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Author

L. Golestanirad

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Aug 2026

Fabrication and Biocompatibility Testing of Thin-Film Metamaterial Neurostimulation Leads for Magnetic Resonance Imaging.

OBJECTIVE Chronically implantable neurostimulation leads, such as those used for deep brain stimulation, remain only partially MRI-compatible due to the presence of wire conductors that can induce hazardous radiofrequency (RF) heating. As a result, current systems are limited to MRI-conditional use, restricting patients' access to routine clinical imaging. Here, we propose a novel metamaterial based Resistive Tapered Stripline (RTS) architecture as a candidate solution for next-generation DBS leads. METHODS The RTS design incorporates impedance transitions along the lead, producing metamaterial-like behavior that increases inductance and promotes RF current reflection and dissipation while preserving low-frequency electrical conduction required for the therapeutic stimulation. Ultrathin titanium-gold microstrip segments with sharp impedance transitions were fabricated via physical vapor deposition on a non-conductive, non-magnetic substrate wire, with electrical properties guided by electromagnetic simulations. Material biocompatibility was evaluated in a rodent model following ISO 10993-6 guidelines. RESULTS Scattering-parameter measurements demonstrated high RF reflection (>64% of incident power), low transmission, and symmetric electrical behavior, confirming effective suppression of RF coupling. Histological analyses of microgliosis, astrocytosis, neurodegeneration, demyelination, and cellular composition showed no significant differences between RTS wires and commercially available DBS leads, confirming material biocompatibility. CONCLUSION We developed and tested a novel technology specifically designed as a candidate for future MRI compatible implantable DBS leads. SIGNIFICANCE This technology could represent a promising advancement toward MRI safer implantable neurostimulation systems, enabling broader access to high-quality MRI while maintaining device performance and long-term biocompatibility. Its versatile materials and manufacturing approach could be potentially extended to other chronically active implantable leads.

F. Marturano, Tayeb Zaidi, Aditya Tummala et al. · 0 citations
Jul 2026

A Novel Lead Construct to Reduce MRI-Induced RF Heating: Construction, In Vitro Validation, and In Vivo Predictions.

OBJECTIVE Magnetic resonance imaging (MRI) of patients with active implantable medical devices is restricted by radiofrequency (RF) heating of conductive leads. Our goal was to develop and validate resistively tapered cylindrical (RTC) leads that intrinsically suppress RF heating. METHODS Two-segment RTC wire prototypes (RTC1, RTC2) were fabricated by thin-film physical vapor deposition to create axial conductivity discontinuities. The transfer functions for both were measured and validated with in vitro heating experiments at 1.5 T along 12 trajectories and benchmarked against a uniform conductivity control wire. Calibrated transfer functions were combined with electromagnetic simulations of 210 clinically realistic deep brain stimulation (DBS) trajectories in an anatomically detailed full-body model to predict in vivo heating, with a commercial DBS lead included for comparison. RESULTS Gel phantom experiments showed the RTC wires cut peak RF-induced temperature rise at the tip by $>$60% versus the control wire in vitro, lowering the mean heating from 3.67 to 1.43. The in vivo predictions using the transfer function methodology showed a $>$20% reduction in the mean tip heating vs. the uniform conductivity wire ($p< 0.001$) and a 20-fold lower peak heating compared to a commercial DBS lead under identical exposure conditions. CONCLUSION Axial conductivity tapering markedly attenuates MRI-induced RF heating without requiring significant changes to lead geometry. SIGNIFICANCE Conductivity-tailored leads provide a practical path toward inherently MRI-compatible AIMDs, potentially expanding diagnostic imaging access for millions of patients.

Tayeb Zaidi, F. Marturano, P. Sanpitak et al. · 3 citations · ⚡1

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