability to combine ultrasound hyperthermia and 3D imaging could improve visualization and targeting of cancerous tissues. In this study, numerical modeling and experimental measurements were developed to determine the feasibility of combined therapy and imaging with a 1 cm diameter endoscopic RT3D probe with 504 transmitters and 252 receive channels. This device operates at 5 MHz and has a 6.3 mm x 6.3 mm aperture to produce real time 3D pyramidal scans of 60-120 degrees incorporating 64 x 64 = 4096 image lines at 30 volumes/sec interleaved with a 3D steerable therapy beam. A finite-element mesh was constructed with over 128,000 elements in LS-DYNA to simulate the induced temperature rise from our transducer with a 3 cm deep focus in tissue. Quarter-symmetry of the transducer was used to reduce mesh size and computation time. Based on intensity values calculated in Field II using the transducer's array geometry, a minimum I(SPTA) of 3.6 W/cm2 is required from our endoscope probe in order to induce a temperature rise of 4 degrees C within five minutes. Experimental measurements of the array's power output capabilities were conducted using a PVDF hydrophone placed 3 cm away from the face of the transducer in a watertank. Using a PDA14 Signatec data acquisition board to capture full volumes of transmitted ultrasound data, it was determined that the probe can presently maintain intensity values up to 2.4 W/cm2 over indefinite times for therapeutic applications combined with intermittent 3D scanning to maintain targeting. These values were acquired using 8 cycle bursts at a prf of 6 kHz. Ex vivo heating experiments of excised pork tissue yielded a maximum temperature rises of 2.3 degrees C over 5 minutes of ultrasound exposure with an average rise of 1.8 +/- 0.2 degrees C over 5 trials. Modifications to the power supply and transducer array may enable us to reach the higher intensities required to facilitate drug delivery therapy.
机译:这项研究的目的是确定将单个内窥镜探头用于目标器官的实时3D(RT3D)超声成像以及超声治疗的交付以促进化合物吸收以治疗癌症的综合目的的可行性。超声疗法的最新研究表明,超声介导的药物递送可改善对前列腺癌,子宫颈癌和食道癌的治疗吸收。结合超声热疗和3D成像的功能可以改善癌组织的可视化和靶向性。在这项研究中,开发了数值模型和实验测量方法,以确定具有504个发射器和252个接收通道的直径为1 cm的内窥镜RT3D探针进行联合治疗和成像的可行性。该设备以5 MHz的频率运行,并具有6.3 mm x 6.3 mm的孔径,可产生60-120度的实时3D金字塔扫描,并以30体积/秒的速度结合3 x可控治疗光束插入64 x 64 = 4096条图像线。在LS-DYNA中构建了一个包含128,000多个元素的有限元网格,以模拟我们的传感器在3 cm深的组织中引起的感应温度升高。换能器的四分之一对称性用于减小网格尺寸和计算时间。根据使用换能器的阵列几何形状在场II中计算的强度值,我们的内窥镜探头需要的最小I(SPTA)为3.6 W / cm2,以便在五分钟内引起4摄氏度的温度升高。阵列的功率输出能力的实验测量是通过将PVDF水听器放置在距水箱中距换能器表面3 cm的位置进行的。使用PDA14 Signatec数据采集板捕获全部传输的超声数据,可以确定该探头目前可以在不确定的时间内无限期保持高达2.4 W / cm2的强度值,并结合间歇性3D扫描以保持靶向。这些值是使用8个周期的脉冲串以6 kHz的pff获得的。切除的猪肉组织的离体加热实验在5分钟的超声波照射下产生的最大温度升高为2.3摄氏度,在5个试验中的平均升高为1.8 +/- 0.2摄氏度。对电源和换能器阵列的修改可以使我们达到促进药物递送治疗所需的更高强度。

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