4.6 Article

Flexible, high-resolution thin-film electrodes for human and animal neural research

Journal

JOURNAL OF NEURAL ENGINEERING
Volume 18, Issue 4, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1741-2552/ac02dc

Keywords

intraoperative; ECoG; electrode; iEEG; LCP; Brain Machine Interface (BMI); Neural Interface

Funding

  1. DoD [EP200077]
  2. NIH [U01 NS099697]
  3. NSF [CBET-1752274]
  4. NIH CTSA grant [UL1TR002553]
  5. Find A Cure for Epilepsy and Seizures (FACES)

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The study introduces a flexible, high-resolution thin-film electrode for recording neural activity in animals and humans. The electrodes offer higher electrode density, reduced stiffness, and lower impedance, allowing observation of high-frequency neural activity and improving efficiency in the operating room setup.
Objective. Brain functions such as perception, motor control, learning, and memory arise from the coordinated activity of neuronal assemblies distributed across multiple brain regions. While major progress has been made in understanding the function of individual neurons, circuit interactions remain poorly understood. A fundamental obstacle to deciphering circuit interactions is the limited availability of research tools to observe and manipulate the activity of large, distributed neuronal populations in humans. Here we describe the development, validation, and dissemination of flexible, high-resolution, thin-film (TF) electrodes for recording neural activity in animals and humans. Approach. We leveraged standard flexible printed-circuit manufacturing processes to build high-resolution TF electrode arrays. We used biocompatible materials to form the substrate (liquid crystal polymer; LCP), metals (Au, PtIr, and Pd), molding (medical-grade silicone), and 3D-printed housing (nylon). We designed a custom, miniaturized, digitizing headstage to reduce the number of cables required to connect to the acquisition system and reduce the distance between the electrodes and the amplifiers. A custom mechanical system enabled the electrodes and headstages to be pre-assembled prior to sterilization, minimizing the setup time required in the operating room. PtIr electrode coatings lowered impedance and enabled stimulation. High-volume, commercial manufacturing enables cost-effective production of LCP-TF electrodes in large quantities. Main Results. Our LCP-TF arrays achieve 25x higher electrode density, 20x higher channel count, and 11x reduced stiffness than conventional clinical electrodes. We validated our LCP-TF electrodes in multiple human intraoperative recording sessions and have disseminated this technology to >10 research groups. Using these arrays, we have observed high-frequency neural activity with sub-millimeter resolution. Significance. Our LCP-TF electrodes will advance human neuroscience research and improve clinical care by enabling broad access to transformative, high-resolution electrode arrays.

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