Fluidic microdrives for minimally invasive actuation of flexible electrodes


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Fluidic Microdrives for Minimally Invasive Implantation and Actuation of Flexible Neural Electrodes Abstract Flexible microelectrodes that match the mechanical properties of the brain promise to increase the quality and longevity of neural recordings by reducing chronic inflammatory reactions; however, these microelectrodes are traditionally difficult to implant without causing acute damage. Because these flexible electrodes are typically more flexible than a human hair, stiffening agents are presently used to temporarily increase the overall size and rigidity of the electrode during implantation. The resulting increase in the electrode footprint damages the tissue, leading to cell loss and glial activation that persists even after the stiffening agents are removed or dissolve. Furthermore, once the electrodes are inserted, they remain fixed in place and cannot be repositioned to record from different brain regions. To overcome the limitations of current flexible electrode implantation methods we propose ?fluidic microdrives?: specially designed microfluidic devices that can insert and microactuate bare flexible electrodes with no need for stiffening agents, thus reducing acute damage during electrode implantation. In this project we will demonstrate that fluidic microdrives can implant and actuate state-of-the art flexible multichannel electrodes in vivo. These experiments will represent the first studies of flexible electrode performance following a minimally invasive implantation. As part of this project we will assess the quality and longevity of neural recordings following fluidic implantation compared to conventional implantation using removable stiffeners. Overall, fluidic microdrive technology proposed here will provide a versatile method to reduce tissue damage associated with implantation and actuation of flexible neural electrodes that could be adapted to support a variety of electrode materials and geometries.
Collapse sponsor award id
R21EY028397

Collapse Time 
Collapse start date
2017-09-30
Collapse end date
2019-08-31