Christopher A. Shera, PhD

Professor of Otolaryngology-Head and Neck Surgery

Co-Division Chief

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Overview

Lab Site:

http://apg.mechanicsofhearing.org

The peripheral auditory system transforms air-borne pressure waves into neural impulses that are interpreted by the brain as sound and speech. The cochlea of the inner ear is a snail-shaped electro-hydromechanical signal amplifier, frequency analyzer, and transducer with an astounding constellation of performance characteristics, including sensitivity to sub-atomic displacements with microsecond mechanical response times; wideband operation spanning three orders-of-magnitude in frequency; an input dynamic range of 120 dB, corresponding to a million-million-fold change in signal energy; useful operation even at signal powers 100 times smaller than the background noise; and ultra-low power consumption (15 µW). All of this is achieved not with the latest silicon technology or by exploiting the power of quantum computers — neither has yet approached the performance of the ear — but by self-maintaining biological tissue, most of which is salty water. How does the ear do it?

The Auditory Physics Group studies how the ear amplifies, analyzes, and creates sound. The goal is not only to understand how the cochlea achieves its astounding sensitivity and dynamic range but to use that knowledge to enhance the power of noninvasive probes of peripheral auditory function (e.g., otoacoustic emissions). Our approach involves a strong, quantitative interplay between theoretical modeling studies and physiological measurements. Ongoing work in the lab focuses on models of cochlear amplification, mechanisms of OAE generation, middle-ear transmission, and comparative studies of cochlear mechanics.

Research Funding

  • Advanced Detection and Differential Diagnosis of Hearing Loss Using Otoacoustic Emissions
    NIH · R01DC018307 · Sep 1, 2020 – Aug 31, 2026 · Role: Co-Principal Investigator
  • Capacitive Pressure/Velocity Probe for Acoustic Measurements in the Human Ear Canal
    NIH · R01DC017720 · Mar 2, 2019 – Feb 28, 2025 · Role: Co-Principal Investigator
  • Otoacoustic Emissions: Evoking the Future
    NIH · R13DC016825 · Sep 19, 2017 – Aug 31, 2018 · Role: Principal Investigator
  • 11th International Mechanics of Hearing Workshop
    NIH · R13DC010930 · Aug 1, 2010 – Jul 31, 2011 · Role: Principal Investigator
  • Training in Hearing and Communication Neuroscience
    NIH · T32DC009975 · Jul 1, 2009 – Jun 30, 2030 · Role: Principal Investigator
  • Understanding Cochlear Amplification and Otoacoustic Emissions
    NIH · R01DC003687 · Jan 1, 1999 – Mar 31, 2030 · Role: Principal Investigator
  • MEASURING THE GAIN OF THE COCHLEAR AMPLIFIER
    NIH · R03DC003494 · Sep 1, 1997 – Aug 31, 2000 · Role: Principal Investigator
  • MEASURING THE GAIN OF THE COCHLEAR AMPLIFIER
    NIH · F32DC000108 · Nov 1, 1994 · Role: Principal Investigator

Publications

  • Coherent reflection without traveling waves: on the origin of long-latency otoacoustic emissions in lizards. J Acoust Soc Am. 2010 Apr; 127(4):2398-409.. View in PubMed
  • Posture systematically alters ear-canal reflectance and DPOAE properties. Hear Res. 2010 May; 263(1-2):43-51.. View in PubMed
  • Dynamical instability determines the effect of ongoing noise on neural firing. J Assoc Res Otolaryngol. 2009 Jun; 10(2):251-67.. View in PubMed
  • Testing coherent reflection in chinchilla: Auditory-nerve responses predict stimulus-frequency emissions. J Acoust Soc Am. 2008 Jul; 124(1):381-95.. View in PubMed
  • Otoacoustic emissions in humans, birds, lizards, and frogs: evidence for multiple generation mechanisms. J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2008 Jul; 194(7):665-83.. View in PubMed
  • Cochlear reflectivity in transmission-line models and otoacoustic emission characteristic time delays. J Acoust Soc Am. 2007 Dec; 122(6):3554-61.. View in PubMed
  • Comparing stimulus-frequency otoacoustic emissions measured by compression, suppression, and spectral smoothing. J Acoust Soc Am. 2007 Dec; 122(6):3562-75.. View in PubMed
  • Laser amplification with a twist: traveling-wave propagation and gain functions from throughout the cochlea. J Acoust Soc Am. 2007 Nov; 122(5):2738-58.. View in PubMed
  • Near equivalence of human click-evoked and stimulus-frequency otoacoustic emissions. J Acoust Soc Am. 2007 Apr; 121(4):2097-110.. View in PubMed
  • Allen-Fahey and related experiments support the predominance of cochlear slow-wave otoacoustic emissions. J Acoust Soc Am. 2007 Mar; 121(3):1564-75.. View in PubMed