首页> 外文期刊>The Journal of investigative dermatology. >In vivo results with a new device for ultrasonic monitoring of pig skin cryosurgery: the echographic cryoprobe.
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In vivo results with a new device for ultrasonic monitoring of pig skin cryosurgery: the echographic cryoprobe.

机译:超声监测猪皮肤冷冻手术的新设备的体内结果:超声成像冷冻探头。

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One of the main difficulties encountered in cryosurgery is the uncertainty in the extent and depth of the tissue effectively treated during the freezing process. The objective of this study was to evaluate in vivo ultrasonic control of skin cryosurgery using a new echographic cryoprobe. An echographic cryoprobe, developed specifically for dermatology applications, combines a high-frequency (20 MHz) miniature ultrasonic transducer and a N2O-driven closed cryoprobe. Knowledge of the ultrasound velocity of frozen skin is a prerequisite for monitoring the iceball formation kinetics. Therefore, in a first study, we estimated the ultrasound velocity of frozen skin specimens. In a second step, the operation of the echographic cryoprobe was assessed, under in vivo conditions similar to those used in human therapeutics, on normal skin of three female "Large-White" pigs under anesthesia. The mean value of ultrasound velocity of frozen skin obtained by pooling the data from all the skin specimens included in this study was 2865 +/- 170 m per s. The average rates of growth (10(-2) mm per s) of the iceballs were found to be 12.2 +/- 1.0 (pig 1), 9.0 +/- 1.0 (pig 2), and 8.4 +/- 0.9 (pig 3). The echographic cryoprobe had a built-in high-frequency ultrasonic transducer that served two functions. It enabled in vivo real-time monitoring of depth penetration of the iceball and it gave important feedback to the operator or to the console relating to the rate of growth of the iceball. Automatic (i.e., operator-independent) detection of the echo signal from the freezing front and calculation of the depth penetration of the iceball was possible.
机译:冷冻手术中遇到的主要困难之一是在冷冻过程中有效治疗的组织的程度和深度的不确定性。这项研究的目的是评估使用新的超声成像冷冻探针对皮肤冷冻术的体内超声控制。专门为皮肤病学应用开发的超声回波低温探头,结合了高频(20 MHz)微型超声换能器和N2O驱动的封闭式低温探头。了解冷冻皮肤的超声速度是监测冰球形成动力学的先决条件。因此,在第一项研究中,我们估计了冷冻皮肤样本的超声速度。第二步,在麻醉条件下,在三只雌性“大白”猪的正常皮肤上,在类似于人用疗法的体内条件下,对超声冷冻探头的操作进行了评估。通过汇集本研究中所有皮肤样本的数据获得的冷冻皮肤超声速度平均值为2865 +/- 170 m / s。发现冰球的平均生长速度(10(-2)mm / s)为12.2 +/- 1.0(猪1),9.0 +/- 1.0(猪2)和8.4 +/- 0.9(猪) 3)。超声冷冻探头具有内置的高频超声换能器,具有两个功能。它可以对冰球的深度渗透进行体内实时监控,并且可以向操作员或控制台提供有关冰球生长速率的重要反馈。可以自动(即,独立于操作员)检测来自冰冻锋面的回波信号并计算冰球的深度穿透。

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