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功率和时间对肝脏微波消融的影响:不同能量输送方案的效果

Impact of Power and Time in Hepatic Microwave Ablation: Effect of Different Energy Delivery Schemes.

作者信息

Trujillo Macarena, Najafabadi Mahtab Ebad, Romero Antonio, Prakash Punit, Cornelis Francois H

机构信息

BioMIT, Electronic Engineering Department, Universitat Politècnica de València, 46022 Valencia, Spain.

Department of Biomedical Engineering, George Washington University, Washington, DC 20052, USA.

出版信息

Sensors (Basel). 2024 Dec 2;24(23):7706. doi: 10.3390/s24237706.

Abstract

Microwave ablation often involves the use of continuous energy-delivery protocols with a fixed power and time. To achieve larger ablation zones, a range of protocols and power levels have been studied in experimental studies. The objective of the present study was to develop and experimentally evaluate the performance of a coupled computational electromagnetic-bioheat transfer model of 2.45 GHz microwave ablation under a variety of continuous and pulsed power delivery schemes. The main aim was to obtain an in-depth knowledge of the influence of energy delivery settings on ablation zone profiles and thermal damage in the peri-ablation zone. In addition to the theoretical model, we evaluated the power delivery schemes using ex vivo experiments and compared them to previously published data from in vivo experiments. The results showed slight differences in terms of the ablation zone size for different power delivery schemes under ex vivo conditions, with the applied energy level being the most important factor that determines ablation zone size; however, under in vivo conditions, applying a high-power pulse prior to and following a longer constant power application (BOOKEND 95 W protocol) presented the most favorable ablation zones. Moreover, the modeling and experimental studies identified threshold applied power and ablation times beyond which increases did not yield substantive increases in ablation zone extents.

摘要

微波消融通常涉及使用具有固定功率和时间的连续能量输送方案。为了实现更大的消融区域,在实验研究中已经对一系列方案和功率水平进行了研究。本研究的目的是开发并通过实验评估2.45 GHz微波消融在各种连续和脉冲功率输送方案下的耦合计算电磁-生物热传递模型的性能。主要目的是深入了解能量输送设置对消融区域轮廓和消融周边区域热损伤的影响。除了理论模型,我们还使用离体实验评估了功率输送方案,并将其与先前发表的体内实验数据进行了比较。结果表明,在离体条件下,不同功率输送方案的消融区域大小存在细微差异,所施加的能量水平是决定消融区域大小的最重要因素;然而,在体内条件下,在较长的恒定功率应用之前和之后施加高功率脉冲(BOOKEND 95 W方案)呈现出最有利的消融区域。此外,建模和实验研究确定了阈值施加功率和消融时间,超过该阈值增加功率并不会使消融区域范围产生实质性增加。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/48af/11644961/90d42440c1a2/sensors-24-07706-g001.jpg

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