» Articles » PMID: 35672294

Electro-optical Mechanically Flexible Coaxial Microprobes for Minimally Invasive Interfacing with Intrinsic Neural Circuits

Overview
Journal Nat Commun
Specialty Biology
Date 2022 Jun 7
PMID 35672294
Authors
Affiliations
Soon will be listed here.
Abstract

Central to advancing our understanding of neural circuits is developing minimally invasive, multi-modal interfaces capable of simultaneously recording and modulating neural activity. Recent devices have focused on matching the mechanical compliance of tissue to reduce inflammatory responses. However, reductions in the size of multi-modal interfaces are needed to further improve biocompatibility and long-term recording capabilities. Here a multi-modal coaxial microprobe design with a minimally invasive footprint (8-14 µm diameter over millimeter lengths) that enables efficient electrical and optical interrogation of neural networks is presented. In the brain, the probes allowed robust electrical measurement and optogenetic stimulation. Scalable fabrication strategies can be used with various electrical and optical materials, making the probes highly customizable to experimental requirements, including length, diameter, and mechanical properties. Given their negligible inflammatory response, these probes promise to enable a new generation of readily tunable multi-modal devices for long-term, minimally invasive interfacing with neural circuits.

Citing Articles

A self-stiffening compliant intracortical microprobe.

Sharafkhani N, Long J, Adams S, Kouzani A Biomed Microdevices. 2024; 26(1):17.

PMID: 38345721 PMC: 10861748. DOI: 10.1007/s10544-024-00700-7.


The ultra-thin, minimally invasive surface electrode array NeuroWeb for probing neural activity.

Lee J, Pyo Y, Kim Y, Hong J, Jo Y, Choi W Nat Commun. 2023; 14(1):7088.

PMID: 37925553 PMC: 10625630. DOI: 10.1038/s41467-023-42860-9.

References
1.
Aravanis A, Wang L, Zhang F, Meltzer L, Mogri M, Schneider M . An optical neural interface: in vivo control of rodent motor cortex with integrated fiberoptic and optogenetic technology. J Neural Eng. 2007; 4(3):S143-56. DOI: 10.1088/1741-2560/4/3/S02. View

2.
Cogan S . Neural stimulation and recording electrodes. Annu Rev Biomed Eng. 2008; 10:275-309. DOI: 10.1146/annurev.bioeng.10.061807.160518. View

3.
Mukamel E, Nimmerjahn A, Schnitzer M . Automated analysis of cellular signals from large-scale calcium imaging data. Neuron. 2009; 63(6):747-60. PMC: 3282191. DOI: 10.1016/j.neuron.2009.08.009. View

4.
Rivnay J, Wang H, Fenno L, Deisseroth K, Malliaras G . Next-generation probes, particles, and proteins for neural interfacing. Sci Adv. 2017; 3(6):e1601649. PMC: 5466371. DOI: 10.1126/sciadv.1601649. View

5.
Sekiguchi K, Shekhtmeyster P, Merten K, Arena A, Cook D, Hoffman E . Imaging large-scale cellular activity in spinal cord of freely behaving mice. Nat Commun. 2016; 7:11450. PMC: 4853475. DOI: 10.1038/ncomms11450. View