Growing neuronal islands on multi-electrode arrays using an accurate positioning-μCP device

J Neurosci Methods. 2016 Jan 15:257:194-203. doi: 10.1016/j.jneumeth.2015.09.022. Epub 2015 Oct 1.

Abstract

Background: Multi-electrode arrays (MEAs) allow non-invasive multi-unit recording in-vitro from cultured neuronal networks. For sufficient neuronal growth and adhesion on such MEAs, substrate preparation is required. Plating of dissociated neurons on a uniformly prepared MEA's surface results in the formation of spatially extended random networks with substantial inter-sample variability. Such cultures are not optimally suited to study the relationship between defined structure and dynamics in neuronal networks. To overcome these shortcomings, neurons can be cultured with pre-defined topology by spatially structured surface modification. Spatially structuring a MEA surface accurately and reproducibly with the equipment of a typical cell-culture laboratory is challenging.

New method: In this paper, we present a novel approach utilizing micro-contact printing (μCP) combined with a custom-made device to accurately position patterns on MEAs with high precision. We call this technique AP-μCP (accurate positioning micro-contact printing).

Comparison with existing methods: Other approaches presented in the literature using μCP for patterning either relied on facilities or techniques not readily available in a standard cell culture laboratory, or they did not specify means of precise pattern positioning.

Conclusion: Here we present a relatively simple device for reproducible and precise patterning in a standard cell-culture laboratory setting. The patterned neuronal islands on MEAs provide a basis for high throughput electrophysiology to study the dynamics of single neurons and neuronal networks.

Keywords: MEA; Patterning; μCP.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Action Potentials
  • Animals
  • Astrocytes / physiology
  • Cell Adhesion
  • Cell Count
  • Cell Culture Techniques / instrumentation*
  • Cell Culture Techniques / methods
  • Equipment Design
  • Hippocampus / cytology
  • Hippocampus / physiology
  • Immunohistochemistry
  • Microelectrodes*
  • Microscopy, Electron, Scanning
  • Microscopy, Phase-Contrast
  • Microtechnology / instrumentation*
  • Microtechnology / methods
  • Neurons / cytology
  • Neurons / physiology*
  • Printing / instrumentation*
  • Printing / methods
  • Rats
  • Reproducibility of Results
  • Surface Properties