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PMID: 25225749 Published · epublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S. Video-Audio Media

Design and fabrication of ultralight weight, adjustable multi-electrode probes for electrophysiological recordings in mice.

Journal of visualized experiments : JoVE ·No. 91 ·2014-09-08 ·Pages e51675

Brunetti PM, Wimmer RD, Liang L, Siegle JH, Voigts J, Wilson M, Halassa MM

Abstract

The number of physiological investigations in the mouse, mus musculus, has experienced a recent surge, paralleling the growth in methods of genetic targeting for microcircuit dissection and disease modeling. The introduction of optogenetics, for example, has allowed for bidirectional manipulation of genetically-identified neurons, at an unprecedented temporal resolution. To capitalize on these tools and gain insight into dynamic interactions among brain microcircuits, it is essential that one has the ability to record from ensembles of neurons deep within the brain of this small rodent, in both head-fixed and freely behaving preparations. To record from deep structures and distinct cell layers requires a preparation that allows precise advancement of electrodes towards desired brain regions. To record neural ensembles, it is necessary that each electrode be independently movable, allowing the experimenter to resolve individual cells while leaving neighboring electrodes undisturbed. To do both in a freely behaving mouse requires an electrode drive that is lightweight, resilient, and highly customizable for targeting specific brain structures. A technique for designing and fabricating miniature, ultralight weight, microdrive electrode arrays that are individually customizable and easily assembled from commercially available parts is presented. These devices are easily scalable and can be customized to the structure being targeted; it has been used successfully to record from thalamic and cortical regions in a freely behaving animal during natural behavior.

MeSH Terms
Animals Brain/physiology Electrodes, Implanted Electrophysiological Phenomena Mice Microelectrodes
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Brunetti Philip M
The Neuroscience Institute, New York University Langone Medical Center.
Wimmer Ralf D
The Neuroscience Institute, New York University Langone Medical Center.
Liang Li
The Neuroscience Institute, New York University Langone Medical Center.
Siegle Joshua H
Department of Brain and Cognitive Science, Massachusetts Institute of Technology.
Voigts Jakob
Department of Brain and Cognitive Science, Massachusetts Institute of Technology.
Wilson Matthew
Department of Brain and Cognitive Science, Massachusetts Institute of Technology.
Halassa Michael M
The Neuroscience Institute, New York University Langone Medical Center; [email protected].
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Article Info
Journal
Journal of visualized experiments : JoVE
Abbr.
J Vis Exp
ISSN
1940-087X
Published
2014-09-08
Epub
2014-00-08
Pages
e51675
Language
English
Region
United States
NLM ID
101313252
PMCID
PMC4309135
Subset
IM
Grants
NIMH NIH HHS · R25 MH094612 · United States
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