Completed Psychology & Behaviour Brain & Nervous System

Neural Circuits for Selective Auditory Filtering

In plain English

AI plain-English summary

In a noisy room, the brain boosts relevant sounds and suppresses distracting ones—but the neural wiring behind this selective filtering has remained unknown. This project aims to identify the specific brain circuits that enable this filtering. Researchers already know that the auditory cortex (AC) is involved, but they do not understand how it interacts with two deeper structures: the medial geniculate body (MGB), which sends sound information to the cortex, and the thalamic reticular nucleus (TRN), which sends inhibitory signals back. The team will test whether these circuits create selective filtering for different sound frequencies and timing, and how attention changes that filtering. If successful, this fundamental science will map a core mechanism of active sensory processing shared across mammals. That knowledge could eventually help explain why people with hearing loss, autism, or attention disorders struggle to follow conversations in noisy environments—and point toward future interventions. For now, the work is curiosity-driven, but understanding how the brain filters sound is a necessary step before anyone can fix it when it goes wrong.

View original technical description
To facilitate sensory processing in complex environments, the brain can selectively filter auditory input to enhance neural responses to relevant sounds and suppress responses to background distractors. Neural correlates of selective filtering have been observed in auditory cortex (AC), but the underlying neural circuitry has not yet been identified. A synthesis of existing results and our preliminary data suggests that selective auditory filtering arises through interactions between AC and two thalamic structures: the medial geniculate body (MGB), which sends direct excitatory input to AC and receives direct excitatory feedback from AC, and the thalamic reticular nucleus (TRN), which relays indirect inhibitory feedback from AC to MGB. In this proposal, we outline a plan to answer three key questions related to selective filtering: Q1: Are selective spectral and temporal filtering evident in the auditory thalamus? Q2: How do thalamocortical interactions contribute to spectral and temporal filtering? Q3: How does attention modulate spectral and temporal filtering? The proposed experiments will lead to significant advances in our knowledge of the general mechanisms that underlie active sensory processing in all mammals, while also helping build toward a detailed understanding of the neural circuitry that allows humans to understand speech in noisy environments.

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Researchers

Nicholas Lesica (EPMC Awardee)

Related Research

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Original classification

Senior Research Fellowship Basic

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