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Sources of off-target effects of vagus nerve stimulation using the helical clinical lead in domestic pigs

OBJECTIVE. Clinical data suggest that efficacious vagus nerve stimulation (VNS) is limited by side effects such as cough and dyspnea that have stimulation thresholds lower than those for therapeutic outcomes. VNS side effects are putatively caused by activation of nearby muscles within the neck, via...

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Autores principales: Nicolai, Evan N, Settell, Megan L, Knudsen, Bruce E, McConico, Andrea L, Gosink, Brian A, Trevathan, James K, Baumgart, Ian W, Ross, Erika K, Pelot, Nicole A, Grill, Warren M, Gustafson, Kenneth J, Shoffstall, Andrew J, Williams, Justin C, Ludwig, Kip A
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7717671/
https://www.ncbi.nlm.nih.gov/pubmed/32554888
http://dx.doi.org/10.1088/1741-2552/ab9db8
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author Nicolai, Evan N
Settell, Megan L
Knudsen, Bruce E
McConico, Andrea L
Gosink, Brian A
Trevathan, James K
Baumgart, Ian W
Ross, Erika K
Pelot, Nicole A
Grill, Warren M
Gustafson, Kenneth J
Shoffstall, Andrew J
Williams, Justin C
Ludwig, Kip A
author_facet Nicolai, Evan N
Settell, Megan L
Knudsen, Bruce E
McConico, Andrea L
Gosink, Brian A
Trevathan, James K
Baumgart, Ian W
Ross, Erika K
Pelot, Nicole A
Grill, Warren M
Gustafson, Kenneth J
Shoffstall, Andrew J
Williams, Justin C
Ludwig, Kip A
author_sort Nicolai, Evan N
collection PubMed
description OBJECTIVE. Clinical data suggest that efficacious vagus nerve stimulation (VNS) is limited by side effects such as cough and dyspnea that have stimulation thresholds lower than those for therapeutic outcomes. VNS side effects are putatively caused by activation of nearby muscles within the neck, via direct muscle activation or activation of nerve fibers innervating those muscles. Our goal was to determine the thresholds at which various VNS-evoked effects occur in the domestic pig—an animal model with vagus anatomy similar to human—using the bipolar helical lead deployed clinically. APPROACH. Intrafascicular electrodes were placed within the vagus nerve to record electroneurographic (ENG) responses, and needle electrodes were placed in the vagal-innervated neck muscles to record electromyographic (EMG) responses. MAIN RESULTS. Contraction of the cricoarytenoid muscle occurred at low amplitudes (~0.3 mA) and resulted from activation of motor nerve fibers in the cervical vagus trunk within the electrode cuff which bifurcate into the recurrent laryngeal branch of the vagus. At higher amplitudes (~1.4 mA), contraction of the cricoarytenoid and cricothyroid muscles was generated by current leakage outside the cuff to activate motor nerve fibers running within the nearby superior laryngeal branch of the vagus. Activation of these muscles generated artifacts in the ENG recordings that may be mistaken for compound action potentials representing slowly conducting Aδ-, B-, and C-fibers. SIGNIFICANCE. Our data resolve conflicting reports of the stimulation amplitudes required for C-fiber activation in large animal studies (>10 mA) and human studies (<250 μA). After removing muscle-generated artifacts, ENG signals with post-stimulus latencies consistent with Aδ- and B-fibers occurred in only a small subset of animals, and these signals had similar thresholds to those that caused bradycardia. By identifying specific neuroanatomical pathways that cause off-target effects and characterizing the stimulation dose-response curves for on- and off-target effects, we hope to guide interpretation and optimization of clinical VNS
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spelling pubmed-77176712020-12-04 Sources of off-target effects of vagus nerve stimulation using the helical clinical lead in domestic pigs Nicolai, Evan N Settell, Megan L Knudsen, Bruce E McConico, Andrea L Gosink, Brian A Trevathan, James K Baumgart, Ian W Ross, Erika K Pelot, Nicole A Grill, Warren M Gustafson, Kenneth J Shoffstall, Andrew J Williams, Justin C Ludwig, Kip A J Neural Eng Article OBJECTIVE. Clinical data suggest that efficacious vagus nerve stimulation (VNS) is limited by side effects such as cough and dyspnea that have stimulation thresholds lower than those for therapeutic outcomes. VNS side effects are putatively caused by activation of nearby muscles within the neck, via direct muscle activation or activation of nerve fibers innervating those muscles. Our goal was to determine the thresholds at which various VNS-evoked effects occur in the domestic pig—an animal model with vagus anatomy similar to human—using the bipolar helical lead deployed clinically. APPROACH. Intrafascicular electrodes were placed within the vagus nerve to record electroneurographic (ENG) responses, and needle electrodes were placed in the vagal-innervated neck muscles to record electromyographic (EMG) responses. MAIN RESULTS. Contraction of the cricoarytenoid muscle occurred at low amplitudes (~0.3 mA) and resulted from activation of motor nerve fibers in the cervical vagus trunk within the electrode cuff which bifurcate into the recurrent laryngeal branch of the vagus. At higher amplitudes (~1.4 mA), contraction of the cricoarytenoid and cricothyroid muscles was generated by current leakage outside the cuff to activate motor nerve fibers running within the nearby superior laryngeal branch of the vagus. Activation of these muscles generated artifacts in the ENG recordings that may be mistaken for compound action potentials representing slowly conducting Aδ-, B-, and C-fibers. SIGNIFICANCE. Our data resolve conflicting reports of the stimulation amplitudes required for C-fiber activation in large animal studies (>10 mA) and human studies (<250 μA). After removing muscle-generated artifacts, ENG signals with post-stimulus latencies consistent with Aδ- and B-fibers occurred in only a small subset of animals, and these signals had similar thresholds to those that caused bradycardia. By identifying specific neuroanatomical pathways that cause off-target effects and characterizing the stimulation dose-response curves for on- and off-target effects, we hope to guide interpretation and optimization of clinical VNS 2020-07-24 /pmc/articles/PMC7717671/ /pubmed/32554888 http://dx.doi.org/10.1088/1741-2552/ab9db8 Text en Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Nicolai, Evan N
Settell, Megan L
Knudsen, Bruce E
McConico, Andrea L
Gosink, Brian A
Trevathan, James K
Baumgart, Ian W
Ross, Erika K
Pelot, Nicole A
Grill, Warren M
Gustafson, Kenneth J
Shoffstall, Andrew J
Williams, Justin C
Ludwig, Kip A
Sources of off-target effects of vagus nerve stimulation using the helical clinical lead in domestic pigs
title Sources of off-target effects of vagus nerve stimulation using the helical clinical lead in domestic pigs
title_full Sources of off-target effects of vagus nerve stimulation using the helical clinical lead in domestic pigs
title_fullStr Sources of off-target effects of vagus nerve stimulation using the helical clinical lead in domestic pigs
title_full_unstemmed Sources of off-target effects of vagus nerve stimulation using the helical clinical lead in domestic pigs
title_short Sources of off-target effects of vagus nerve stimulation using the helical clinical lead in domestic pigs
title_sort sources of off-target effects of vagus nerve stimulation using the helical clinical lead in domestic pigs
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7717671/
https://www.ncbi.nlm.nih.gov/pubmed/32554888
http://dx.doi.org/10.1088/1741-2552/ab9db8
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