Constructive Neuroengineering of Crossing Multi-Neurite Wiring Using Modifiable Agarose Gel Platforms.

IF 5 3区 化学 Q1 POLYMER SCIENCE
Gels Pub Date : 2025-05-30 DOI:10.3390/gels11060419
Soya Hagiwara, Kazuhiro Tsuneishi, Naoya Takada, Kenji Yasuda
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Abstract

Constructing stable and flexible neuronal networks with multi-neurite wiring is essential for the in vitro modeling of brain function, connectivity, and neuroplasticity. However, most existing neuroengineering platforms rely on static microfabrication techniques, which limit the ability to dynamically control circuit architecture during cultivation. In this study, we developed a modifiable agarose gel-based platform that enables real-time microstructure fabrication using an infrared (IR) laser system under live-cell conditions. This approach allows for the stepwise construction of directional neurite paths, including sequential microchannel formation, cell chamber fabrication, and controlled neurite-neurite crossings. To support long-term neuronal health and network integrity in agarose microstructures, we incorporated direct glial co-culture into the system. A comparative analysis showed that co-culture significantly enhanced neuronal adhesion, neurite outgrowth, and survival over several weeks. The feeder layer configuration provided localized trophic support while maintaining a clear separation between glial and neuronal populations. Dynamic wiring experiments further confirmed the platform's precision and compatibility. Neurites extended through newly fabricated channels and crossed pre-existing neurites without morphological damage, even when laser fabrication occurred after initial outgrowth. Time-lapse imaging showed a temporary growth cone stalling at crossing points, followed by successful elongation in all tested samples. Furthermore, the direct laser irradiation of extending neurites during microstructure modification did not visibly impair neurite elongation, suggesting minimal morphological damage under the applied conditions. However, potential effects on molecular signaling and electrophysiological function remain to be evaluated in future studies. Together, these findings establish a powerful, flexible system for constructive neuroengineering. The platform supports long-term culture, real-time modification, and multidirectional wiring, offering new opportunities for studying neural development, synaptic integration, and regeneration in vitro.

利用改性琼脂糖凝胶平台交叉多神经突线路的构建性神经工程。
构建具有多神经突连接的稳定、灵活的神经网络对于脑功能、连通性和神经可塑性的体外建模至关重要。然而,大多数现有的神经工程平台依赖于静态微加工技术,这限制了在培养过程中动态控制电路结构的能力。在这项研究中,我们开发了一种基于琼脂糖凝胶的可修改平台,该平台可以在活细胞条件下使用红外(IR)激光系统实现实时微结构制造。这种方法允许逐步构建定向神经突路径,包括顺序微通道形成、细胞室制造和控制神经突-神经突交叉。为了支持琼脂糖微结构中神经元的长期健康和网络完整性,我们在系统中加入了直接胶质共培养。对比分析显示,共培养在数周内显著增强了神经元粘附、神经突生长和存活。喂食层的配置提供了局部营养支持,同时保持胶质细胞和神经元群体之间的明确分离。动态布线实验进一步验证了平台的精度和兼容性。即使在初始生长后进行激光加工,神经突也可以通过新制造的通道延伸并穿过先前存在的神经突,而不会造成形态损伤。延时成像显示,在交叉点处,生长锥暂时停止,随后所有测试样品都成功伸长。此外,在微观结构修饰过程中,激光直接照射延伸的神经突对神经突的伸长没有明显的影响,表明在应用条件下,神经突的形态损伤最小。然而,对分子信号和电生理功能的潜在影响仍需在未来的研究中评估。总之,这些发现为建设性神经工程建立了一个强大而灵活的系统。该平台支持长期培养、实时修饰和多向连接,为研究神经发育、突触整合和体外再生提供了新的机会。
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来源期刊
Gels
Gels POLYMER SCIENCE-
CiteScore
4.70
自引率
19.60%
发文量
707
审稿时长
11 weeks
期刊介绍: The journal Gels (ISSN 2310-2861) is an international, open access journal on physical (supramolecular) and chemical gel-based materials. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the maximum length of the papers, and full experimental details must be provided so that the results can be reproduced. Short communications, full research papers and review papers are accepted formats for the preparation of the manuscripts. Gels aims to serve as a reference journal with a focus on gel materials for researchers working in both academia and industry. Therefore, papers demonstrating practical applications of these materials are particularly welcome. Occasionally, invited contributions (i.e., original research and review articles) on emerging issues and high-tech applications of gels are published as special issues.
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