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Scalable batch fabrication of ultrathin flexible neural probes using a bioresorbable silk layer
by
Nowak, Lionel G
, Cointe Clement
, Bergaud, Christian
, Maziz Ali
, Arvanitis, Dina N
, Laborde, Adrian
, Bourrier, David
in
Biocompatibility
/ Biodegradability
/ Biomedical materials
/ Brain
/ Brain research
/ Brain slice preparation
/ Electrical stimuli
/ Epilepsy
/ Insertion
/ Probes
/ Rejection
/ Seizures
/ Silk
2022
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Scalable batch fabrication of ultrathin flexible neural probes using a bioresorbable silk layer
by
Nowak, Lionel G
, Cointe Clement
, Bergaud, Christian
, Maziz Ali
, Arvanitis, Dina N
, Laborde, Adrian
, Bourrier, David
in
Biocompatibility
/ Biodegradability
/ Biomedical materials
/ Brain
/ Brain research
/ Brain slice preparation
/ Electrical stimuli
/ Epilepsy
/ Insertion
/ Probes
/ Rejection
/ Seizures
/ Silk
2022
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Scalable batch fabrication of ultrathin flexible neural probes using a bioresorbable silk layer
by
Nowak, Lionel G
, Cointe Clement
, Bergaud, Christian
, Maziz Ali
, Arvanitis, Dina N
, Laborde, Adrian
, Bourrier, David
in
Biocompatibility
/ Biodegradability
/ Biomedical materials
/ Brain
/ Brain research
/ Brain slice preparation
/ Electrical stimuli
/ Epilepsy
/ Insertion
/ Probes
/ Rejection
/ Seizures
/ Silk
2022
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Scalable batch fabrication of ultrathin flexible neural probes using a bioresorbable silk layer
Journal Article
Scalable batch fabrication of ultrathin flexible neural probes using a bioresorbable silk layer
2022
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Overview
Flexible intracerebral probes for neural recording and electrical stimulation have been the focus of many research works to achieve better compliance with the surrounding tissue while minimizing rejection. Strategies have been explored to find the best way to insert flexible probes into the brain while maintaining their flexibility once positioned. Here, we present a novel and versatile scalable batch fabrication approach to deliver ultrathin and flexible probes consisting of a silk-parylene bilayer. The biodegradable silk layer, whose degradation time is programmable, provides a temporary and programmable stiffener to allow the insertion of ultrathin parylene-based flexible devices. Our innovative and robust batch fabrication technology allows complete freedom over probe design in terms of materials, size, shape, and thickness. We demonstrate successful ex vivo insertion of the probe with acute high-fidelity recordings of epileptic seizures in field potentials as well as single-unit action potentials in mouse brain slices. Our novel technological solution for implanting ultraflexible devices in the brain while minimizing rejection risks shows high potential for use in both brain research and clinical therapies.
Publisher
Springer Nature B.V
Subject
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