使用纳米材料和纳米结构的软生物电子学用于神经工程学。

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Accounts of Chemical Research Pub Date : 2024-05-16 DOI:10.1021/acs.accounts.4c00163
Minjeong Kim, Hyunjin Lee, Seonghyeon Nam, Dae-Hyeong Kim* and Gi Doo Cha*, 
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引用次数: 0

摘要

内容提要 大面积神经网络的识别和单神经元尺度的神经元活动调控已引起神经科学的极大关注。此外,检测生化分子以及用电、光和化学方法控制神经功能也是关键的研究课题。然而,传统的坚硬而笨重的生物电子器件在神经应用方面面临着各种挑战,包括机械不匹配、信噪比不理想以及多功能元件集成度低,从而降低了传感和调制性能、长期稳定性和生物兼容性以及诊断和治疗效果。最近,对纳米材料合成和纳米级制造策略的探索促进了非常规软生物电子器件的设计,这些器件具有与神经组织相似的机械性能和与典型神经元尺寸相当的亚微米级分辨率。纳米技术的引入提高了生物电子学的空间分辨率、选择性、单神经元靶向性,甚至多功能性。因此,这种最先进的纳米技术与生物电子学的结合主要有两种类型,即与合成纳米材料结合的生物电子学和与纳米结构结合的生物电子学。功能性纳米材料可以合成和组装成生物电子器件,从而可以方便地定制其功能以满足特定要求。独特的纳米结构与生物电子学的结合可以最大限度地提高传感和刺激性能。这种软纳米生物电子学已证明可长期用于细胞内神经元的记录和调制,并具有多种功能,如电、光、化学传感和刺激功能。在本篇开户绑定手机领体验金中,我们将讨论与纳米材料集成的软生物电子学的技术途径,以及应用于神经工程的纳米结构的实现。我们追溯了生物电子学的历史发展,从坚硬、笨重的结构到柔软、可变形的器件,以满足神经工程的要求。最近将纳米技术引入神经设备的方法提高了时空分辨率,并赋予设备各种功能。这些软纳米生物电子技术分为两类进行讨论:使用合成纳米材料的生物电子学和使用纳米结构的生物电子学。我们描述了集成纳米材料的软生物电子学,根据集成纳米材料的不同,它们表现出不同的功能和模式。同时,我们还解释了具有纳米级结构的软生物电子学的卓越分辨率和独特的管理方法。我们还举例说明了软纳米生物电子在各种模式下的神经传感和刺激应用,展示了它们在治疗脑肿瘤、癫痫和帕金森病等神经系统疾病方面的临床应用。最后,我们讨论了下一代技术面临的挑战和发展方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Soft Bioelectronics Using Nanomaterials and Nanostructures for Neuroengineering

The identification of neural networks for large areas and the regulation of neuronal activity at the single-neuron scale have garnered considerable attention in neuroscience. In addition, detecting biochemical molecules and electrically, optically, and chemically controlling neural functions are key research issues. However, conventional rigid and bulky bioelectronics face challenges for neural applications, including mechanical mismatch, unsatisfactory signal-to-noise ratio, and poor integration of multifunctional components, thereby degrading the sensing and modulation performance, long-term stability and biocompatibility, and diagnosis and therapy efficacy. Implantable bioelectronics have been developed to be mechanically compatible with the brain environment by adopting advanced geometric designs and utilizing intrinsically stretchable materials, but such advances have not been able to address all of the aforementioned challenges.

Recently, the exploration of nanomaterial synthesis and nanoscale fabrication strategies has facilitated the design of unconventional soft bioelectronics with mechanical properties similar to those of neural tissues and submicrometer-scale resolution comparable to typical neuron sizes. The introduction of nanotechnology has provided bioelectronics with improved spatial resolution, selectivity, single neuron targeting, and even multifunctionality. As a result, this state-of-the-art nanotechnology has been integrated with bioelectronics in two main types, i.e., bioelectronics integrated with synthesized nanomaterials and bioelectronics with nanoscale structures. The functional nanomaterials can be synthesized and assembled to compose bioelectronics, allowing easy customization of their functionality to meet specific requirements. The unique nanoscale structures implemented with the bioelectronics could maximize the performance in terms of sensing and stimulation. Such soft nanobioelectronics have demonstrated their applicability for neuronal recording and modulation over a long period at the intracellular level and incorporation of multiple functions, such as electrical, optical, and chemical sensing and stimulation functions.

In this Account, we will discuss the technical pathways in soft bioelectronics integrated with nanomaterials and implementing nanostructures for application to neuroengineering. We traced the historical development of bioelectronics from rigid and bulky structures to soft and deformable devices to conform to neuroengineering requirements. Recent approaches that introduced nanotechnology into neural devices enhanced the spatiotemporal resolution and endowed various device functions. These soft nanobioelectronic technologies are discussed in two categories: bioelectronics with synthesized nanomaterials and bioelectronics with nanoscale structures. We describe nanomaterial-integrated soft bioelectronics exhibiting various functionalities and modalities depending on the integrated nanomaterials. Meanwhile, soft bioelectronics with nanoscale structures are explained with their superior resolution and unique administration methods. We also exemplified the neural sensing and stimulation applications of soft nanobioelectronics across various modalities, showcasing their clinical applications in the treatment of neurological diseases, such as brain tumors, epilepsy, and Parkinson’s disease. Finally, we discussed the challenges and direction of next-generation technologies.

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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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