Literature DB >> 35633391

Semi-Implantable Bioelectronics.

Jiaru Fang1, Shuang Huang1, Fanmao Liu1, Gen He1, Xiangling Li1, Xinshuo Huang1, Hui-Jiuan Chen1, Xi Xie2.   

Abstract

Developing techniques to effectively and real-time monitor and regulate the interior environment of biological objects is significantly important for many biomedical engineering and scientific applications, including drug delivery, electrophysiological recording and regulation of intracellular activities. Semi-implantable bioelectronics is currently a hot spot in biomedical engineering research area, because it not only meets the increasing technical demands for precise detection or regulation of biological activities, but also provides a desirable platform for externally incorporating complex functionalities and electronic integration. Although there is less definition and summary to distinguish it from the well-reviewed non-invasive bioelectronics and fully implantable bioelectronics, semi-implantable bioelectronics have emerged as highly unique technology to boost the development of biochips and smart wearable device. Here, we reviewed the recent progress in this field and raised the concept of "Semi-implantable bioelectronics", summarizing the principle and strategies of semi-implantable device for cell applications and in vivo applications, discussing the typical methodologies to access to intracellular environment or in vivo environment, biosafety aspects and typical applications. This review is meaningful for understanding in-depth the design principles, materials fabrication techniques, device integration processes, cell/tissue penetration methodologies, biosafety aspects, and applications strategies that are essential to the development of future minimally invasive bioelectronics.
© 2022. The Author(s).

Entities:  

Keywords:  Cell applications; In vivo applications; Semi-implantable bioelectronics

Year:  2022        PMID: 35633391      PMCID: PMC9148344          DOI: 10.1007/s40820-022-00818-4

Source DB:  PubMed          Journal:  Nanomicro Lett        ISSN: 2150-5551


  300 in total

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Authors:  Jacob G Bernstein; Paul A Garrity; Edward S Boyden
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8.  High Density Individually Addressable Nanowire Arrays Record Intracellular Activity from Primary Rodent and Human Stem Cell Derived Neurons.

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