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Updated: Feb 4, 2026

Tools for Surface Treatment of Silicon Planar Intracortical Microelectrodes
Published on: June 8, 2022
The role of inflammation on the functionality of intracortical microelectrodes
Janak Gaire1, Heui Chang Lee, Nicholas Hilborn
1Department of Neuroscience, University of Florida, Gainesville, FL, United States of America.
Insights
Anti-inflammatory treatments did not improve neural recording device performance in rats. Acute inflammation may not be the primary cause of device degradation, suggesting multi-modal strategies are needed for long-term neural interfaces.
Area of Science:
- Biomedical Engineering
- Neuroscience
- Materials Science
Background:
- Neuroinflammation is linked to the decline in intracortical microelectrode (IME) performance.
- Current anti-inflammatory strategies show limited success for chronic neural interfaces.
Purpose of the Study:
- To investigate the impact of modulating inflammation on IME functionality and histology.
- To assess the efficacy of anti-inflammatory treatment in a rat model.
Main Methods:
- Rats implanted with IMEs received systemic injections of lipopolysaccharide (LPS), dexamethasone (DEX), both, or saline.
- Recording metrics and histological outcomes were analyzed.
Main Results:
- LPS and DEX treatments did not adversely affect recording metrics, despite altering inflammatory markers.
- No functional benefit of anti-inflammatory treatment was observed.
- Recording quality degraded over time irrespective of treatment; LPS induced pro-inflammatory histology but not functional decline.
Conclusions:
- Acute inflammatory events may not be the primary driver of IME functional degradation.
- Multi-modal approaches, rather than single anti-inflammatory strategies, are likely necessary for improving long-term IME performance.
Objective:
Neuroinflammation has long been associated with the performance decline of intracortical microelectrodes (IMEs). Consequently, several strategies, including the use of anti-inflammatories, have been employed to mitigate the inflammation surrounding IMEs. However, these strategies have had limited success towards achieving a chronically viable cortical neural interface, questioning the efficacy of anti-inflammatory approach.
Approach:
Herein, we conducted a systematic study in rats implanted with functional devices by modulating inflammation via systemic injection of lipopolysaccharide (LPS), dexamethasone (DEX), a combination of both, or none to assess the degree of inflammation on device functionality. We hypothesized that implanted rats treated with LPS will have a negative impact, and rats treated with DEX will have a positive impact on functionality IMEs and histological outcome.
Main Results:
Contrary to our hypothesis, we did not observe adverse effects in recording metrics among different groups with LPS and/or DEX treatment despite alterations in initial pro-inflammatory markers. We also did not observe any functional benefit of anti-inflammatory treatment. Regardless of the treatment conditions, the recording quality degraded at chronic time points. In end-point histology, implanted rats that received LPS had significantly lower NeuN density and higher levels of CD68 surrounding the implant site, indicative of the pro-inflammatory effect of LPS, which, however, contradicted with the recorded results.
Significance:
Collectively, our results suggest that acute inflammatory events may not be the key driver for functional degradation of IMEs. Future intervention strategies geared towards improving the functional longevity of intracortical devices may benefit using multi-modal approaches rather than a single approach, such as controlling the initial inflammatory response.
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