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Artigo em Inglês | MEDLINE | ID: mdl-12920548

RESUMO

An important problem in sensory processing is deciding whether fluctuating neural activity encodes a stimulus or is due to variability in baseline activity. Neurons that subserve detection must examine incoming spike trains continuously, and quickly and reliably differentiate signals from baseline activity. Here we demonstrate that a neural integrator can perform continuous signal detection, with performance exceeding that of trial-based procedures, where spike counts in signal- and baseline windows are compared. The procedure was applied to data from electrosensory afferents of weakly electric fish (Apteronotus leptorhynchus), where weak perturbations generated by small prey add approximately 1 spike to a baseline of approximately 300 spikes s(-1). The hypothetical postsynaptic neuron, modeling an electrosensory lateral line lobe cell, could detect an added spike within 10-15 ms, achieving near ideal detection performance (80-95%) at false alarm rates of 1-2 Hz, while trial-based testing resulted in only 30-35% correct detections at that false alarm rate. The performance improvement was due to anti-correlations in the afferent spike train, which reduced both the amplitude and duration of fluctuations in postsynaptic membrane activity, and so decreased the number of false alarms. Anti-correlations can be exploited to improve detection performance only if there is memory of prior decisions.


Assuntos
Potenciais de Ação/fisiologia , Vias Aferentes/fisiologia , Neurônios/fisiologia , Células Receptoras Sensoriais/fisiologia , Vias Aferentes/citologia , Animais , Peixe Elétrico , Órgão Elétrico/citologia , Órgão Elétrico/fisiologia , Estimulação Elétrica , Eletrofisiologia/métodos , Modelos Neurológicos , Fibras Nervosas , Probabilidade , Limiar Sensorial , Processamento de Sinais Assistido por Computador , Fatores de Tempo
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