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A new radiofrequency balloon angioplasty device for atherosclerosis treatment

机译:一种新的射频气球血管成形术装置,用于动脉粥样硬化处理

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Restenosis remains a challenge in the treatment of atherosclerosis due to damage to the endothelial layer and induced proliferation of smooth muscle cells. A novel radiofrequency (RF) heating strategy was proposed to selectively ablate atherosclerosis plaque and to thermally inhibit the proliferation of smooth muscle cells while keeping the endothelial cells intact. To realize the proposed strategy, a new radiofrequency balloon catheter, consisting of three ports, a three-channel tube, a balloon and an electrode patch, was designed. To evaluate the feasibility of this new design, a phantom experiment with thermocouples measuring temperatures with different voltages applied to the electrodes was conducted. A numerical model was established to obtain the 3D temperature distribution. The heating ability was also evaluated in ex vivo diseased artery samples. The experimental results showed that the highest temperature could be achieved in a distance from the surface of the balloon as designed. The temperature differences between the highest temperature at 0.78?mm and those of the surface reached 9.87?°C, 12.55?°C and 16.00?°C under applied 15?V, 17.5?V and 20?V heating, respectively. In the circumferential direction, the heating region (above 50?°C) spread from the middle of the two electrodes. The numerical results showed that the cooling effect counteracted the electrical energy deposition in the region close to the electrodes. The thermal lesion could be directed to cover the diseased media away from the catheter surface. The ex vivo heating experiment also confirmed the selective heating ability of the device. The temperature at the targeted site quickly reached the set value. The temperature of the external surface was higher than the inner wall surface temperature of the diseased artery lumen. Both the experimental and numerical results demonstrated the feasibility of the newly designed RF balloon catheter. The proposed RF microelectrodes heating together with the cooling water convection can realize the desired heating in the deeper site of the blood vessel wall while sparing the thin layer of the endothelium.
机译:由于内皮层损伤,恢复仍然是治疗动脉粥样硬化的挑战,并诱导平滑肌细胞的增殖。提出了一种新颖的射频(RF)加热策略以选择性地烧蚀动脉粥样硬化斑块,并热抑制平滑肌细胞的增殖,同时保持内皮细胞完整。为了实现所提出的策略,设计了一种由三个端口,三通管,气球和电极贴片组成的新的射频球囊导管。为了评估这种新设计的可行性,进行了具有施加到电极不同电压的热电偶的幻影实验。建立了数值模型以获得3D温度分布。在离体患病动脉样品中也评估了加热能力。实验结果表明,最高温度可以在距离球囊表面的距离中实现。最高温度之间的温度差异为0.78Ωmm,表面的温度差异达到9.87℃,12.55Ω°C和16.00°C,分别施加15〜17.5〜20?v加热。在圆周方向上,加热区域(高于50Ω°C)从两个电极的中间扩散。数值结果表明,冷却效果抵消了靠近电极的区域中的电能沉积。可以针对热病变来覆盖远离导管表面的患者。前体内加热实验还确认了装置的选择性加热能力。目标网站上的温度快速达到设定值。外表面的温度高于患病动脉腔的内壁表面温度。实验和数值结果都表明了新设计的RF球囊导管的可行性。所提出的RF微电极加热以及冷却水对流一起加热可以在血管壁的更深位置中实现所需的加热,同时施加内皮的薄层。

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