Search bioRxiv⌕ Search

Biology subjects

Shirley, H.

Publications and source records attributed to Shirley, H..

2 recordsLinked to original sources

Neural Responses to Unexpected Stimulus Repetitions and Omissions in Auditory Cortex Provide Mixed Evidence for Predictive Coding

Humans and other animals process sensory uncertainty by integrating stimulus information with prior knowledge and expectations. Predictive coding conceptualizes perception as a form of Bayesian inference wherein hierarchical brain circuits update internal models to reconcile bottom-up sensory input with top-down predictions. Whereas predictive coding is a leading theory, the extent to which it is implemented in primary sensory cortices remains a matter of debate. To further investigate this issue, we examined single-neuron spiking activity in macaque primary auditory cortex (A1) to expected versus unexpected stimulus repetitions and to expected versus unexpected omissions. On average, we found that A1 neurons did not show enhanced responses to unexpected stimulus repetitions, contrary to predictive-coding theory. However, they did show enhanced responses to unexpected stimulus omissions. Taken together, these mixed results place empirical restraints on how PC is implemented in A1. Significance StatementPerception depends on the brains ability to infer the causes of sensory inputs by integrating new information with prior knowledge under uncertainty. Our results reveal nuanced evidence for predictive coding within the primary auditory cortex (A1). Specifically, spiking activity during unexpected stimuli and unexpected stimulus omissions provide conflicting and supporting, respectively, data for this Bayesian framework. These findings refine our understanding of neural mechanisms underlying perception and provide empirical constraints on the neurobiological implementation of predictive processing.

neuroscience↗

Distinct cortical populations drive multisensory modulation of segregated auditory sources

Auditory perception can be modulated by other sensory stimuli. However, we do not fully understand the neural mechanisms that support multisensory behavior. Here, we recorded spiking activity from the primary auditory cortex (A1) in non-human primates, while they detected a target vocalization that was embedded in a background chorus of vocalizations. We found that a congruent video of a monkey eliciting a vocalization improved the monkeys behavior, relative to their performance when we only presented a static image of the monkey. As a proxy for the functional organization of A1, we compared the contribution of neurons with significant spectrotemporal response fields (STRFs) with those that had non-significant STRFs (nSTRFs). Based on spike-waveform shape and functional connectivity, STRF and nSTRF neurons appeared to belong to distinct neural populations. Consistent with this, we found that although STRF neurons encoded stimulus information through synchronized activity, the population of nSTRF neurons encoded task-related information in the primate A1 more as a structured dynamic process. Together, these findings demonstrate a functional distinction between the behavioral contributions of nSTRF and STRF neurons.

neuroscience↗