Hydrogel-based electrodes for selective cervical vagus nerve stimulation

被引:2
作者
Charles, Horn C. [1 ,2 ,3 ]
Forssell, Mats [4 ]
Sciullo, Michael [2 ]
Harms, Jonathan E. [1 ,2 ]
Fulton, Stephanie [2 ]
Mou, Chenchen [5 ]
Sun, Fan [2 ,6 ]
Simpson, Tyler W. [7 ]
Xiao, Gutian [2 ,6 ]
Fisher, Lee E. [7 ,8 ]
Bettinger, Christopher [9 ]
Fedder, Gary K. [4 ]
机构
[1] Univ Pittsburgh, Dept Med, Pittsburgh, PA 15260 USA
[2] UPMC, Hillman Canc Ctr, Pittsburgh, PA 15260 USA
[3] Univ Pittsburgh, Ctr Neurosci, Pittsburgh, PA 15260 USA
[4] Carnegie Mellon Univ, Dept Elect & Comp Engn, Pittsburgh, PA 15213 USA
[5] Carnegie Mellon Univ, Dept Biomed Engn, Pittsburgh, PA 15213 USA
[6] Univ Pittsburgh, Dept Microbiol & Mol Genet, Pittsburgh, PA USA
[7] Univ Pittsburgh, Dept Phys Med & Rehabil, Pittsburgh, PA USA
[8] Univ Pittsburgh, Dept Bioengn, Pittsburgh, PA USA
[9] Carnegie Mellon Univ, Dept Mat Sci & Engn, Pittsburgh, PA USA
关键词
vagus nerve; vagus nerve stimulation; bioelectronic medicine; electroceuticals; neuromodulation;
D O I
10.1088/1741-2552/abf398
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Objective. Electrical vagus nerve stimulation (VNS) has the potential to treat a wide variety of diseases by modulating afferent and efferent communication to the heart, lungs, esophagus, stomach, and intestines. Although distal vagal nerve branches, close to end organs, could provide a selective therapeutic approach, these locations are often surgically inaccessible. In contrast, the cervical vagus nerve has been targeted for decades using surgically implantable helix electrodes to treat epileptic seizures and depression; however, to date, clinical implementation of VNS has relied on an electrode with contacts that fully wrap around the nerve, producing non-selective activation of the entire nerve. Here we demonstrate selective cervical VNS using cuff electrodes with multiple contacts around the nerve circumference to target different functional pathways. Approach. These flexible probes were adjusted to the diameter of the nerve using an adhesive hydrogel wrap to create a robust electrode interface. Our approach was verified in a rat model by demonstrating that cervical VNS produces neural activity in the abdominal vagus nerve while limiting effects on the cardiovascular system (i.e. changes in heart rate or blood pressure). Main results. This study demonstrates the potential for selective cervical VNS as a therapeutic approach for modulating distal nerve branches while reducing off target effects. Significance. This methodology could potentially be refined to treat gastrointestinal, metabolic, inflammatory, cardiovascular, and respiratory diseases amenable to vagal neuromodulatory control.
引用
收藏
页数:7
相关论文
共 14 条
[1]   Vagus Nerve Stimulation Therapy Randomized to Different Amounts of Electrical Charge for Treatment-Resistant Depression: Acute and Chronic Effects [J].
Aaronson, Scott T. ;
Carpenter, Linda L. ;
Conway, Charles R. ;
Reimherr, Frederick W. ;
Lisanby, Sarah H. ;
Schwartz, Thomas L. ;
Moreno, Francisco A. ;
Dunner, David L. ;
Lesem, Michael D. ;
Thompson, Peter M. ;
Husain, Mustafa ;
Vine, Craig J. ;
Banov, Michael D. ;
Bernstein, Lawrence P. ;
Lehman, Robert B. ;
Brannon, Guy E. ;
Keepers, George A. ;
O'Reardon, John P. ;
Rudolph, Richard L. ;
Bunker, Mark .
