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Integrated biocircuits: engineering functional multicellular circuits and devices

机译:集成生物电路:工程功能多细胞电路和设备

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摘要

Objective. Implantable neurotechnologies have revolutionized neuromodulatory medicine for treating the dysfunction of diseased neural circuitry. However, challenges with biocompatibility and lack of full control over neural network communication and function limits the potential to create more stable and robust neuromodulation devices. Thus, we propose a platform technology of implantable and programmable cellular systems, namely Integrated Biocircuits, which use only cells as the functional components of the device. Approach. We envision the foundational principles for this concept begins with novel in vitro platforms used for the study and reconstruction of cellular circuitry. Additionally, recent advancements in organoid and 3D culture systems account for microenvironment factors of cytoarchitecture to construct multicellular circuits as they are normally formed in the brain. We explore the current state of the art of these platforms to provide knowledge of their advancements in circuit fabrication and identify the current biological principles that could be applied in designing integrated biocircuit devices. Main results. We have highlighted the exemplary methodologies and techniques of in vitro circuit fabrication and propose the integration of selected controllable parameters, which would be required in creating suitable biodevices. Significance. We provide our perspective and propose new insights into the future of neuromodulaion devices within the scope of living cellular systems that can be applied in designing more reliable and biocompatible stimulation-based neuroprosthetics.
机译:目的。植入式神经技术已经彻底改变了神经调节药物,用于治疗患病神经回路的功能障碍。但是,生物相容性的挑战以及对神经网络通讯和功能缺乏完全控制的挑战限制了制造更稳定,更坚固的神经调节装置的潜力。因此,我们提出了一种可植入和可编程细胞系统的平台技术,即Integrated Biocircuits,它仅将细胞用作设备的功能组件。方法。我们设想该概念的基本原理始于用于细胞电路研究和重建的新型体外平台。此外,类器官和3D培养系统的最新发展也解释了细胞结构的微环境因素,以构建多细胞回路,因为它们通常在大脑中形成。我们探索了这些平台的最新技术,以提供其在电路制造方面的进步知识,并确定了可用于设计集成生物电路设备的当前生物学原理。主要结果。我们已经强调了体外电路制造的示例性方法和技术,并提出了在创建合适的生物装置时需要的所选可控参数的集成。意义。我们提供了我们的观点,并提出了对活细胞系统范围内神经调节设备未来的新见解,这些神经调节设备可用于设计更可靠和生物相容性的基于刺激的神经假体。

著录项

  • 来源
    《Journal of neural engineering》 |2018年第2期|023001.1-023001.10|共10页
  • 作者单位

    Biomedical Sciences Graduate Program, The Ohio State University, Columbus, OH, United States of America;

    Department of Electrical and Computer Engineering, The Ohio State University, Columbus, OH, United States of America;

    Department of Electrical and Computer Engineering, The Ohio State University, Columbus, OH, United States of America;

    Department of Neuroscience, The Ohio State University, Columbus, OH, United States of America,Department of Computer Science and Engineering, The Ohio State University, Columbus, OH, United States of America;

    Department of Electrical and Computer Engineering, The Ohio State University, Columbus, OH, United States of America,Department of Neuroscience, The Ohio State University, Columbus, OH, United States of America;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    neurotechnology; 3D culture; living multicellular circuits; neuroprosthetics; neuromodulation;

    机译:神经技术3D文化;活的多细胞回路;神经假体神经调节;

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