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用于胶质瘤的高频不可逆电穿孔:一项使用患者特异性有限元模型的可行性研究。

High-frequency irreversible electroporation for gliomas: A feasibility study using patient-specific finite element models.

作者信息

Jiang Lei, Chen Lingchao, Ding Lujia, Yang Yongqin, Yu Shuangquan, Fang Zheng, Qin Zhiyong, Zhang Bing

机构信息

Intelligent Energy-based Tumor Ablation Laboratory, School of Mechatronic Engineering and Automation, Shanghai University, Shanghai, China.

Department of Neurosurgery, Huashan Hospital Shanghai Medical College, Fudan University, Shanghai, China.

出版信息

Med Phys. 2025 Jul;52(7):e18012. doi: 10.1002/mp.18012.

Abstract

BACKGROUND

High-frequency irreversible electroporation (H-FIRE) has gradually become an attractive alternative treatment of intracranial tumors due to its clinically favorable characteristics, such as mild muscle contractions, precise ablation margins, and preservation of vessel structures. Encouraging results have been obtained in pre-clinical trials with animal models. However, a more comprehensive understanding of spatiotemporal distributions of electric field and temperature in clinically relevant intracranial tissue during the treatment of H-FIRE is still required prior to its clinical implementation.

PURPOSE

In this study, we performed the first attempt to numerically investigate the electric field and temperature distributions for the conformal ablation of intracranial tumors in patient-specific glioma tumor models.

METHODS

Four representative 3D patient-specific glioma models were constructed based on T1-weighted MR images of four clinical patients. The treatment protocols of H-FIRE were optimized for the conformal ablation of these glioma patients by using a multi-objective optimization genetic algorithm. To alleviate the temperature increase during the H-FIRE administration, a new ablation procedure was designed and tested numerically.

RESULTS

The results achieved in this study demonstrated that the conformal ablation of gliomas with differing sizes and shapes can be achieved by optimizing the number of electrodes, applied pulse voltage, active tip length, electrode gap, and electrode insertion depth. The temperature increases due to the administration of H-FIRE pulses can be effectively alleviated by introducing a pulse-off time between two ablation procedures.

CONCLUSION

This study contributes to the field of H-FIRE in the treatment of intracranial tumors and promotes its clinical implementation.

摘要

背景

高频不可逆电穿孔(H-FIRE)因其临床良好特性,如轻微肌肉收缩、精确消融边缘和血管结构保留,已逐渐成为颅内肿瘤有吸引力的替代治疗方法。在动物模型的临床前试验中已取得令人鼓舞的结果。然而,在H-FIRE临床应用之前,仍需要更全面地了解其在临床相关颅内组织治疗过程中电场和温度的时空分布。

目的

在本研究中,我们首次尝试对特定患者胶质瘤肿瘤模型中颅内肿瘤的适形消融电场和温度分布进行数值研究。

方法

基于四名临床患者的T1加权磁共振图像构建了四个具有代表性的三维特定患者胶质瘤模型。通过使用多目标优化遗传算法,对H-FIRE的治疗方案进行优化,以实现这些胶质瘤患者的适形消融。为减轻H-FIRE治疗期间的温度升高,设计了一种新的消融程序并进行数值测试。

结果

本研究取得的结果表明,通过优化电极数量、施加的脉冲电压、有源尖端长度、电极间隙和电极插入深度,可以实现不同大小和形状胶质瘤的适形消融。通过在两次消融程序之间引入脉冲关闭时间,可以有效减轻H-FIRE脉冲给药引起的温度升高。

结论

本研究为H-FIRE治疗颅内肿瘤领域做出了贡献,并促进其临床应用。

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