非对称微通道对工程神经元电路结构和功能的影响。

IF 8.2 2区 医学 Q1 ENGINEERING, BIOMEDICAL
J C Mateus, P Melo, M Aroso, B Charlot, P Aguiar
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引用次数: 0

摘要

理解神经元回路复杂的结构-功能关系对于揭示大脑如何实现有效的信息传递至关重要。在特定的大脑区域,如海马体,神经元分层组织并形成单向连接,这被认为有助于确保受控的信号流和信息处理。近年来,研究人员试图模拟这些结构原理,为培养的神经元提供不对称的环境线索,即微流体的微通道,以促进定向轴突生长。尽管有一些报道声称实现了体外神经元回路的单向连接,但由于缺乏功能表征,这种结构连接是否与功能连接相关仍然未知。我们已经复制并测试了先前文献中报道的不对称微通道设计的性能,以成功促进定向轴突生长,以及其他自定义变化。“箭头”的新变体,称为“公羊”,是表现最好的基序,在体外14天,每个微通道允许严格单向连接的概率为76%。重要的是,我们评估了这些不同的不对称微通道设计的功能含义。为此,我们将定制微流体与微电极阵列(MEA)技术相结合,记录了两个分离的海马神经元群(“源”和“靶”)的电生理活动。这种功能表征表明,沿着带有“公羊”基序的微通道记录的峰值活动中,高达94%的峰值活动向“目标”群体传播。此外,我们的研究结果表明,这些工程电路也倾向于表现出具有定义方向性的网络级同步。总的来说,这种由不对称微通道促进的结构-功能关系的功能表征有可能为神经元电路如何使用特定的网络架构进行有效计算提供见解。此外,这里开发的设备和方法可用于广泛的应用,如疾病建模或临床前药物筛选。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of asymmetric microchannels in the structure and function of engineered neuronal circuits.

Understanding the intricate structure-function relationships of neuronal circuits is crucial for unraveling how the brain achieves efficient information transfer. In specific brain regions, like the hippocampus, neurons are organized in layers and form unidirectional connectivity, which is thought to help ensure controlled signal flow and information processing. In recent years, researchers have tried emulating these structural principles by providing cultured neurons with asymmetric environmental cues, namely microfluidics' microchannels, which promote directed axonal growth. Even though a few reports have claimed to achieve unidirectional connectivity ofin vitroneuronal circuits, given the lack of functional characterization, it remains unknown if this structural connectivity correlates with functional connectivity. We have replicated and tested the performance of asymmetric microchannel designs previously reported in the literature to be successful in promoting directed axonal growth, as well as other custom variations. A new variation of 'Arrowhead', termed 'Rams', was the best-performing motif with a ∼76% probability per microchannel of allowing strictly unidirectional connections at 14 din vitro. Importantly, we assessed the functional implications of these different asymmetric microchannel designs. For this purpose, we combined custom microfluidics with microelectrode array technology to record the electrophysiological activity of two segregated populations of hippocampal neurons ('Source' and 'Target'). This functional characterization revealed that up to ∼94% of the spiking activity recorded along microchannels with the 'Rams' motif propagates towards the 'Target' population. Moreover, our results indicate that these engineered circuits also tended to exhibit network-level synchronizations with defined directionality. Overall, this functional characterization of the structure-function relationships promoted by asymmetric microchannels has the potential to provide insights into how neuronal circuits use specific network architectures for effective computations. Moreover, the here-developed devices and approaches may be used in a wide range of applications, such as disease modeling or preclinical drug screening.

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来源期刊
Biofabrication
Biofabrication ENGINEERING, BIOMEDICAL-MATERIALS SCIENCE, BIOMATERIALS
CiteScore
17.40
自引率
3.30%
发文量
118
审稿时长
2 months
期刊介绍: Biofabrication is dedicated to advancing cutting-edge research on the utilization of cells, proteins, biological materials, and biomaterials as fundamental components for the construction of biological systems and/or therapeutic products. Additionally, it proudly serves as the official journal of the International Society for Biofabrication (ISBF).
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