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BMC Neuroscience· 2026Q2

Recruitment of Aα/Aβ fibers during tonic electrical, optogenetic and combined stimulation in the mouse sciatic nerve

Mary G Ardren, Benjamin Wrobel, Jerico V. Matarazzo, Alex C. Thompson et al.

Short summary

Combined optogenetic and electrical stimulation of mouse sciatic nerves produced facilitated Aα/Aβ-fiber responses (>85% facilitation) that were sustained over time, unlike optogenetic-only stimulation which decayed rapidly (>20 Hz) and electrical stimulation which also declined in a frequency-dependent manner.

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Key points

  • Optogenetic stimulation selectively activated Aα/Aβ-fibers but responses decayed exponentially and were lost above 20 Hz.
  • Electrical stimulation also resulted in frequency-dependent declines in Aα/Aβ-fiber compound action potential (CAP) responses.
  • Combined optogenetic and electrical stimulation facilitated Aα/Aβ-fiber CAP responses by over 85% compared to individual methods.
  • Facilitated responses from combined stimulation were sustained throughout the stimulation period, irrespective of frequency.

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Abstract

Abstract Background Neuromodulation of peripheral nerves via implanted devices produces relief from chronic pain in some patients, but rarely fully eliminates pain. Electrical stimulation lacks selectivity (e.g., between afferent and efferent fibers) to activate only the target Aα/Aβ-fiber axons and must have the stimulating current capped to avoid motor neuron activation, potentially reducing the efficacy of the treatment. Optogenetics offers a potential solution, using genetic tools and light to selectively target the neuromodulation, but responses to tonic optogenetic stimulation decay over time, especially at high frequencies. Combining optogenetic stimulation with electrical stimulation preferentially boosts the response in the targeted population, but it is unknown how responses to combined stimulation are maintained over time. In this study, we measured Aα/Aβ-fiber responses in the sciatic nerve of isoflurane-anaesthetized channelrhodopsin transgenic mice, in response to tonic electrical, optogenetic or combined stimulation delivered at a clinically relevant range of frequencies (4 to 100 Hz; up to 60 seconds). Results Optogenetic stimulation was highly selective for Aα/Aβ-fiber activation with no motor response. When stimulated with light alone, Aα/Aβ-fiber compound action potential (CAP) responses showed an exponential and frequency-dependent ( p < 0.001) reduction in response amplitude, often with complete loss of detectable response at >20 Hz stimulation. Aα/Aβ-fiber CAP responses to electrical stimulation also declined in a frequency-dependent ( p < 0.001), dual-phase exponential manner. The rapid reduction in response size for combined stimulation was greater than that of electrical stimulation ( p < 0.05) before following a similar secondary decline ( p = 0.10). Importantly, responses to combined stimulation were larger than electrical and optical stimulation alone across the stimulation period (>85% of responses were facilitated) and this phenomenon was unaffected by stimulation frequency ( p = 0.33). Conclusion Optogenetic-only methods are untenable for sustained neuromodulation, even at low frequencies. Facilitated responses from combined stimulation allow a more sustained response compared to optical stimulation alone, while still offering the high selectivity of the targeted optogenetic approach. This study provides further evidence for combined stimulation as a potential approach to improve the analgesic effect of existing peripheral nerve stimulation methods.

The authors' abstract, as published at the source. BMC Neuroscience, 2026 · DOI ↗

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Field: Cellular and Molecular Neuroscience

Cellular and Molecular NeuroscienceNeuroscience