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  4. Wireless closed-loop optogenetics across the entire dorsoventral spinal cord in mice
 
research article

Wireless closed-loop optogenetics across the entire dorsoventral spinal cord in mice

Kathe, Claudia  
•
Michoud, Frederic  
•
Schoenle, Philipp
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2022
Nature Biotechnology

Optoelectronic systems can exert precise control over targeted neurons and pathways throughout the brain in untethered animals, but similar technologies for the spinal cord are not well established. In the present study, we describe a system for ultrafast, wireless, closed-loop manipulation of targeted neurons and pathways across the entire dorsoventral spinal cord in untethered mice. We developed a soft stretchable carrier, integrating microscale light-emitting diodes (micro-LEDs), that conforms to the dura mater of the spinal cord. A coating of silicone-phosphor matrix over the micro-LEDs provides mechanical protection and light conversion for compatibility with a large library of opsins. A lightweight, head-mounted, wireless platform powers the micro-LEDs and performs low-latency, on-chip processing of sensed physiological signals to control photostimulation in a closed loop. We use the device to reveal the role of various neuronal subtypes, sensory pathways and supraspinal projections in the control of locomotion in healthy and spinal-cord injured mice.

Optogenetics is applied to the entire mouse spinal cord.

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Type
research article
DOI
10.1038/s41587-021-01019-x
Web of Science ID

WOS:000700991100001

Author(s)
Kathe, Claudia  
Michoud, Frederic  
Schoenle, Philipp
Rowald, Andreas  
Brun, Noe
Ravier, Jimmy  
Furfaro, Ivan  
Paggi, Valentina  
Kim, Kyungjin  
Soloukey, Sadaf
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Date Issued

2022

Publisher

NATURE PORTFOLIO

Published in
Nature Biotechnology
Volume

40

Start page

198

End page

208

Subjects

Biotechnology & Applied Microbiology

•

circuit reorganization

•

locomotor recovery

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optoelectronics

•

brain

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
CIBM  
UPCOURTINE  
LSBI  
Available on Infoscience
October 9, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/182071
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