首页> 美国卫生研究院文献>Journal of Visualized Experiments : JoVE >Anatomically Inspired Three-dimensional Micro-tissue Engineered Neural Networks for Nervous System Reconstruction Modulation and Modeling
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Anatomically Inspired Three-dimensional Micro-tissue Engineered Neural Networks for Nervous System Reconstruction Modulation and Modeling

机译:解剖学启发的三维微组织工程神经网络用于神经系统的重建调制和建模

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摘要

Functional recovery rarely occurs following injury or disease-induced degeneration within the central nervous system (CNS) due to the inhibitory environment and the limited capacity for neurogenesis. We are developing a strategy to simultaneously address neuronal and axonal pathway loss within the damaged CNS. This manuscript presents the fabrication protocol for micro-tissue engineered neural networks (micro-TENNs), implantable constructs consisting of neurons and aligned axonal tracts spanning the extracellular matrix (ECM) lumen of a preformed hydrogel cylinder hundreds of microns in diameter that may extend centimeters in length. Neuronal aggregates are delimited to the extremes of the three-dimensional encasement and are spanned by axonal projections. Micro-TENNs are uniquely poised as a strategy for CNS reconstruction, emulating aspects of brain connectome cytoarchitecture and potentially providing means for network replacement. The neuronal aggregates may synapse with host tissue to form new functional relays to restore and/or modulate missing or damaged circuitry. These constructs may also act as pro-regenerative "living scaffolds" capable of exploiting developmental mechanisms for cell migration and axonal pathfinding, providing synergistic structural and soluble cues based on the state of regeneration. Micro-TENNs are fabricated by pouring liquid hydrogel into a cylindrical mold containing a longitudinally centered needle. Once the hydrogel has gelled, the needle is removed, leaving a hollow micro-column. An ECM solution is added to the lumen to provide an environment suitable for neuronal adhesion and axonal outgrowth. Dissociated neurons are mechanically aggregated for precise seeding within one or both ends of the micro-column. This methodology reliably produces self-contained miniature constructs with long-projecting axonal tracts that may recapitulate features of brain neuroanatomy. Synaptic immunolabeling and genetically encoded calcium indicators suggest that micro-TENNs possess extensive synaptic distribution and intrinsic electrical activity. Consequently, micro-TENNs represent a promising strategy for targeted neurosurgical reconstruction of brain pathways and may also be applied as biofidelic models to study neurobiological phenomena in vitro.
机译:由于抑制环境和神经发生能力有限,中枢神经系统(CNS)受伤或疾病引起的变性后很少发生功能恢复。我们正在制定一项策略来同时解决受损CNS中神经元和轴突途径的丢失。该手稿介绍了微组织工程神经网络(micro-TENNs),由神经元和排列的轴突束组成的可植入构造物的制造方案,该轴突束跨越了预制水凝胶圆柱体的细胞外基质(ECM)内腔,直径可达数百微米,直径可能会扩展数厘米在长度上。神经元聚集体被限定在三维包裹的极端,并由轴突投影跨越。 Micro-TENNs独特地准备作为CNS重建的策略,模拟大脑连接组细胞结构的各个方面,并可能为网络替代提供手段。神经元聚集体可与宿主组织突触以形成新的功能继电器,以恢复和/或调节缺失或受损的电路。这些构建体还可以充当再生前的“活体支架”,能够利用细胞迁移和轴突寻路的发育机制,基于再生状态提供协同的结构和可溶性线索。通过将液态水凝胶倒入包含纵向居中针头的圆柱形模具中来制造微型TENN。水凝胶胶凝后,将针移开,剩下一个中空的微柱。将ECM解决方案添加到内腔中,以提供适合神经元粘连和轴突生长的环境。机械分离的神经元被机械聚集,以便在微柱的一端或两端精确接种。这种方法学可靠地产生了自包含的微型构建体,该构建体具有可以投射出脑神经解剖特征的长轴突束。突触免疫标记和遗传编码的钙指示剂表明,微TENNs具有广泛的突触分布和固有的电活动。因此,微型TENNs代表了针对脑部通路的靶向神经外科手术重建的一种有前途的策略,也可以作为生物模型用于体外研究神经生物学现象。

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