Focused ultrasound excites action potentials in mammalian peripheral neurons in part through the mechanically gated ion channel PIEZO2.
Authors: Hoffman BU, Baba Y, Lee SA, Tong CK, Konofagou EE, Lumpkin EA
Neurons of the peripheral nervous system (PNS) are tasked with diverse roles, from encoding touch, pain, and itch to interoceptive control of inflammation and organ physiology. Thus, technologies that allow precise control of peripheral nerve activity have the potential to regulate a wide range of biological processes. Noninvasive modulation of neuronal activity is an important translational application of focused ultrasound (FUS). Recent studies have identified effective strategies to modulate brain circuits; however, reliable parameters to control the activity of the PNS are lacking. To develop robust noninvasive technologies for peripheral nerve modulation, we employed targeted FUS stimulation and electrophysiology in mouse ex vivo skin-saphenous nerve preparations to record the activity of individual mechanosensory neurons. Parameter space exploration showed that stimulating neuronal receptive fields with high-intensity, millisecond FUS pulses reliably and repeatedly evoked one-to-one action potentials in all peripheral neurons recorded. Interestingly, when neurons were classified based on neurophysiological properties, we identified a discrete range of FUS parameters capable of exciting all neuronal classes, including myelinated A fibers and unmyelinated C fibers. Peripheral neurons were excited by FUS stimulation targeted to either cutaneous receptive fields or peripheral nerves, a key finding that increases the therapeutic range of FUS-based peripheral neuromodulation. FUS elicited action potentials with millisecond latencies compared with electrical stimulation, suggesting ion channel–mediated mechanisms. Indeed, FUS thresholds were elevated in neurons lacking the mechanically gated channel PIEZO2. Together, these results demonstrate that transcutaneous FUS drives peripheral nerve activity by engaging intrinsic mechanotransduction mechanisms in neurons [B. U. Hoffman, PhD thesis, (2019)].
Introduction
Purpose
Transcranial ultrasound stimulation
Study Objective
To identify reliable focused ultrasound stimulation parameters and the underlying molecular mechanisms that elicit action potentials in individual peripheral neurons.
Animal model / Human subject
Mouse (Mus musculus); strain not reported; age not reported; sex not reported
Disease model
Healthy
Outcomes and Safety
Summary of Outcomes
Focused ultrasound (3.57 MHz) delivered as high‑intensity millisecond pulses reliably evoked single, one‑to‑one action potentials in all classes of peripheral sensory neurons (Aβ, Aδ and C) when targeted to receptive fields or nerve trunks, with FUS-evoked latencies ≈1 ms longer than electrical stimulation and reduced sensitivity in PIEZO2-deficient mice. Effective FUS parameters were millisecond-scale durations (~0.5–2.0 ms) at high intensities (tens to hundreds of W/cm^2; reported effective range ~155–500 W/cm^2), with total sonication energy correlated with response (E50 ≈186 nJ) and lower thresholds for receptive-field versus nerve-trunk stimulation.
Duration of biological effect
0.1 to 2.0 ms
Safety-related matter
The authors state noninvasive FUS could increase safety compared with invasive surgical electrode placement (which can cause significant complications). They report negligible thermal effects (no significant temperature increase) at their maximal FUS parameters and do not describe tissue damage or other adverse events, although they note that some neurons showed decreased firing or suppression at higher stimulus intensities, indicating dose-dependent inhibitory effects.
Brain Region
Ultrasound Parameters
FUS Mode
pulsed
Pulse duration
millisecond (exact duration not specified)
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
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