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Hunold, A.

Publications and source records attributed to Hunold, A..

3 recordsLinked to original sources

Carbonized rubber electrodes can cause a DC-offset in transcranial alternating current stimulation

IntroductionCarbonized rubber electrodes are widely used in non-invasive brain stimulation studies. Due to their polarizable nature, however, they can cause a voltage offset, which might be problematic for concurrent EEG studies. ObjectiveIn this study, we aim to describe the voltage offset and ensure that the offset does not alter the intended waveform of applied stimulation. MethodsUsing data from 2 human studies and phantom measurements, which employed carbonized rubber electrodes, we quantify the magnitude and frequency of DC-offsets and contrast this against pilot-measurements using Ag/AGCl-electrodes. In a further phantom study, we record the offset-voltage that arises from the electrode/electrolyte interface and compare this to the voltage put out by the stimulation device. ResultsA non-zero voltage offset is present in all human and phantom studies employing carbonized rubber electrodes, while the offset using Ag/AgCl electrodes is close to zero. Direct measurements of the stimulator output in the presence of a measurable voltage offset at the stimulation electrodes shows that the offset originates from the electrodes and not from the current provided by the stimulation device. ConclusionUsing carbonized rubber-electrodes for stimulation can result in the emergence of a measurable voltage offset, due to their polarizable nature. We argue that this offset can be problematic in concurrent EEG recordings, as they pose the risk of amplifier saturation and distortions of the recorded stimulation waveform.

neuroscience↗

Influence of neck tissue conductivities on the phrenic nerve activation threshold during non-invasive electrical stimulation

Phrenic nerve stimulation can be used as an artificial ventilation method to reduce the adverse effects of mechanical ventilation. Detailed computational models and electromagnetic simulations are used to determine appropriate stimulation parameters. Therefore, tissue parameters have to be selected, but they vary widely in the literature. Here, we evaluated the phrenic nerve activation threshold using minimum and maximum electrical conductivity values found in the literature of each modeled neck tissue type. To calculate the phrenic nerve activation threshold, an anatomical detailed finite element model of the neck and a biophysiological nerve model were used. Considerable changes in nerve activation thresholds were found for the following tissue conductivities (with decreasing effects): muscle, skin, soft tissue, subcutaneous fat, and nerve tissue. Changes in the nerve activation threshold due to changes in skin conductivity occurred due to the bridging effect, which is an unwanted and avoidable effect during stimulation. In conclusion, fat, muscle, nerve, and soft tissue require the most accurate tissue properties and geometric representation within the model.

neuroscience↗

Stimulation of Neurons and Astrocytes via Temporally Interfering Electric Fields

A novel non-invasive electrical stimulation method, temporal interference stimulation (TIS), has been proposed to enable spatially steerable stimulation and to selectively activate different brain regions. However, TIS has not been studied with cell cultures that can provide an indepth assessment of its effects on neuronal cells. We successfully established an in vitro TIS setup using rat cortical neurons on microelectrode arrays. Stimulations involved 1) TIS with 653 Hz and 643 Hz, resulting in a 10 Hz frequency envelope, 2) low-frequency stimulation (LFS) at 10 Hz, 3) high-frequency stimulation (HFS) at 653 Hz, and 4) no electrical stimulation (control/sham). HFS and LFS had the least effect on neuronal activity, but TIS elicited neuronal electrophysiological responses, especially 24 hours after stimulation. We also assessed TIS in neuron-astrocyte co-cultures. Interestingly, co-cultures seemed to counteract the TIS effects. Hence, our findings deepen the current understanding of the electrical modulation of neurons during TIS. HighlightsO_LITemporal interference stimulation (TIS) is a new technique for brain stimulation. C_LIO_LITIS setup was established and combined with microelectrode array (MEA) system. C_LIO_LIRat cortical neurons and astrocytes were stimulated with TIS in vitro. C_LIO_LINeurons responded to TIS more prominently without astrocyte support. C_LI

neuroscience↗