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Optimizing Clinical Interpretation of Distortion Product Otoacoustic Emissions in Infants
Chelsea M Blankenship1,2, Lisa L Hunter, Douglas H Keefe3
1Communication Sciences Research Center, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA.
Insights
Distortion product otoacoustic emissions (DPOAEs) effectively predict hearing loss in infants, especially at higher frequencies. Combining DPOAEs with wideband absorbance enhances the assessment of conductive hearing loss in infants.
Area of Science:
- Pediatric Audiology
- Neonatal Hearing Screening
- Otoacoustic Emissions
Background:
- Early detection of hearing loss (HL) in infants is crucial for timely intervention.
- Distortion product otoacoustic emissions (DPOAEs) are a non-invasive tool for assessing cochlear function.
- Optimizing DPOAE analysis can improve the prediction of various types of infant hearing loss.
Purpose of the Study:
- To analyze DPOAE level and signal-to-noise ratio in infants (birth to 4 months) for optimized hearing status prediction.
- To differentiate between normal hearing (NH) and different types of hearing loss (HL): conductive (CHL), sensorineural (SNHL), and mixed (MHL).
- To compare wideband ambient absorbance measurements among different HL types.
Main Methods:
- Prospective, longitudinal study of 279 infants with verified NH and HL.
- Measurement of DPOAEs (1-8 kHz), wideband absorbance (0.25-8 kHz), and auditory brainstem response (ABR) at ~1 month of age.
- Analysis of DPOAE efficacy using receiver operating characteristic (ROC) curves to determine optimal cutoff values and multifrequency analysis for HL prediction.
Main Results:
- DPOAEs showed best single-frequency predictive performance at mid-to-high frequencies (3-8 kHz).
- Infants with CHL or MHL exhibited significantly lower wideband absorbance values compared to NH infants.
- Multifrequency DPOAE analysis improved HL prediction for SNHL/MHL, with reduced sensitivity when CHL was present.
Conclusions:
- Optimized DPOAE interpretation using age-appropriate normative ranges and cutoff values enhances infant hearing assessment.
- Higher F2 test frequencies (2-8 kHz) are more predictive for DPOAEs in young infants.
- Incorporating wideband absorbance alongside DPOAEs is recommended to identify potential conductive components of hearing loss.
Objectives:
The purpose of this study was to analyze distortion product otoacoustic emission (DPOAE) level and signal to noise ratio in a group of infants from birth to 4 months of age to optimize prediction of hearing status. DPOAEs from infants with normal hearing (NH) and hearing loss (HL) were used to predict the presence of conductive HL (CHL), sensorineural HL (SNHL), and mixed HL (MHL). Wideband ambient absorbance was also measured and compared among the HL types.
Design:
This is a prospective, longitudinal study of 279 infants with verified NH and HL, including conductive, sensorineural, and mixed types that were enrolled from a well-baby nursery and two neonatal intensive care units in Cincinnati, Ohio. At approximately 1 month of age, DPOAEs (1-8 kHz), wideband absorbance (0.25-8 kHz), and air and bone conduction diagnostic tone burst auditory brainstem response (0.5-4 kHz) thresholds were measured. Hearing status was verified at approximately 9 months of age with visual reinforcement audiometry (0.5-4 kHz). Auditory brainstem response air conduction thresholds were used to assign infants to an NH or HL group, and the efficacy of DPOAE data to classify ears as NH or HL was analyzed using receiver operating characteristic (ROC) curves. Two summary statistics of the ROC curve were calculated: the area under the ROC curve and the point of symmetry on the curve at which the sensitivity and specificity were equal. DPOAE level and signal to noise ratio cutoff values were defined at each frequency as the symmetry point on their respective ROC curve, and DPOAE results were combined across frequency in a multifrequency analysis to predict the presence of HL.
Results:
Single-frequency test performance of DPOAEs was best at mid to high frequencies (3-8 kHz) with intermediate performance at 1.5 and 2 kHz and chance performance at 1 kHz. Infants with a conductive component to their HL (CHL and MHL combined) displayed significantly lower ambient absorbance values than the NH group. No differences in ambient absorbance were found between the NH and SNHL groups. Multifrequency analysis resulted in the best prediction of HL for the SNHL/MHL group with poorer sensitivity values when infants with CHL were included.
Conclusions:
Clinical interpretation of DPOAEs in infants can be improved by using age-appropriate normative ranges and optimized cutoff values. DPOAE interpretation is most predictive at higher F2 test frequencies in young infants (2-8 kHz) due to poor test performance at 1 to 1.5 kHz. Multifrequency rules can be used to improve sensitivity while balancing specificity. Last, a sensitive middle ear measure such as wideband absorbance should be included in the test battery to assess possibility of a conductive component to the HL.
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