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基因电转移到肌肉组织中的数值优化。

Numerical optimization of gene electrotransfer into muscle tissue.

机构信息

University of Ljubljana, Faculty of Electrical Engineering, Trzaska cesta 25, SI-1000 Ljubljana, Slovenia.

出版信息

Biomed Eng Online. 2010 Nov 4;9:66. doi: 10.1186/1475-925X-9-66.

Abstract

BACKGROUND

Electroporation-based gene therapy and DNA vaccination are promising medical applications that depend on transfer of pDNA into target tissues with use of electric pulses. Gene electrotransfer efficiency depends on electrode configuration and electric pulse parameters, which determine the electric field distribution. Numerical modeling represents a fast and convenient method for optimization of gene electrotransfer parameters. We used numerical modeling, parameterization and numerical optimization to determine the optimum parameters for gene electrotransfer in muscle tissue.

METHODS

We built a 3D geometry of muscle tissue with two or six needle electrodes (two rows of three needle electrodes) inserted. We performed a parametric study and optimization based on a genetic algorithm to analyze the effects of distances between the electrodes, depth of insertion, orientation of electrodes with respect to muscle fibers and applied voltage on the electric field distribution. The quality of solutions were evaluated in terms of volumes of reversibly (desired) and irreversibly (undesired) electroporated muscle tissue and total electric current through the tissue.

RESULTS

Large volumes of reversibly electroporated muscle with relatively little damage can be achieved by using large distances between electrodes and large electrode insertion depths. Orienting the electrodes perpendicular to muscle fibers is significantly better than the parallel orientation for six needle electrodes, while for two electrodes the effect of orientation is not so pronounced. For each set of geometrical parameters, the window of optimal voltages is quite narrow, with lower voltages resulting in low volumes of reversibly electroporated tissue and higher voltages in high volumes of irreversibly electroporated tissue. Furthermore, we determined which applied voltages are needed to achieve the optimal field distribution for different distances between electrodes.

CONCLUSION

The presented numerical study of gene electrotransfer is the first that demonstrates optimization of parameters for gene electrotransfer on tissue level. Our method of modeling and optimization is generic and can be applied to different electrode configurations, pulsing protocols and different tissues. Such numerical models, together with knowledge of tissue properties can provide useful guidelines for researchers and physicians in selecting optimal parameters for in vivo gene electrotransfer, thus reducing the number of animals used in studies of gene therapy and DNA vaccination.

摘要

背景

基于电穿孔的基因治疗和 DNA 疫苗接种是很有前途的医学应用,它们依赖于使用电脉冲将 pDNA 转移到靶组织中。基因电转移效率取决于电极构型和电脉冲参数,这些参数决定了电场分布。数值建模是优化基因电转移参数的快速便捷方法。我们使用数值建模、参数化和数值优化来确定肌肉组织中基因电转移的最佳参数。

方法

我们构建了带有两个或六个针电极(两排三个针电极)插入的肌肉组织的 3D 几何形状。我们进行了参数研究和基于遗传算法的优化,以分析电极之间的距离、插入深度、电极相对于肌肉纤维的方向以及施加电压对电场分布的影响。通过可逆(所需)和不可逆(不需要)电穿孔肌肉组织的体积以及组织内总电流来评估解决方案的质量。

结果

通过使用大的电极间距和大的电极插入深度,可以实现具有相对较小损伤的较大体积的可逆电穿孔肌肉。将电极垂直于肌肉纤维定向比使用六针电极的平行定向显著更好,而对于两个电极,定向的效果则不那么明显。对于每组几何参数,最佳电压窗口相当狭窄,较低的电压会导致可逆电穿孔组织的体积较小,而较高的电压会导致不可逆电穿孔组织的体积较大。此外,我们确定了实现不同电极间距的最佳场分布所需的施加电压。

结论

本文首次展示了针对组织水平的基因电转移参数优化的数值研究。我们的建模和优化方法是通用的,可以应用于不同的电极构型、脉冲协议和不同的组织。这种数值模型与组织特性知识相结合,可以为研究人员和医生提供有用的指导,以选择最佳的体内基因电转移参数,从而减少基因治疗和 DNA 疫苗接种研究中动物的使用数量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b3a/2990758/94e8e4d91498/1475-925X-9-66-1.jpg

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