超越结构:功能性脑类器官的下一代电生理平台。

IF 2.4 4区 医学 Q3 CELL & TISSUE ENGINEERING
International journal of stem cells Pub Date : 2025-08-30 Epub Date: 2025-07-31 DOI:10.15283/ijsc25056
Ji-Hyoung Cha, Keuntae Kim, Il-Joo Cho
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引用次数: 0

摘要

脑类器官已经成为研究人类神经发育、神经疾病和个性化治疗的变革性模型。它们的核心功能是能够以高空间和时间分辨率监测神经活动。传统的电生理工具,如平面微电极阵列和膜片钳技术,对类器官神经网络的三维和动态特性提供了有限的访问。最近的技术进步导致了下一代平台的发展,包括表面嵌入式、柔性和完全植入式电极。此外,结合光学、化学和机械传感的多功能探针为类器官生理学的多模态研究开辟了新的途径。本文综述了应用于脑类器官的电生理技术的现状,重点介绍了记录保真度、时空分辨率和设备-组织集成方面的创新。我们还讨论了关键挑战,如维持类器官活力,实现足够的电极密度,并在整个类器官发育过程中实现非破坏性的慢性接口。展望未来,未来的系统有望向超密集、多模态和闭环接口发展,能够在延长的生长期内研究类器官的功能。这些进展不仅将加深我们对类器官中类脑活动的理解,而且还将支持设计功能更准确和翻译相关的神经模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Beyond Structure: Next-Generation Electrophysiological Platforms for Functional Brain Organoids.

Beyond Structure: Next-Generation Electrophysiological Platforms for Functional Brain Organoids.

Beyond Structure: Next-Generation Electrophysiological Platforms for Functional Brain Organoids.

Beyond Structure: Next-Generation Electrophysiological Platforms for Functional Brain Organoids.

Brain organoids have emerged as transformative models for studying human neurodevelopment, neurological disorders, and personalized therapeutics. Central to their utility is the ability to monitor neural activity with high spatial and temporal resolution. Traditional electrophysiological tools-such as planar microelectrode arrays and patch-clamp techniques-offer limited access to the three-dimensional and dynamic nature of organoid neural networks. Recent technological advancements have led to the development of next-generation platforms including surface-embedded, flexible, and fully implantable electrodes. Moreover, multifunctional probes incorporating optical, chemical, and mechanical sensing open new avenues for multimodal interrogation of organoid physiology. This review summarizes the current state of electrophysiological technologies applied to brain organoids, highlighting innovations in recording fidelity, spatiotemporal resolution, and device-tissue integration. We also discuss key challenges such as maintaining organoid viability, achieving sufficient electrode density, and enabling non-disruptive, chronic interfacing throughout organoid development. Looking forward, future systems are expected to evolve toward ultra-dense, multimodal, and closed-loop interfaces capable of investigating organoid function throughout extended growth periods. These advances will not only deepen our understanding of brain-like activity in organoids but also support the design of more functionally accurate and translationally relevant neural models.

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来源期刊
International journal of stem cells
International journal of stem cells Biochemistry, Genetics and Molecular Biology-Cell Biology
CiteScore
5.10
自引率
4.30%
发文量
38
期刊介绍: International Journal of Stem Cells (Int J Stem Cells), a peer-reviewed open access journal, principally aims to provide a forum for investigators in the field of stem cell biology to present their research findings and share their visions and opinions. Int J Stem Cells covers all aspects of stem cell biology including basic, clinical and translational research on genetics, biochemistry, and physiology of various types of stem cells including embryonic, adult and induced stem cells. Reports on epigenetics, genomics, proteomics, metabolomics of stem cells are welcome as well. Int J Stem Cells also publishes review articles, technical reports and treatise on ethical issues.
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