Silicon Optrode with a Micromirror‐Tip Providing Tunable Beam Profile During Infrared Neuromodulation of the Rat Neocortex

Author:

Horváth Ágoston Csaba1ORCID,Mórocz Ákos1,Csomai Borbála1,Szabó Ágnes1,Balogh‐Lantos Zsófia1,Fürjes Péter2,Tóth Estilla Zsófia3,Fiáth Richárd13ORCID,Fekete Zoltán14ORCID

Affiliation:

1. Research Group for Implantable Microsystems Faculty of Information Technology & Bionics Pázmány Péter Catholic University Budapest 1083 Hungary

2. Microsystems Laboratory Institute for Technical Physics & Material Science Center for Energy Research, HUN‐REN Budapest 1121 Hungary

3. Integrative Neuroscience Research Group Institute for Cognitive Neuroscience & Psychology Research Center for Natural Sciences, HUN‐REN Budapest 1117 Hungary

4. Sleep Oscillation Research Group Institute for Cognitive Neuroscience & Psychology Research Center for Natural Sciences, HUN‐REN Budapest 1117 Hungary

Abstract

AbstractInfrared (IR) neuromodulation holds an increasing potential in brain research, which is fueled by novel neuroengineering approaches facilitating the exploration of the biophysical mechanism in the microscale. The group lays down the fundamentals of spatially controlled optical manipulation of inherently temperature‐sensitive neuronal populations. The concept and in vivo validation of a multifunctional, optical stimulation microdevice is presented, which expands the capabilities of conventional optrodes by coupling IR light through a monolithically integrated parabolic micromirror. Heat distribution in the irradiated volume is experimentally analyzed, and the performance of the integrated electrophysiological recording components of the device is tested in the neocortex of anesthetized rodents. Evoked single‐cell responses upon IR irradiation through the novel microtool are evaluated in multiple trials. The safe operation of the implanted device is also presented using immunohistological methods. The results confirm that shift in temperature distribution in the vicinity of the optrode tip can be controlled by the integrated photonic components, and in parallel with the optical stimulation, the device is suitable to interrogate the evoked electrophysiological activity at the single neuron level. The customizable and scalable optrode system provides a new pathway to tailor the location of the heat maximum during infrared neural stimulation.

Funder

Nemzeti Kutatási, Fejlesztési és Innovaciós Alap

Publisher

Wiley

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