Process Analysis and Parameter Selection of Cardiomyocyte Electroporation Based on the Finite Element Method.

IF 1.6 4区 医学 Q3 CARDIAC & CARDIOVASCULAR SYSTEMS Cardiovascular Engineering and Technology Pub Date : 2024-02-01 Epub Date: 2023-11-02 DOI:10.1007/s13239-023-00694-y
Hao Zhang, Xingkai Ji, Lianru Zang, Shengjie Yan, Xiaomei Wu
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Abstract

Purpose: Pulsed-field ablation (PFA) has attracted attention for the treatment of atrial fibrillation. This study aimed to further explore the relationship between the transmembrane voltage, pore radius and the intensity and duration of pulsed electric fields, which are closely related to the formation of irreversible electroporation. The different mechanisms of microsecond and nanosecond pulses acting on cardiomyocyte cellular and nuclear membranes were studied.

Methods: A 3-D cardiomyocyte model with a nucleus was constructed to simulate the process of electroporation in cells under an electric field. Cell membrane electroporation was used to simulate the effect of different pulse parameters on the process of electroporation.

Results: Under a single pulse with a field strength of 1 kV/cm and width of 100 μs, the transmembrane potential (TMP) of the cell membrane reached 1.33 V, and the pore density and conductivity increased rapidly. The maximum pore radius of the cell membrane was 43.4 nm, and the electroporation area accounted for 4.6% of the total cell membrane area. The number of pores was positively correlated with the electric field intensity when the cell was exposed to electric fields of 0.5 to 6 kV/cm. Under a nanosecond pulse, the TMP of the nuclear and cell membranes exceeded 1 V after exposure to electric fields with strengths of 4 and 5 kV/cm, respectively.

Conclusion: This study simulated the electroporation process of cardiomyocyte, and provides a basis for the selection of parameters for the application of PFA for application toward arrhythmias.

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基于有限元法的心肌细胞电穿孔过程分析及参数选择。
目的:脉冲场消融术(PFA)在治疗心房颤动方面引起了人们的关注。本研究旨在进一步探索与不可逆电穿孔形成密切相关的跨膜电压、孔径与脉冲电场强度和持续时间之间的关系。研究了微秒和纳秒脉冲作用于心肌细胞和核膜的不同机制。方法:建立带细胞核的三维心肌细胞模型,模拟细胞在电场作用下的电穿孔过程。利用细胞膜电穿孔模拟不同脉冲参数对电穿孔过程的影响。结果:在电场强度为1kV/cm、宽度为100μs的单脉冲作用下,细胞膜的跨膜电位(TMP)达到1.33V,孔密度和电导率迅速增加。细胞膜的最大孔径为43.4nm,电穿孔面积占细胞膜总面积的4.6%。当细胞暴露于0.5至6kV/cm的电场时,孔隙的数量与电场强度呈正相关。在纳秒脉冲下,暴露于强度分别为4和5kV/cm的电场后,核膜和细胞膜的TMP超过1V。结论:本研究模拟了心肌细胞的电穿孔过程,为PFA应用于心律失常的参数选择提供了依据。
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来源期刊
Cardiovascular Engineering and Technology
Cardiovascular Engineering and Technology Engineering-Biomedical Engineering
CiteScore
4.00
自引率
0.00%
发文量
51
期刊介绍: Cardiovascular Engineering and Technology is a journal publishing the spectrum of basic to translational research in all aspects of cardiovascular physiology and medical treatment. It is the forum for academic and industrial investigators to disseminate research that utilizes engineering principles and methods to advance fundamental knowledge and technological solutions related to the cardiovascular system. Manuscripts spanning from subcellular to systems level topics are invited, including but not limited to implantable medical devices, hemodynamics and tissue biomechanics, functional imaging, surgical devices, electrophysiology, tissue engineering and regenerative medicine, diagnostic instruments, transport and delivery of biologics, and sensors. In addition to manuscripts describing the original publication of research, manuscripts reviewing developments in these topics or their state-of-art are also invited.
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