BRAIN STIMULATION, 2013, 6 (04) :631-640
[2]   VAGUS NERVE-STIMULATION FOR TREATMENT OF PARTIAL SEIZURES .1. A CONTROLLED-STUDY OF EFFECT ON SEIZURES [J].
BENMENACHEM, E ;
MANONESPAILLAT, R ;
RISTANOVIC, R ;
WILDER, BJ ;
STEFAN, H ;
MIRZA, W ;
TARVER, WB ;
WERNICKE, JF ;
AUGUSTINSSON, L ;
BAROLAT, G ;
BONGARTZ, U ;
BERGEN, D ;
BUCHOLZ, R ;
BURCHIEL, K ;
FAUGHT, E ;
GEORGE, R ;
HUFNAGEL, A ;
KUZNIECKY, R ;
LANDY, H ;
MICHAEL, J ;
NARITOKU, D ;
PENCEK, T ;
RAMSAY, RE ;
REID, S ;
RICHARDSON, D ;
ROSENFELD, W ;
ROSENWASSER, R ;
SALINSKY, M ;
SLATER, J ;
SONNEN, A ;
STRELETZ, L ;
TALALLA, A ;
TREIG, T ;
UPTON, ARM ;
UTHMAN, B ;
WEGENER, K ;
WILLIS, J .
EPILEPSIA, 1994, 35 (03) :616-626
[3]   Bioelectronic medicines: a research roadmap [J].
Birmingham, Karen ;
Gradinaru, Viviana ;
Anikeeva, Polina ;
Grill, Warren M. ;
Pikov, Victor ;
McLaughlin, Bryan ;
Pasricha, Pankaj ;
Weber, Douglas ;
Ludwig, Kip ;
Famm, Kristoffer .
NATURE REVIEWS DRUG DISCOVERY, 2014, 13 (06) :399-400
[4]   Sustained Reduction of Blood Pressure With Baroreceptor Activation Therapy Results of the 6-Year Open Follow-Up [J].
de Leeuw, Peter W. ;
Bisognano, John D. ;
Bakris, George L. ;
Nadim, Mitra K. ;
Haller, Hermann ;
Kroon, Abraham A. .
HYPERTENSION, 2017, 69 (05) :836-+
[5]   Compliant adhesive cuff electrode for selective stimulation in rat vagus nerve [J].
Forssell, Mats ;
Sciullo, Michael ;
Mou, Chenchen ;
Sun, Fan ;
Simpson, Tyler W. ;
Xiao, Gutian ;
Fisher, Lee E. ;
Bettinger, Christopher ;
Horn, Charles C. ;
Fedder, Gary K. .
2019 IEEE SENSORS, 2019,
[6]   Vagus Nerve Stimulation for the Treatment of Epilepsy [J].
Gonzalez, Herman F. J. ;
Yengo-Kahn, Aaron ;
Englot, Dario J. .
NEUROSURGERY CLINICS OF NORTH AMERICA, 2019, 30 (02) :219-+
[7]   Thoracic cross-over pathways of the rat vagal trunks [J].
Horn, CC ;
Friedman, MI .
BRAIN RESEARCH, 2005, 1060 (1-2) :153-161
[8]   Electroceutical Targeting of the Autonomic Nervous System [J].
Horn, Charles C. ;
Ardell, Jeffrey L. ;
Fisher, Lee E. .
PHYSIOLOGY, 2019, 34 (02) :150-162
[9]   Ultracompliant Hydrogel-Based Neural Interfaces Fabricated by Aqueous-Phase Microtransfer Printing [J].
Huang, Wei-Chen ;
Ong, Xiao Chuan ;
Kwon, Ik Soo ;
Gopinath, Chaitanya ;
Fisher, Lee E. ;
Wu, Haosheng ;
Fedder, Gary K. ;
Gaunt, Robert A. ;
Bettinger, Christopher J. .
ADVANCED FUNCTIONAL MATERIALS, 2018, 28 (29)
[10]   Water-soluble sacrificial layers for surface micromachining [J].
Linder, V ;
Gates, BD ;
Ryan, D ;
Parviz, BA ;
Whitesides, GM .
SMALL, 2005, 1 (07) :730-736