Farooqi Abdul Razzaq, Seitz Hermann, van Rienen Ursula
Institute of General Electrical Engineering, University of Rostock, Rostock, Germany.
Department of Electronics Engineering, The Islamia University of Bahawalpur, Bahawalpur, Pakistan.
Front Bioeng Biotechnol. 2025 Aug 12;13:1631725. doi: 10.3389/fbioe.2025.1631725. eCollection 2025.
Electrosensitive hydrogels are smart biomaterials that swell, shrink, deform, and bend when an external electric field is applied. These hydrogels have enormous potential for the controlled therapeutic delivery of biochemical substances to the affected area, thus promoting tissue regeneration. Computational modeling and simulation approaches have provided researchers with cost-effective predictive models that can be used to optimize and experimental protocols. In this article, we present a review of the modeling theories that can be used for the modeling and numerical simulation of electrosensitive hydrogels immersed in a solution with an applied electric field for cartilage tissue engineering. Each theory presents tradeoffs for the numerical modeling of cartilage repair implants. The selection of an appropriate theory depends on the required accuracy, time-dependent application, and deformation behavior. Although most simulations are limited to one-dimensional cases, multidimensional simulations are crucial. By reviewing the modeling theories of electrosensitive hydrogels, this article aims to inspire researchers to model the electrical stimulation of electrosensitive hydrogels for various applications, including cartilage tissue engineering.
电敏感水凝胶是一种智能生物材料,当施加外部电场时,它们会膨胀、收缩、变形和弯曲。这些水凝胶在将生化物质可控地输送到受影响区域以促进组织再生方面具有巨大潜力。计算建模和模拟方法为研究人员提供了具有成本效益的预测模型,可用于优化实验方案。在本文中,我们对可用于对浸没在具有外加电场的溶液中的电敏感水凝胶进行软骨组织工程建模和数值模拟的建模理论进行了综述。每种理论在软骨修复植入物的数值建模方面都存在权衡。选择合适的理论取决于所需的精度、随时间变化的应用以及变形行为。尽管大多数模拟仅限于一维情况,但多维模拟至关重要。通过回顾电敏感水凝胶的建模理论,本文旨在激励研究人员对电敏感水凝胶的电刺激进行建模,以用于包括软骨组织工程在内的各种应用。