Completed Genetics & Molecular Biology Cells, Biochemistry & Physiology

The development and function of the mammalian auditory circuitry.

In plain English

AI plain-English summary

A mouse’s inner ear can detect sound vibrations at thousands of cycles per second, yet scientists still do not understand how its sensory cells and their connections to the brain mature into such a precise system. This project tackles a basic gap in fundamental biology: how the mammalian auditory system wires itself together during development. The sensory receptors—inner hair cells—form specialised synapses called ribbon synapses that transmit signals with extraordinary speed and fidelity. But the molecular and physiological steps that build these synapses, and that tune them to work over a wide range of sound intensities, remain largely unknown. Without that knowledge, we cannot explain why hearing sometimes fails, nor can we design rational strategies to repair it. Because this is fundamental science, there is no immediate clinical or engineering application. The work will produce a detailed map of how auditory circuitry develops and functions at the cellular level. That map could eventually inform approaches to restore hearing after damage—for instance, by guiding efforts to regenerate hair cells or rebuild synaptic connections. Historically, similar basic discoveries about sensory transduction have led directly to cochlear implants and other neural prosthetics. A deeper understanding of how the system assembles itself is a necessary step before we can hope to rebuild it.

View original technical description
Sensory organs and the neural networks responsible for processing sensory information are supremely well adapted for detecting input from the external environment. Their challenge is to maximize sensitivity and fidelity over a wide dynamic range. The sensory receptors of the mammalian auditory system, the inner hair cells (IHCs), do this with unparalleled temporal precision (kHzrange). We know little about the molecular and physiological mechanisms controlling the functional maturation of the auditory system or signal processing at the primary auditory synapses, the IHC ribbon synapses.

View the original record at the funder ↗

Researchers

Walter Marcotti (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

In vivo processing of acoustic information in the mammalian cochlea and brain
Contribution of local- and circuit-based mechanisms to adaptive coding in the auditory midbrain
Functional role of Synaptotagmins at ribbon synapses of mammalian cochlear hair cells.
Population coding of natural sounds in the mammalian auditory system.
Control of cochlear amplification by cellular and acellular elements of the mammalian cochlea

Original classification

Investigator Award in Science

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.