McCann Claire, Sherar Michael D
Department of Medical Biophysics, University of Toronto, Princess Margaret Hospital, 610 University Avenue, Toronto, ON M5G 2M9, Canada.
Phys Med Biol. 2006 Aug 7;51(15):3851-63. doi: 10.1088/0031-9155/51/15/017. Epub 2006 Jul 20.
We have developed a novel, thermal therapy device designed to improve local control of large solid tumours using heat in the range 55-90 degrees C. The device is a helical coil designed to be loosely wound inside a tumour and excited with radiofrequency energy at 27.12 MHz. This design exploits the size and uniformity of the electric fields generated by magnetic induction inside this solenoidal geometry for heating and coagulating a large target volume. The use of the electrically conductive shape memory alloy Nitinol for the coil and an external ground plane permit the minimally invasive percutaneous insertion of the coil through a single cannulating delivery needle. To demonstrate the feasibility of this device, phantom models and finite-element models using COMSOL 3.2 were used to characterize uniformity of the radial and axial ARD (absorption rate density) profiles of different monopolar coil geometries. COMSOL 3.2 was also used to calculate temperature profiles and distributions produced by these coils in a non-perfused tissue-mimicking domain following a 10 min heating period. ARD results showed that optimum radial and axial uniformities were achieved with a 0.75 cm pitch and 3 cm length for a 1.5 cm diameter coil, and a 1.4 cm pitch and 4.2 cm length for a 2 cm diameter coil. These coils were able to produce lesions in excised bovine liver of 4 cm x 4.5 cm and 3.5 cm x 6.5 cm, respectively. Predicted temperature profiles showed similar profile sizes and shapes in a non-perfused domain, with the absolute temperature rise determined by the source input to the coil. These results demonstrate the potential of this interstitial, monopolar induction coil device for heating large tumours using a single applicator delivered through a single needle insertion.
我们研发了一种新型热疗设备,旨在利用55 - 90摄氏度的热量改善对大型实体肿瘤的局部控制。该设备是一个螺旋线圈,设计为松散地缠绕在肿瘤内部,并以27.12 MHz的射频能量进行激发。这种设计利用了在这种螺线管几何结构内通过磁感应产生的电场的大小和均匀性,来加热和凝固一个大的目标体积。使用导电形状记忆合金镍钛诺制作线圈,并设置外部接地平面,使得线圈能够通过单个插管式输送针进行微创经皮插入。为了证明该设备的可行性,使用了体模模型和基于COMSOL 3.2的有限元模型,来表征不同单极线圈几何形状的径向和轴向吸收速率密度(ARD)分布的均匀性。COMSOL 3.2还用于计算在10分钟加热期后,这些线圈在非灌注组织模拟区域中产生的温度分布和温度曲线。ARD结果表明,对于直径1.5 cm的线圈,螺距为0.75 cm、长度为3 cm时,可实现最佳的径向和轴向均匀性;对于直径2 cm的线圈,螺距为1.4 cm、长度为4.2 cm时,可实现最佳的径向和轴向均匀性。这些线圈分别能够在切除的牛肝脏中产生4 cm×4.5 cm和3.5 cm×6.5 cm的损伤区域。预测的温度曲线显示在非灌注区域中具有相似的曲线大小和形状,绝对温度上升由输入到线圈的源决定。这些结果证明了这种间质单极感应线圈设备通过单次针插入输送单个施源器来加热大型肿瘤的潜力。