4.8 Article

3D Neural Network Composed of Neurospheroid and Bionanohybrid on Microelectrode Array to Realize the Spatial Input Signal Recognition in Neurospheroid

期刊

SMALL METHODS
卷 6, 期 8, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smtd.202200127

关键词

3D neural networks; 3D neurospheroids; bioelectronics; bionanohybrids; electrophysiological signals

资金

  1. National Research Foundation of Korea (NRF) - Korea government (MSIT) [2019R1A2C3002300]
  2. Basic Science Research Program through the NRF - Ministry of Education [2016R1A6A1A03012845]
  3. National R&D Program through the NRF - Ministry of Science and ICT [NRF-2022M3H4A1A01005271]
  4. National Research Foundation of Korea [2022M3H4A1A01005271] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

This study successfully developed an in vitro 3D neural network composed of a bionanohybrid, 3D neurospheroid, and microelectrode array (MEA). By controlling the electrophysiological states of living cells, the developed network transmitted input signals and exhibited output signals of the 3D neurospheroid. Additionally, the network achieved spatial input signal recognition for the first time. This newly developed 3D neural network has promising applications in brain-on-a-chip, drug efficacy evaluation for brain diseases, bioelectronics, and bioelectronic medicine.
There have been several studies for demonstration of 2D neural network using living cells or organic/inorganic molecules, but to date, there is no report of development of a 3D neural network in vitro. Based on developed bionanohybrid composed of protein, DNA, molybdenum disulfide nanoparticles, and peptides for controlling electrophysiological states of living cells, here, the in vitro 3D neural network composed of the bionanohybrid, 3D neurospheroid and the microelectrode array (M EA) is developed. After production of the 3D neurospheroid derived from human neural stem cells, the bionanohybrid developed on the MEA successfully semi-penetrates the neurites of the 3D neurospheroid and forms the 3D neural network. The developed 3D neural network successfully exhibited the electrophysiological output signals of the 3D neurospheroid by transmitting the input signal applied by the bionanohybrid. Moreover, by using the selectively immobilized bionanohybrid on the MEA, the spatial input signal recognition in the neurospheroid of 3D neural network is realized for the first time. This newly developed in vitro 3D neural network provides a promising strategy to be applied in brain-on-a-chip, brain disease-related drug efficacy evaluation, bioelectronics, and bioelectronic medicine.

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