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1.
PLoS One ; 14(11): e0215191, 2019.
Artigo em Inglês | MEDLINE | ID: mdl-31738766

RESUMO

The majority of available systems for vagus nerve stimulation use helical stimulation electrodes, which cover the majority of the circumference of the nerve and produce largely uniform current density within the nerve. Flat stimulation electrodes that contact only one side of the nerve may provide advantages, including ease of fabrication. However, it is possible that the flat configuration will yield inefficient fiber recruitment due to a less uniform current distribution within the nerve. Here we tested the hypothesis that flat electrodes will require higher current amplitude to activate all large-diameter fibers throughout the whole cross-section of a nerve than circumferential designs. Computational modeling and in vivo experiments were performed to evaluate fiber recruitment in different nerves and different species using a variety of electrode designs. Initial results demonstrated similar fiber recruitment in the rat vagus and sciatic nerves with a standard circumferential cuff electrode and a cuff electrode modified to approximate a flat configuration. Follow up experiments comparing true flat electrodes to circumferential electrodes on the rabbit sciatic nerve confirmed that fiber recruitment was equivalent between the two designs. These findings demonstrate that flat electrodes represent a viable design for nerve stimulation that may provide advantages over the current circumferential designs for applications in which the goal is uniform activation of all fascicles within the nerve.


Assuntos
Eletrodos Implantados , Estimulação do Nervo Vago/instrumentação , Animais , Simulação por Computador , Terapia por Estimulação Elétrica/instrumentação , Desenho de Equipamento , Feminino , Humanos , Masculino , Modelos Neurológicos , Coelhos , Ratos , Ratos Sprague-Dawley , Recrutamento Neurofisiológico , Nervo Isquiático/fisiologia , Nervo Vago/fisiologia
2.
J Neural Eng ; 16(4): 046002, 2019 08.
Artigo em Inglês | MEDLINE | ID: mdl-31018187

RESUMO

OBJECTIVE: Recent developments in peripheral nerve electrodes allow the efficient and selective neuromodulation of somatic and autonomic nerves, which has proven beneficial in specific bioelectronic medical applications. However, current most clinical devices are wired and powered by implantable batteries which suffer from several limitations. We recently developed a sub-millimeter inductively powered neural stimulator (electroparticle; EP), and in this study, we report the integration of the EP onto commercial cuff electrodes (EP-C) allowing the wireless activation of peripheral nerves. APPROACH: The current output of this device was defined at different magnetic field strenghts, and with respect to external antenna distance and activation angles. In acute in vivo testing, stimulation of the rat sciatic nerve (ScN) with the EP-C was able to evoke motor responses quantified by 3D tracking of the hind limb movement. Motor recruitment curves were obtained in response to variations in magnetic field strength (0-92.91 A m-1), stimulation frequencies (2-7 Hz), and pulse widths (50-200 µs). MAIN RESULTS: The results show constant output voltage throughout 50 400 stimulating cycles on a benchtop setting, and successful ScN motor activation with a 4 cm distance between external antenna and receiver. We achieved optimal motor recruitment indicated by maximizing range of hindlimb movement (6.01 ± 2.92 mm) with a magnetic field of 40.02 ± 2.85 A m-1 and 150 µs pulse width. Stimulating pulse width or frequency did not significantly influence motor recruitment. SIGNIFICANCE: We confirmed that continuous stimulation for 14 min using monophasic pulses did not deleteriously affect the evoked motor responses when compared to wired charge-balanced biphasic electrical stimulation. We observed, however, a 36%-44% decrease in the evoked limb movement in both groups over time due to muscle fatigue. This study shows that the EP-C device can be used effectively for peripheral nerve neuromodulation.


Assuntos
Terapia por Estimulação Elétrica/métodos , Potencial Evocado Motor/fisiologia , Neuroestimuladores Implantáveis , Nervo Isquiático/fisiologia , Tecnologia sem Fio , Animais , Terapia por Estimulação Elétrica/instrumentação , Eletrodos Implantados , Campos Eletromagnéticos , Microeletrodos , Nervos Periféricos/fisiologia , Ratos , Tecnologia sem Fio/instrumentação
3.
PLoS One ; 10(2): e0117746, 2015.
Artigo em Inglês | MEDLINE | ID: mdl-25714399

RESUMO

Cumulative evidence from both humans and animals suggests that the anterior cingulate cortex (ACC) is important for pain-related perception, and thus a likely target for pain relief therapy. However, use of existing electrode based ACC stimulation has not significantly reduced pain, at least in part due to the lack of specificity and likely co-activation of both excitatory and inhibitory neurons. Herein, we report a dramatic reduction of pain behavior in transgenic mice by optogenetic stimulation of the inhibitory neural circuitry of the ACC expressing channelrhodopsin-2. Electrophysiological measurements confirmed that stimulation of ACC inhibitory neurons is associated with decreased neural activity in the ACC. Further, a distinct optogenetic stimulation intensity and frequency-dependent inhibition of spiking activity in the ACC was observed. Moreover, we confirmed specific electrophysiological responses from different neuronal units in the thalamus, in response to particular types of painful stimuli (i,e., formalin injection, pinch), which we found to be modulated by optogenetic control of the ACC inhibitory neurons. These results underscore the inhibition of the ACC as a clinical alternative in inhibiting chronic pain, and leads to a better understanding of the pain processing circuitry of the cingulate cortex.


Assuntos
Giro do Cíngulo/fisiologia , Neurônios/fisiologia , Optogenética , Dor , Animais , Channelrhodopsins , Dor Crônica , Fenômenos Eletrofisiológicos , Expressão Gênica , Lasers , Masculino , Camundongos , Camundongos Transgênicos , Modelos Animais , Estimulação Física , Tálamo/fisiologia
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