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S I Fried

Publications and source records attributed to S I Fried.

2 recordsLinked to original sources

A method for generating precise temporal patterns of retinal spiking using prosthetic stimulation.

The goal of retinal prosthetic devices is to generate meaningful visual information in patients that have lost outer retinal function. To accomplish this, these devices should generate patterns of ganglion cell activity that closely resemble the spatial and temporal components of those patterns that are normally elicited by light. Here, we developed a stimulus paradigm that generates precise temporal patterns of activity in retinal ganglion cells, including those patterns normally generated by light. Electrical stimulus pulses (> or =1-ms duration) elicited activity in neurons distal to the ganglion cells; this resulted in ganglion cell spiking that could last as long as 100 ms. However, short pulses, <0.15 ms, elicited only a single spike within 0.7 ms of the leading edge of the pulse. Trains of these short pulses elicited one spike per pulse at frequencies < or =250 Hz. Patterns of short electrical pulses (derived from normal light elicited spike patterns) were delivered to ganglion cells and generated spike patterns that replicated the normal light patterns. Finally, we found that one spike per pulse was elicited over almost a 2.5:1 range of stimulus amplitudes. Thus a common stimulus amplitude could accommodate a 2.5:1 range of activation thresholds, e.g., caused by differences arising from cell biophysical properties or from variations in electrode-to-cell distance arising when a multielectrode array is placed on the retina. This stimulus paradigm can generate the temporal resolution required for a prosthetic device.

Action Potentials↗

Analysis of cat multichannel acoustic brain-stem response data using dipole localization methods.

We have used dipole localization methods (DLMs) to examine multielectrode acoustic brain-stem response (ABR) data for 9 data files collected in 5 experiments on 2 cats. The analytical model for scalp surface voltage consisted of a single current dipole in a homogeneous spherical head model. DLM sources were compared to ABR generator sites determined in intracranial and lesion experiments described in the literature. DLM source along the mediolateral axis is consistent with a predominantly ipsilateral cochlear nucleus origin for P2, and a predominantly contralateral origin for P3. DLM source for P4 and P5 was near the midline plane, consistent with the suggestion of sources arrayed along both sides of the midline. Average DLM source position increased by 7.1 mm superiorly from P3 to P5, nearly what would be expected from movement from superior olive to inferior colliculus levels. A lack of DLM source movement in the postero-anterior direction is attributed to limitations of the spherical model. The overall progression of mean DLM equivalent source position at successive ABR peaks demonstrates the existence of substantive information about generator source position in scalp surface ABR field patterns. However, model constraints of available DLM techniques present severe restrictions on the physiological interpretation of results.

Acoustic Stimulation↗