微电子
生物医学工程
材料科学
分形
导管
烧蚀
侵入性外科
纳米技术
医学
放射科
外科
数学
心脏病学
数学分析
作者
Mengfei Xu,Ziliang Song,Peng Quan,Qingda Xu,Zhiyuan Du,Tao Ruan,Bin Yang,Qingkun Liu,Xu Liu,Xumin Hou,Mu Qin,Jingquan Liu
出处
期刊:ACS Sensors
[American Chemical Society]
日期:2025-04-07
标识
DOI:10.1021/acssensors.4c03477
摘要
Pulse field ablation (PFA) has become a popular technique for treating tens of millions of patients with atrial fibrillation, as it avoids many complications associated with traditional radiofrequency ablation. However, currently, limited studies have used millimeter-scale rigid electrodes modified from radiofrequency ablation to apply electrical pulses of thousands of volts without integrated sensing capabilities. Herein, we combine fractal microelectronics with biomedical catheters for low-voltage PFA, detection of electrode-tissue contact, and interventional electrocardiogram recording. The fractal configuration increases the ratio of the microelectrode insulating edge to area, which facilitates the transfer of current from the microelectrode to the tissue, increasing the ablation depth by 38.6% at 300 V (a 10-fold reduction compared to current technology). In vivo ablation experiments on living beagles successfully block electrical conduction, as demonstrated by voltage mapping and electrical pacing. More impressively, this study provides the first evidence that microelectrodes can selectively ablate cardiomyocytes without damaging nerves and blood vessels, greatly improving the safety of PFA. These results are essential for the clinical translation of PFA in the field of cardiac electrophysiology.
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