4.7 Article

Non-monotonic kilohertz frequency neural block thresholds arise from amplitude- and frequency-dependent charge imbalance

Journal

SCIENTIFIC REPORTS
Volume 11, Issue 1, Pages -

Publisher

NATURE RESEARCH
DOI: 10.1038/s41598-021-84503-3

Keywords

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Funding

  1. NIH SPARC Initiative [OT2 OD025340]
  2. Pratt School of Engineering Faculty Discretionary Fund

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The study demonstrates the existence of non-monotonic threshold-frequency relationships between kilohertz frequency and direct current block in nerve conduction. Amplitude- and frequency-dependent charge imbalances play a key role in shifting between different blocking regimes, leading to the potential for selective block of small fiber diameters at lower thresholds. This research reconciles previous contradictory studies and clarifies the mechanisms of interaction between different block regimes.
Reversible block of nerve conduction using kilohertz frequency electrical signals has substantial potential for treatment of disease. However, the ability to block nerve fibers selectively is limited by poor understanding of the relationship between waveform parameters and the nerve fibers that are blocked. Previous in vivo studies reported non-monotonic relationships between block signal frequency and block threshold, suggesting the potential for fiber-selective block. However, the mechanisms of non-monotonic block thresholds were unclear, and these findings were not replicated in a subsequent in vivo study. We used high-fidelity computational models and in vivo experiments in anesthetized rats to show that non-monotonic threshold-frequency relationships do occur, that they result from amplitude- and frequency-dependent charge imbalances that cause a shift between kilohertz frequency and direct current block regimes, and that these relationships can differ across fiber diameters such that smaller fibers can be blocked at lower thresholds than larger fibers. These results reconcile previous contradictory studies, clarify the mechanisms of interaction between kilohertz frequency and direct current block, and demonstrate the potential for selective block of small fiber diameters.

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