Issue 22, 2024

Impact of microchannel width on axons for brain-on-chip applications

Abstract

Technologies for axon guidance for in vitro disease models and bottom up investigations are increasingly being used in neuroscience research. One of the most prevalent patterning methods is using polydimethylsiloxane (PDMS) microstructures due to compatibility with microscopy and electrophysiology which enables systematic tracking of axon development with precision and efficiency. Previous investigations of these guidance platforms have noted axons tend to follow edges and avoid sharp turns; however, the specific impact of spatial constraints remains only partially explored. We investigated the influence of microchannel width beyond a constriction point, as well as the number of available microchannels, on axon growth dynamics. Further, by manipulating the size of micron/submicron-sized PDMS tunnels we investigated the space restriction that prevents growth cone penetration showing that restrictions smaller than 350 nm were sufficient to exclude axons. This research offers insights into the interplay of spatial constraints, axon development, and neural behavior. The findings are important for designing in vitro platforms and in vivo neural interfaces for both fundamental neuroscience and translational applications in rapidly evolving neural implant technologies.

Graphical abstract: Impact of microchannel width on axons for brain-on-chip applications

Supplementary files

Article information

Article type
Paper
Submitted
21 May 2024
Accepted
06 Sep 2024
First published
23 Oct 2024
This article is Open Access
Creative Commons BY license

Lab Chip, 2024,24, 5155-5166

Impact of microchannel width on axons for brain-on-chip applications

K. Vulić, G. Amos, T. Ruff, R. Kasm, S. J. Ihle, J. Küchler, J. Vörös and S. Weaver, Lab Chip, 2024, 24, 5155 DOI: 10.1039/D4LC00440J

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