Long-range directional growth of neurites induced by magnetic forces

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2025-02-01 DOI:10.1016/j.actbio.2024.12.057
Tasmin Nahar , Monte Gates , Emilie Secret , Jean-Michel Siaugue , Jérôme Fresnais , Michael Rotherham , Heidi R. Fuller , Sharon J. Brown , Alicia J. El Haj , Neil D. Telling
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Abstract

The ability to control the growth and orientation of neurites over long distances has significant implications for regenerative therapies and the development of physiologically relevant brain tissue models. In this study, the forces generated on magnetic nanoparticles internalised within intracellular endosomes are used to direct the orientation of neuronal outgrowth in cell cultures. Following differentiation, neurite orientation was observed after 3 days application of magnetic forces to human neuroblastoma (SH-SY5Y) cells, and after 4 days application to rat cortical primary neurons. The direction of neurite outgrowth was quantified using a 2D Fourier transform analysis, showing agreement with the derived magnetic force vectors. Orientation control was found to be effective over areas >1cm2 using modest forces of ∼10 fN per endosome, apparently limited only by the local confluence of the cells. A bioinformatics analysis of protein expression in cells exposed to magnetic forces revealed changes to cell signaling and metabolic pathways resulting in enhanced carbohydrate metabolism, as well as the perturbation of processes related to cellular organisation and proliferation. Additionally, in cell culture regions where the measured force vectors converged, large (∼100 µm) SH-SY5Y neuroclusters loaded with nanoparticles were found, connected by unusually thick linear neurite fibres. This could suggest a magnetically driven enhancement of neurocluster growth, with the clusters themselves contributing to the local forces that direct outgrowth. Such structures, which have not been previously observed, could provide new insights into the development and possible enhancement of neural circuitry.

Statement of Significance

A magnetic force approach for directing outgrowth in neuronal cells over macroscopic areas is successfully demonstrated. Cells were incubated with magnetic nanoparticles which were sequestered into intracellular compartments. Permanent magnet arrays created local intracellular magnetic force vectors mediated via the internalized nanoparticles, which were found to precisely guide neurite orientation. Analysis of cellular protein expression suggested the mechanism for directed growth involved specific cell signaling and metabolic pathways. In addition, highly unusual straight and thick neural fibers were observed that connected large ‘magnetic’ spherical cell clusters. The results reported will advance nanotechnology and cell therapy for neuro-regeneration where magnetic forces could help to reconnect damaged neurons, or even build artificial neuronal architectures.

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磁力诱导的神经突长程定向生长。
远距离控制神经突生长和定向的能力对再生治疗和生理相关脑组织模型的发展具有重要意义。在这项研究中,在细胞内核内体内的磁性纳米颗粒产生的力被用来指导细胞培养中神经元生长的方向。分化后,在对人神经母细胞瘤(SH-SY5Y)细胞施加磁力3天后,以及在对大鼠皮质初级神经元施加磁力4天后,观察神经突的取向。利用二维傅里叶变换分析量化了神经突生长的方向,结果与推导出的磁力矢量一致。方向控制被发现在b> 1cm2范围内是有效的,使用每个核内体约10 fN的适度力,显然仅受细胞局部汇合的限制。一项对暴露在磁力下的细胞中蛋白质表达的生物信息学分析揭示了细胞信号传导和代谢途径的变化,导致碳水化合物代谢增强,以及与细胞组织和增殖相关的过程的扰动。此外,在测得的力向量汇聚的细胞培养区,发现装载纳米粒子的大(~ 100µm) SH-SY5Y神经簇,由异常粗的线性神经突纤维连接。这可能表明磁力驱动神经团簇生长的增强,而神经团簇本身对直接生长的局部力量有贡献。这种结构以前没有被观察到,可以为神经回路的发展和可能的增强提供新的见解。意义声明:磁力方法在宏观区域指导神经细胞的生长被成功证明。细胞用磁性纳米颗粒孵育,这些纳米颗粒被隔离在细胞内隔室中。永磁体阵列通过内化的纳米颗粒产生局部细胞内磁力矢量,可以精确地引导神经突的方向。细胞蛋白表达分析表明定向生长的机制涉及特定的细胞信号传导和代谢途径。此外,我们还观察到异常的直的和粗的神经纤维连接着大的“磁性”球形细胞团。报道的结果将推动纳米技术和神经再生的细胞治疗,磁力可以帮助重新连接受损的神经元,甚至建立人工神经元结构。
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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
期刊最新文献
Editorial Board Corrigendum to “A composite hydrogel with co-delivery of antimicrobial peptides and platelet-rich plasma to enhance healing of infected wounds in diabetes” [Acta Biomaterialia 2021, 124, 205-218] Corrigendum to “Vascular Endothelial Growth Factor-Capturing Aligned Electrospun Polycaprolactone/Gelatin Nanofibers Promote Patellar Ligament Regeneration” [Acta Biomaterialia 140, 2022, 122-246] Physical exercise impacts bone remodeling around bio-resorbable magnesium implants A metal-organic framework functionalized CaO2-based cascade nanoreactor induces synergistic cuproptosis/ferroptosis and Ca2+ overload-mediated mitochondrial damage for enhanced sono-chemodynamic immunotherapy
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