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2026-09-02 00:00 China Papers Foundations & Methods Translated from EN

Anti-Fouling Coating Shields Neural Electrode, Signal Stays Clear for Six Months

Summary Researchers at the Technical Institute of Physics and Chemistry of the Chinese Academy of Sciences and collaborating institutions have developed a neural electrode interface that, they report, significantly extended electrode operational lifetime and improved signal fidelity over six months of in vivo implantation. The material, a benzyloxycarbonyl-substituted poly(ornithine-alt-glycine) coating abbreviated OGCbz, resists biofouling and immunogenic rejection without degrading electrical performance, targeting what the authors call the critical obstacle to electrodes that combine long-term recording with tunable biofunctional control: an immune-mediated foreign body response in which glial scar encapsulates implants like cement. Substituting the Cbz group with other functional moieties preserves those antifouling and biocompatibility properties while adding new ones, and as a proof of concept the peptide sequence IKVAV and the antibody cetuximab gave the interface neuron affinity and tumor cell proliferation inhibition respectively; the six-month result came from the IKVAV-functionalized version.
Why it matters Chronic implant failure is usually an immunology problem rather than an electronics one, and coatings that resist encapsulation typically do so by being inert, which forecloses any active role at the tissue interface. Making the antifouling backbone a substitutable platform, then hanging a peptide or an antibody off it without losing that inertness, is the more interesting claim here. A six-month in vivo window is long enough to matter for chronic recording, though the work stays preclinical.

BCIwiki (bciwiki.com) – The study was published in ACS Applied Materials & Interfaces on September 2, 2026. The authors are affiliated with the Technical Institute of Physics and Chemistry of the Chinese Academy of Sciences, the University of Chinese Academy of Sciences, and the Beijing Neurosurgical Institute at Beijing Tiantan Hospital, Capital Medical University. They report a benzyloxycarbonyl (Cbz)-substituted poly(ornithine-alt-glycine) interface, abbreviated OGCbz, for the surface of neural electrodes.Neural electrodes capable of both precise interrogation and biofunctional regulation hold significant promise for diagnosing and treating neurological disorders, the authors write, but a critical challenge lies in mitigating the immune-mediated foreign body response, which often leads to glial scar formation that encapsulates implants like cement and severely compromises functionality. The OGCbz interface inherently resists biofouling and immunogenic rejection without degrading electrical performance, according to the paper, and substituting the Cbz group with other functional moieties maintains those antifouling and biocompatibility properties while imparting corresponding new functions.As a proof of concept, replacing Cbz with the peptide sequence IKVAV and with the antibody cetuximab endowed the interface with neuron affinity and with tumor cell proliferation inhibition respectively, while retaining its inherent antifouling and anti-foreign-body properties. During a six-month in vivo implantation period, IKVAV-functionalized electrodes exhibited a significantly enhanced operational lifetime with improved electrophysiological signal fidelity, the authors say. They describe the work as a reliable and versatile interfacial strategy for electrodes that both record and regulate. The results are preclinical and have not been tested in humans.

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