Improved in vitro electrophysiology using 3D-structured microelectrode arrays with a micro-mushrooms islets architecture capable of promoting topotaxis. (12th April 2019)
- Record Type:
- Journal Article
- Title:
- Improved in vitro electrophysiology using 3D-structured microelectrode arrays with a micro-mushrooms islets architecture capable of promoting topotaxis. (12th April 2019)
- Main Title:
- Improved in vitro electrophysiology using 3D-structured microelectrode arrays with a micro-mushrooms islets architecture capable of promoting topotaxis
- Authors:
- Mateus, José C
Lopes, Cátia D F
Cerquido, Mónica
Leitão, Luís
Leitão, Diana
Cardoso, Susana
Ventura, João
Aguiar, Paulo - Abstract:
- Novelty and significance: A novel MEA architecture with excellent electrophysiological recordings is presented, where planar microelectrodes are replaced by localized 3 × 3 arrays of mushroom-shaped microstructures. The micro-mushrooms in this islets configuration are not for membrane engulfment but rather for somata entrapment and neurites embracement. As extracellular signals have a significant contribution from axons initial segment, this MEA design also addresses the electrode-neurites electrical coupling. These islets act as strong physical cues, causing topotaxis and increasing by two-fold the probability for somata to localize in the islets. We carry this topotaxis study not only with rat cortical neurons but also with human-derived SH-SY5Y cells. Abstract Objective . Planar microelectrode arrays are widely used in neuroscience but have relatively low electrical coupling and signal-to-noise ratio (SNR) in electrophysiology recordings. Strong efforts are therefore being made in improving microelectrode arrays (MEAs) performance, exploring both the microelectrode's shape and the array's architecture. Topographical features can be used in MEAs for promoting neuron-microelectrode contact, making 3D-microstructured MEAs an interesting design strategy for better electrophysiology measurements. Approach . Here, we present a novel MEA architecture, where planar microelectrodes are replaced by localized 3 × 3 arrays of mushroom-shaped microstructures. Contrarily toNovelty and significance: A novel MEA architecture with excellent electrophysiological recordings is presented, where planar microelectrodes are replaced by localized 3 × 3 arrays of mushroom-shaped microstructures. The micro-mushrooms in this islets configuration are not for membrane engulfment but rather for somata entrapment and neurites embracement. As extracellular signals have a significant contribution from axons initial segment, this MEA design also addresses the electrode-neurites electrical coupling. These islets act as strong physical cues, causing topotaxis and increasing by two-fold the probability for somata to localize in the islets. We carry this topotaxis study not only with rat cortical neurons but also with human-derived SH-SY5Y cells. Abstract Objective . Planar microelectrode arrays are widely used in neuroscience but have relatively low electrical coupling and signal-to-noise ratio (SNR) in electrophysiology recordings. Strong efforts are therefore being made in improving microelectrode arrays (MEAs) performance, exploring both the microelectrode's shape and the array's architecture. Topographical features can be used in MEAs for promoting neuron-microelectrode contact, making 3D-microstructured MEAs an interesting design strategy for better electrophysiology measurements. Approach . Here, we present a novel MEA architecture, where planar microelectrodes are replaced by localized 3 × 3 arrays of mushroom-shaped microstructures. Contrarily to previous studies, the purpose for the micro-mushrooms in this islets configuration is not membrane engulfment but rather entrapment, for somata, and embracement, for neurites. Main results . We show that these islet-like agglomerates of micro-mushrooms act as strong physical cues, causing topotaxis and increasing the probability by two-fold for somata to localize in the islets, and neurites to curl on the microelectrodes. Importantly, we carry this topotaxis study not only with rat cortical neurons but also with human-derived SH-SY5Y cells. With recent evidence that extracellular signals have a significant contribution from axons initial segment it becomes clear that MEA designs should also address the electrode-neurites coupling. We detail the fabrication process of these chips, designed to be compatible with a standard MEA recording system, and make the computer-aided design (CAD) publically available. We also demonstrate the electrophysiological capabilities of this new MEA by electrochemical impedance spectroscopy and recordings of cortical and hippocampal neurons, showing excellent SNR. Significance . Overall this new MEA islets configuration has a significant impact in the array efficiency and contributes towards improved high yield and high fidelity/quality extracellular recordings from mammalian neurons. … (more)
- Is Part Of:
- Journal of neural engineering. Volume 16:Number 3(2019:Jun.)
- Journal:
- Journal of neural engineering
- Issue:
- Volume 16:Number 3(2019:Jun.)
- Issue Display:
- Volume 16, Issue 3 (2019)
- Year:
- 2019
- Volume:
- 16
- Issue:
- 3
- Issue Sort Value:
- 2019-0016-0003-0000
- Page Start:
- Page End:
- Publication Date:
- 2019-04-12
- Subjects:
- topotaxis and neuronal guidance -- neurite-electrode interface -- neuron-electrode interface -- human-derived SH-SY5Y cells -- mushroom-shaped microelectrodes -- microelectrode array
Neurosciences -- Periodicals
Biomedical engineering -- Periodicals
612.8 - Journal URLs:
- http://iopscience.iop.org/1741-2552/ ↗
http://ioppublishing.org/ ↗ - DOI:
- 10.1088/1741-2552/ab0b86 ↗
- Languages:
- English
- ISSNs:
- 1741-2560
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - BLDSS-3PM
British Library STI - ELD Digital store - Ingest File:
- 10244.xml