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应用微针的多柔比星透皮给药治疗乳腺癌的数值研究。

Numerical study of doxorubicin transdermal delivery for breast cancer treatment using microneedles.

机构信息

Biomechanics and Biomedical Engineering, IP Paris: Polytechnic Institute of Paris, Palaiseau, France.

Léonard de Vinci Pôle Universitaire, Research Center, Paris La Defense, France.

出版信息

Int J Numer Method Biomed Eng. 2024 May;40(5):e3812. doi: 10.1002/cnm.3812. Epub 2024 Mar 27.

Abstract

The lack of in vivo studies on the delivery of doxorubicin within human skin, especially the absence of data on the doxorubicin diffusion coefficient, has made understanding its transdermal delivery kinetics challenging. In this study, as a first step, governing equations and finite element methods were employed to reproduce Franz diffusion cell experiment in human cadaver skin. The application of this experiment representative model with a fitting method resulted in approximate values for the diffusivity of doxorubicin across various skin layers. The estimated values were used later to conduct a comprehensive examination of doxorubicin administration for breast tumor treatments. In a 2D axisymmetric model using Fick's Law and then a microneedles array 3D model, crucial parameters effects on delivery efficiency were examined, such as the microneedle tip diameter, tip-to-tip distance, and tumor depth. As highlighted by the findings of this study, these parameters have an impact on the effectiveness of doxorubicin delivery for treating breast tumors. The focus of this research is on the potential of numerical methods in biomedical engineering, which addresses the urgent need for data on doxorubicin diffusion in human skin and offers valuable insights into optimizing drug delivery strategies for enhanced therapeutic outcomes.

摘要

在人体皮肤中递送阿霉素的体内研究缺乏,特别是缺乏关于阿霉素扩散系数的数据,这使得理解其经皮传递动力学具有挑战性。在这项研究中,作为第一步,使用控制方程和有限元方法来再现人体尸体皮肤中的 Franz 扩散细胞实验。应用具有拟合方法的该实验代表性模型导致了在各种皮肤层中穿过阿霉素的扩散率的近似值。随后使用这些估计值对用于治疗乳腺癌的阿霉素给药进行全面检查。在使用菲克定律的二维轴对称模型和微针阵列 3D 模型中,检查了对输送效率有重要影响的关键参数,例如微针尖端直径、尖端到尖端的距离和肿瘤深度。正如这项研究的结果所强调的,这些参数对治疗乳腺癌的阿霉素输送的有效性有影响。这项研究的重点是数值方法在生物医学工程中的潜力,它解决了对人体皮肤中阿霉素扩散数据的迫切需求,并为优化药物输送策略以提高治疗效果提供了有价值的见解。

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