4.7 Article

Wireless, battery-free, and fully implantable electrical neurostimulation in freely moving rodents

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MICROSYSTEMS & NANOENGINEERING
卷 7, 期 1, 页码 -

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SPRINGERNATURE
DOI: 10.1038/s41378-021-00294-7

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资金

  1. National Institute of Biomedical Imaging and Bioengineering of the National Institutes of Health [T32EB000809]
  2. ARCS Foundation
  3. University of Arizona Department of Biomedical Engineering [CA-CFPP NANO-3310342]
  4. MSIT (Ministry of Science and ICT), Korea, under the ICT Creative Consilience program [IITP2020-0-01821]
  5. Nano Material Technology Development Program through the National Research Foundation of Korea (NRF) - Ministry of Science and ICT of Korea [2020M3H4A1A03084600]
  6. Eunice Kennedy Shriver National Institute of Child Health & Human Development [K12HD073945]
  7. University of Pennsylvania Department of Neurosurgery startup funds

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The study presents a novel wireless, battery-free implantable deep brain stimulation system, which enables researchers to better understand the long-term efficacy and therapeutic mechanisms of DBS. The system features flexible parameter control and can provide stable stimulation of brain structures in rodents over extended periods.
Implantable deep brain stimulation (DBS) systems are utilized for clinical treatment of diseases such as Parkinson's disease and chronic pain. However, long-term efficacy of DBS is limited, and chronic neuroplastic changes and associated therapeutic mechanisms are not well understood. Fundamental and mechanistic investigation, typically accomplished in small animal models, is difficult because of the need for chronic stimulators that currently require either frequent handling of test subjects to charge battery-powered systems or specialized setups to manage tethers that restrict experimental paradigms and compromise insight. To overcome these challenges, we demonstrate a fully implantable, wireless, battery-free platform that allows for chronic DBS in rodents with the capability to control stimulation parameters digitally in real time. The devices are able to provide stimulation over a wide range of frequencies with biphasic pulses and constant voltage control via low-impedance, surface-engineered platinum electrodes. The devices utilize off-the-shelf components and feature the ability to customize electrodes to enable broad utility and rapid dissemination. Efficacy of the system is demonstrated with a readout of stimulation-evoked neural activity in vivo and chronic stimulation of the medial forebrain bundle in freely moving rats to evoke characteristic head motion for over 36 days.

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