Single-Sided Deafness and Hearing Rehabilitation Modalities: Contralateral Routing of Signal Devices, Bone Conduction Devices, and Cochlear Implants
Abstract
1. Introduction
2. Consequences of SSD in Adults
3. Rerouting Solutions
3.1. Controlateral Routing of Signal (CROS)
3.2. Bone Conduction Devices (BCD): Surgically Implanted Devices
3.3. Bone Conduction Devices (BCD): Extrinsic Devices
4. Cochlear Implants (CI)
5. SSD in Pediatric Population
6. Conclusions
Funding
Conflicts of Interest
Abbreviations
ADHEAR | Adhesive Bone Conduction Device |
AHL | Asymmetric Hearing Loss |
APHAB | Abbreviated Profile of Hearing Aid Benefit |
BCD | Bone Conduction Devices |
BiCROS | Bilateral Contralateral Routing of Signals |
cBTE | Behind-The-Ear Microphone |
CAEPs | Cortical Evoked Potentials |
CI | Cochlear Implant |
CMV | Cytomegalovirus |
CND | Cochlear Nerve Deficiency |
CROS | Controlateral Routing of The Signal |
DoD | Duration Of Deafness |
FDA | Food And Drug Administration |
fMRI | Functional Magnetic Resonance Imaging |
HUI-3 | Health Utilities-3 |
ILD | Interaural Level Difference |
ITD | Interaural Time Difference |
NPAC | Nonprimary Auditory Cortex |
PTA | Pure Tone Average |
QoL | Quality Of Life |
rs-fcMRI | Resting-State Functional Connectivity MRI |
SNR | Signal/Noise Ratio |
SSD | Single Sided Deafness |
SSQ | Speech, Spatial and Qualities Hearing Scale |
References
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Authors | Poorer Ear | Better Ear | Interaural Threshold Gap |
---|---|---|---|
Van de Heyning et al. [1] | PTA ≥ 70 dB HL | PTA ≤ 30 dB HL | ≥40 dB HL |
Ramos Macías et al. [2] | Lack of improvement with conventional acoustic aid | ≥20 dB HL | NA |
Treatment Option | Principles | Advantages | Disadvantages |
---|---|---|---|
Contralateral Routing of Signal Devices (CROS) | Rerouting auditory signal from the impaired ear to the better ear | Non-surgically implantable, less invasive Evidence of reduced head shadow effect Evidence of improved sound awareness and signal-to-noise ratio (SNR) when sounds are directed toward the affected ear | Do not restore binaural hearing |
Bone Conduction Devices (BCD) | Transmitting signals from the impaired ear to the better ear via bone conduction | Evidence of reduced head shadow effect and improved sound awareness on the affected side. Evidence of tinnitus reduction | Do not restore binaural hearing Invasive, surgically implantable Potential discomfort due to vibrations (active transcutaneous devices) Skin complications (percutaneous devices) |
Cochlear Implants (CI) | Surgically implanted device stimulating the cochlear nerve | Restore binaural hearing Evidence of improved speech perception in noise and sound localization Evidence of tinnitus reduction | Invasive, surgically implantable Contraindicated in cases of cochlear nerve deficiency (CND) |
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Pantaleo, A.; Murri, A.; Cavallaro, G.; Pontillo, V.; Auricchio, D.; Quaranta, N. Single-Sided Deafness and Hearing Rehabilitation Modalities: Contralateral Routing of Signal Devices, Bone Conduction Devices, and Cochlear Implants. Brain Sci. 2024, 14, 99. https://doi.org/10.3390/brainsci14010099
Pantaleo A, Murri A, Cavallaro G, Pontillo V, Auricchio D, Quaranta N. Single-Sided Deafness and Hearing Rehabilitation Modalities: Contralateral Routing of Signal Devices, Bone Conduction Devices, and Cochlear Implants. Brain Sciences. 2024; 14(1):99. https://doi.org/10.3390/brainsci14010099
Chicago/Turabian StylePantaleo, Alessandra, Alessandra Murri, Giada Cavallaro, Vito Pontillo, Debora Auricchio, and Nicola Quaranta. 2024. "Single-Sided Deafness and Hearing Rehabilitation Modalities: Contralateral Routing of Signal Devices, Bone Conduction Devices, and Cochlear Implants" Brain Sciences 14, no. 1: 99. https://doi.org/10.3390/brainsci14010099
APA StylePantaleo, A., Murri, A., Cavallaro, G., Pontillo, V., Auricchio, D., & Quaranta, N. (2024). Single-Sided Deafness and Hearing Rehabilitation Modalities: Contralateral Routing of Signal Devices, Bone Conduction Devices, and Cochlear Implants. Brain Sciences, 14(1), 99. https://doi.org/10.3390/brainsci14010099