The results indicate that TNAs provide a multifunctional, tunable interface capable of locally modulating the neuroimmune microenvironment, which may enable long-term reliable intracortical microelectrode recordings and inform the future design of functional recording and stimulating probes. PMID 42504606, DOI 10.1039/d5tb02785c
Spatial Proteomic Analysis of Antimicrobial Therapeutic-Releasing Intracortical Probes
Summary
The study uses spatial proteomics to assess tissue around non-functional intracortical microelectrodes implanted for four weeks in mice, measuring neuronal integrity, immune-cell activation and local cytokine expression around probes coated with drug-loaded, controlled-release titanium dioxide nanotube array (TNA) coatings. The authors note that blood-brain barrier disruption can translocate gut-derived bacteria to the implant site and sustain chronic inflammation, and that the TNA coating's therapeutic loading and controlled release further damp residual neuroinflammation. They conclude that TNA offers a multifunctional, tunable interface for locally regulating the neuroimmune microenvironment, a step toward long-term reliable intracortical recordings.
Why it matters
Spatial proteomics turns the neuroimmune response — the factor that has long capped intracortical recording stability — into a measurable, tunable coating variable, supplying platform data for future recording- and stimulation-probe design.
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pubmed.ncbi.nlm.nih.gov 2026-07-27
Case Western Reserve UniversityLouis Stokes Cleveland VA Medical CenterThe University of Texas at DallasElectrode MaterialsIntracortical ElectrodesUnited States