ArticleNpj flexible electronics2025
Mechanically-adaptive, resveratrol-eluting neural probes for improved intracortical recording performance and stability.
Article in Npj flexible electronics, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 4 papers.
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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.
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Who cites it
4 citing papers in PubMed.
- Multifunctional material platforms for neural interfaces: active orchestration of dynamic foreign body response across implantation lifetimes.Bioactive materials · 2026Review
- Closed-crown packaging system for stable, long-term neural recording in group-housed mice.Microsystems & nanoengineering · 2026Article
- Antimicrobial coated intracortical probes reduce invading microbe abundance and subsequent neuroinflammation.Biomaterials · 2026Article
- Transcriptomic analysis of the physiological responses to injuries induced accompanying intracortical microelectrode implantation.Biomaterials · 2026Article
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Authors and funding
15 authors.
Funding
Abstract
Intracortical microelectrodes are used for recording activity from individual neurons, providing both a valuable neuroscience tool and an enabling medical technology for individuals with motor disabilities. Standard neural probes carrying the microelectrodes are rigid silicon-based structures that can penetrate the brain parenchyma to interface with the targeted neurons. Unfortunately, within weeks after implantation, neural recording quality from microelectrodes degrades, owing largely to a neuroinflammatory response. Key contributors to the neuroinflammatory response include mechanical mismatch at the device-tissue interface and oxidative stress. We developed a mechanically-adaptive, resveratrol-eluting (MARE) neural probe to mitigate both mechanical mismatch and oxidative stress and thereby promote improved neural recording quality and longevity. In this work, we demonstrate that compared to rigid silicon controls, highly-flexible MARE probes exhibit improved recording performance, more stable impedance, and a healing tissue response. With further optimization, MARE probes can serve as long-term, robust neural probes for brain-machine interface applications.
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Registered trials
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