TY - JOUR
T1 - Polymer-fiber-coupled field-effect sensors for label-free deep brain recordings
AU - Guo, Yuanyuan
AU - Werner, Carl F.
AU - Canales, Andres
AU - Yu, Li
AU - Jia, Xiaoting
AU - Anikeeva, Polina
AU - Yoshinobu, Tatsuo
N1 - Funding Information:
Funding:Thisworkwasfinanciallysupported byGrant-in-AidforJSPSresearchfellows (15J02011).YuanyuanGuowastherecipientof theJapanSocietyforthePromotionofScience Fellowship(JSPS)forYoungScientistduringthe yearof2015-2017.
Publisher Copyright:
© 2020 Guo et al.
PY - 2020/1/1
Y1 - 2020/1/1
N2 - Electrical recording permits direct readout of neural activity but offers limited ability to correlate it to the network topography. On the other hand, optical imaging reveals the architecture of neural circuits, but relies on bulky optics and fluorescent reporters whose signals are attenuated by the brain tissue. Here we introduce implantable devices to record brain activities based on the field effect, which can be further extended with capability of label-free electrophysiological mapping. Such devices reply on light-addressable potentiometric sensors (LAPS) coupled to polymer fibers with integrated electrodes and optical waveguide bundles. The LAPS utilizes the field effect to convert electrophysiological activity into regional carrier redistribution, and the neural activity is read out in a spatially resolved manner as a photocurrent induced by a modulated light beam. Spatially resolved photocurrent recordings were achieved by illuminating different pixels within the fiber bundles. These devices were applied to record local field potentials in the mouse hippocampus. In conjunction with the raster-scanning via the single modulated beam, this technology may enable fast label-free imaging of neural activity in deep brain regions.
AB - Electrical recording permits direct readout of neural activity but offers limited ability to correlate it to the network topography. On the other hand, optical imaging reveals the architecture of neural circuits, but relies on bulky optics and fluorescent reporters whose signals are attenuated by the brain tissue. Here we introduce implantable devices to record brain activities based on the field effect, which can be further extended with capability of label-free electrophysiological mapping. Such devices reply on light-addressable potentiometric sensors (LAPS) coupled to polymer fibers with integrated electrodes and optical waveguide bundles. The LAPS utilizes the field effect to convert electrophysiological activity into regional carrier redistribution, and the neural activity is read out in a spatially resolved manner as a photocurrent induced by a modulated light beam. Spatially resolved photocurrent recordings were achieved by illuminating different pixels within the fiber bundles. These devices were applied to record local field potentials in the mouse hippocampus. In conjunction with the raster-scanning via the single modulated beam, this technology may enable fast label-free imaging of neural activity in deep brain regions.
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U2 - 10.1371/journal.pone.0228076
DO - 10.1371/journal.pone.0228076
M3 - Article
C2 - 31978197
AN - SCOPUS:85078242001
SN - 1932-6203
VL - 15
JO - PLoS One
JF - PLoS One
IS - 1
M1 - e0228076
ER -