Reconstruction of sound driven, actively amplified and spontaneous motions within the tree cricket auditory organ
Mhatre, N.; Dewey, J. B.; Quinones, P. M.; Mason, A.; Applegate, B. E.; Oghalai, J. S.
Show abstract
AO_SCPLOWBSTRACTC_SCPLOWHearing consists of a delicate chain of events. Sound is first captured by an eardrum or similar organ which is set into vibrations, these vibrations must then be transmitted to sensory cells in a manner that opens mechanosensory channels generating an electrical signal. Studying this process is challenging. Auditory vibrations are in the nano- to picometer-scale and occur at fast temporal scales of milli to microseconds. Finally, most of this process occurs within the body of the animal where it is inaccessible to conventional measurement techniques. For instance, even in crickets, a century-old auditory model system, it is unclear how sound evoked vibrations are transmitted to sensory neurons. Here, we use optical coherence tomography (OCT) to measure how vibrations travel within the auditory organ of the western tree cricket (Oecanthus californicus). We also measure the reversal of this process as mechanosensory cells generate spontaneous oscillations and amplify sound-evoked vibrations. Most importantly, we found that while the mechanosensory neurons were not attached to the peripheral sound collecting structures, they were mechanically well-coupled through acoustic trachea. Thus, the acoustic trachea are not merely conduits for sound but also perform a mechanical function. Our results generate several insights into the similarities between insect and vertebrate hearing, and into the evolutionary history of auditory amplification.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Multisensory integration enhances audiovisual responses in the Mauthner cell 94%
- Otoacoustic emissions but not behavioral measurements predict cochlear-nerve frequency tuning in an avian vocal-communication specialist 94%
- Ear pinnae in a neotropical katydid (Orthoptera: Tettigoniidae) function as ultrasound guides for bat detection 94%
Similar papers in this journal
Similar papers in this journal
- Forward masking in the Inferior Colliculus: Dynamics of Discharge-rate Recovery after Narrowband Noise Maskers 94%
- Why is the perceptual octave stretched? An account based on mismatched time constants within the auditory brainstem. 93%
- Head-related transfer function predictions reveal dominant sound transmission mechanisms in a dolphin head 93%
Similar papers in this journal
- The role of polycystic kidney disease-like homologs in planarian nervous system regeneration and function 92%
- The role of vibration amplitude in the escape hatching response of red-eyed treefrog embryos 90%
- The balance hypothesis for the avian lumbosacral organ and an exploration of its morphological variation 90%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.