Bone conduction auditory brainstem response

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Bone conduction auditory brainstem response
Purposerecords neural response from EEG

Bone-conduction auditory brainstem response or BCABR is a type of auditory evoked response that records neural response from EEG with stimulus transmitted through bone conduction.

Distortional bone-conduction

Vibration of the skull results in auditory sensation. This is a way to somewhat bypass the outer and middle ears to stimulate the cochlea. Von Bekesy is credited with the discovery that at the level of the cochlea, phase shifted bone-conduction signals cancel out air conduction signals. Bone-conduction works because all of the bones of the skull are connected, including the temporal bone, which in turn stimulates the cochlea. Barany (1938) and Herzog & Krainz (1926) were some of the first researchers to examine the different components of bone-conduction hearing. Tonndorf (1968) found that there are three different forces that contribute to the forces needed to stimulate the cochlea: Distortional, Inertial (Ossicular), and External canal (Osseotympanic)[1]

As vibrations compress the bones of the skull, pressure is put on the otic capsule and the membranous labyrinth. This then compresses the scala vestibule into the basilar membrane in the direction toward the scala tympani. A traveling wave is created similar to that created by air conduction signals.

Inertial bone-conduction

The ossicles are suspended in the head and loosely coupled to the skull. When the head moves, the ossicles move out of phase with the head, but still follow the same cyclic motion. This causes the stapes to move in and out of the oval window. When vibrations come from the mastoid, inertial bone-conduction is greatest below 800 Hz. Putting the bone vibrator on the forehead instead of the mastoid does not significantly create this affect.

Osseotympanic bone-conduction

This type of bone-conduction also involves low frequencies. As a bone vibrator vibrates the skull, the bone and cartilage of the external ear receives energy, most of which escapes the unoccluded ear. Some of this energy hits the tympanic membrane and combines with inertial bone-conduction, stimulating the inner ear. An example of this occurs when you close your ears and speak- your voice appears to be much lower in frequency.

Bone-conduction ABR

Bone-conduction auditory brainstem response (BCABR) are similar to air conduction auditory brainstem responses, with the main difference being that the signal is transmitted via bone-conduction instead of air. The goal of bone ABR is to estimate cochlear function and to help identify the type of hearing loss present.[2] Responses to air and bone-conduction ABRs are compared (for the same intensity and stimuli).

Techniques and results for bone-conduction auditory brainstem responses are presented in a review chapter by Stapells,[3] as well as in a detailed assessment protocol by the British Columbia Early Hearing Program (BCEHP).[4]

When is BCABR needed?

Any infant showing elevated ABR thresholds to air-conduction stimuli should be tested using bone-conduction stimuli. Atresia, microtia, otitis media and other outer/middle ear abnormalities, as well as infants with sensorineural hearing loss, will require the use of bone-conduction ABR testing. Infants who have a considerable amount of amniotic fluid in their middle ear space may need to be tested with BCABR. This fluid usually disappears by 48 hours after birth.

Problems with BCABR

It is very common for there to be a large amount of artifact while using bone-conduction ABR. This is especially true at high intensities (~50 dB nHL) and at earlier waves (i.e. Wave I). To avoid stimulus artifact, it is recommended that the bone oscillator be placed high on the temporal bone and that the inverting electrode is placed on the earlobe, mastoid, or nape of the neck. Using an alternating phase stimuli should be used to reduce artifact. Since the output of most bone oscillators is around 45 to 55 dB nHL, it becomes difficult to distinguish between sensorineural or mixed hearing losses when the losses by bone exceed this number. This output limitation of the bone oscillator is a drawback.

BCABR responses

With Bone ABR, the waves are typically more rounded that with traditional auditory brainstem response. The maximum output for bone is around 50 dB nHL and should look similar to the 50 dB HL response of air conduction for people with normal hearing or with a mild SNHL. With conductive hearing losses, the latencies for air are shifted when compared to the latencies of bone-conduction.

Mauldin & Jerger (1979) found that for adults, the Wave V latencies derived from bone-conduction ABR are approximately 0.5 ms longer than the same intensity level of air conduction.[5] For infants, Wave V latencies for bone-conduction clicks are shorter than the air conduction clicks.[6] These differences can be attributed to changes to the skull due to aging.

BCABR with tone bursts

See also

References

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