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磁电纳米颗粒诱导的温度依赖性细胞因子中和作用:一项计算机模拟研究

Temperature-Dependent Cytokine Neutralization Induced by Magnetoelectric Nanoparticles: An In Silico Study.

作者信息

Marrella Alessandra, Giannoni Paolo, Lenzuni Martina, Suarato Giulia, Fiocchi Serena, Chiaramello Emma, Ravazzani Paolo

机构信息

Institute of Electronics, Computer and Telecommunication Engineering (IEIIT), National Research Council of Italy (CNR), 20133 Milan, Italy.

Department of Experimental Medicine, Biology Section, University of Genoa, 16132 Genoa, Italy.

出版信息

Int J Mol Sci. 2024 Dec 19;25(24):13591. doi: 10.3390/ijms252413591.

Abstract

Inflammatory cytokines cooperate to maintain normal immune homeostasis, performing both a protective and a pro-inflammatory action in different body districts. However, their excessive persistence or deregulated expression may degenerate into tissue chronic inflammatory status. Advanced therapies should be designed to deploy selective cytokine neutralizers in the affected tissues. Magnetoelectric nanoparticles (MENPs) possess unexploited potentialities, conjugating their ferromagnetic nature, which enables confinement in a specific tissue by directed positioning when subjected to low-intensity magnetic fields, with the capability to generate high electric fields with elevated spatial resolution when subjected to higher magnetic fields. This work proposes to exploit the extremely localized heat generated by Joule's effect around MENPs under an external magnetic field to denature a harmful cytokine in a hypothetical tissue site. An interdisciplinary and multiphysics in silico study was conducted to provide comprehensive modeling of the temperature distribution generated by MENPs decorated with a membrane-derived microvesicle (MV) coating designed to allocate a specific antibody to bind a target cytokine. A damage model was also implemented to provide an estimation of the influence of several design parameters on the cytokine denaturation efficacy, with the final goal of guiding the future development of effective MENPs-based therapeutic applications and strategies.

摘要

炎症细胞因子协同作用以维持正常的免疫稳态,在身体不同部位发挥保护和促炎作用。然而,它们的过度持续存在或表达失调可能会恶化为组织慢性炎症状态。先进的治疗方法应设计为在受影响的组织中部署选择性细胞因子中和剂。磁电纳米颗粒(MENPs)具有未被开发的潜力,将其铁磁性质与在受到高强度磁场时以高空间分辨率产生高电场的能力相结合,铁磁性质使其在受到低强度磁场时能够通过定向定位被限制在特定组织中。这项工作提出利用外部磁场下MENPs周围焦耳效应产生的极局部热量来使假设组织部位的有害细胞因子变性。进行了一项跨学科和多物理场的计算机模拟研究,以全面模拟用膜衍生微泡(MV)涂层修饰的MENPs产生的温度分布,该涂层旨在分配特定抗体以结合靶细胞因子。还实施了一个损伤模型,以估计几个设计参数对细胞因子变性功效的影响,最终目标是指导基于MENPs的有效治疗应用和策略的未来发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ce6f/11678122/905c62c581b4/ijms-25-13591-g001.jpg

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