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Published on: January 19, 2020
Antimicrobial coated intracortical probes reduce invading microbe abundance and subsequent neuroinflammation
G Burkhart1, S E Grabinski2, J J Wang1
1Department of Biomedical Engineering, Case Western Reserve University, Cleveland, OH, 44106, USA; Advanced Platform Technology Center, Louis Stokes Cleveland Veterans Affairs Medical Center, Cleveland, OH, 44106, USA.
Abstract:
Intracortical microelectrodes allow for the recording of neural signals in the brain but show decreased recording performance over time. This failure is due primarily to the neuroinflammatory response triggered by microelectrode implantation. We have shown that one consequence of the disruption of the blood-brain barrier following microelectrode probe implantation is the invasion of non-native bacteria to the implant site, which exacerbates the neuroinflammatory response. This study investigates the effects of coating non-functional silicon intracortical microelectrodes with an antimicrobial titania nanotube array (TNA) to reduce the relative abundance of invasive microbes and the resulting neuroinflammatory response. TNA-coated probes were implanted into mice for either 4 weeks (N = 4) or 12 weeks (N = 4) and compared to uncoated probes at both time points. We found that the TNA coatings reduce microbe relative abundance at both acute and chronic time points, correlating with fewer significantly expressed neuroinflammatory markers. Coating probes with TNAs allows for the beneficial effects of the antimicrobial coating to persist to chronic time points, in contrast to the detrimental effects of chronic systemic antibiotic administration reported previously. This study establishes antimicrobial TNA coatings as a platform for controlling the microbial environment, reducing invasive bacteria and neuroinflammation at the implant site. By mitigating the neuroinflammatory response, TNA-coated probes address one of the key contributors to intracortical microelectrode failure, thereby providing a strong platform that may support improved chronic recording performance in future functional intracortical microelectrode applications.
Insights
Antimicrobial titania nanotube array (TNA) coatings on brain microelectrodes reduce invasive microbes and neuroinflammation. This approach improves chronic recording performance by mitigating implant failure.
Area of Science:
- Biomaterials Engineering
- Neuroscience
- Infectious Disease
Background:
- Intracortical microelectrodes record neural signals but degrade over time.
- Neuroinflammation and bacterial invasion at the implant site cause microelectrode failure.
- Disruption of the blood-brain barrier allows microbes to enter the brain.
Purpose of the Study:
- To investigate the efficacy of titania nanotube array (TNA) coatings on microelectrodes.
- To determine if TNA coatings reduce microbial load and neuroinflammation.
- To assess the long-term performance of antimicrobial-coated microelectrodes.
Main Methods:
- Silicon microelectrodes were coated with antimicrobial TNA.
- TNA-coated and uncoated probes were implanted in mice for 4 and 12 weeks.
- Microbial abundance and neuroinflammatory markers were analyzed.
Main Results:
- TNA coatings significantly reduced the relative abundance of microbes at acute and chronic time points.
- Reduced microbial load correlated with decreased expression of neuroinflammatory markers.
- Antimicrobial effects of TNA coatings persisted to chronic time points.
Conclusions:
- Antimicrobial TNA coatings effectively control the microbial environment at the implant site.
- TNA coatings mitigate neuroinflammation, a key factor in microelectrode failure.
- This technology offers a promising platform for enhancing chronic neural recording performance.
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