The Role Of Audiogram Configuration In Sound Intolerance Among Patients Undergoing Hearing Aid Fitting
09-12, 07:00–07:10 (Europe/Istanbul), Hearing Aids (ICC - B3 Floor - 3B/02)

Introduction: hearing loss is increasingly recognized as a complex phenotype characterized not only by elevated peripheral thresholds but also by decreased sound tolerance (DST) disorders, including tinnitus, hyperacusis, and misophonia. While audiometric configuration has been linked to tinnitus, misophonia and hyperacusis are reported to correlate more strongly with uncomfortable loudness levels (ULL) than with pure-tone thresholds. We hypothesized that audiogram configuration independently influences the prevalence and severity of DST symptoms in sensorineural hearing loss (SNHL), and aimed to evaluate misophonia, hyperacusis, and tinnitus across three configuration groups to inform individualized hearing-aid fitting strategies.

material & methods: in this cross-sectional study, adults (≥18 years) with audiometrically confirmed SNHL, candidates for hearing aids, were classified into three groups by audiogram configuration: low-frequency loss, high-frequency loss, and flat configuration. The misophonia scale, hyperacusis questionnaire, and tinnitus handicap inventory (THI) were administered. Groups were compared using one-way ANOVA or the kruskal-wallis test (bonferroni-corrected pairwise comparisons) depending on normality (shapiro-wilk), and categorical variables with chi-square testing (cramér's v). Significance was set at p<0.05.

results: this preliminary analysis included 50 patients (low-frequency n=9, high-frequency n=25, flat n=16) of a target sample of 108. Hyperacusis scores differed significantly across groups (kruskal-wallis h=8.12, p=0.017), being lower in the low-frequency group than in the high-frequency (p=0.009) and flat groups (p=0.013), with no difference between the latter two (p=0.678). Misophonia and THI scores did not differ significantly between groups (p=0.944 and p=0.771, respectively). Uncomfortable loudness levels also differed significantly across groups (p<0.001), consistent with the hyperacusis findings. Sex distribution differed between groups (p=0.031); age, ULL, and speech-discrimination correlations with symptom scores were not significant.

conclusions: preliminary findings suggest that audiogram configuration is independently associated with hyperacusis severity, but not with misophonia or tinnitus handicap, in patients with SNHL. Steeply configured (low-frequency) losses were associated with lower hyperacusis burden, potentially reflecting reduced high-frequency trigger exposure. These findings, once confirmed in the full target cohort, may help tailor hearing-aid output and compression strategies to individual sound-tolerance profiles.


Sound intolerance disorders—tinnitus, hyperacusis, and misophonia—frequently accompany sensorineural hearing loss, yet their relationship to audiogram configuration remains poorly understood, particularly in patients being fitted for hearing aids. This study aims to determine whether audiogram configuration (low-frequency, high-frequency, or flat loss) independently predicts the prevalence and severity of misophonia, hyperacusis, and tinnitus handicap. By identifying which configurations carry the greatest risk for decreased sound tolerance, we aim to provide an evidence base for individualizing hearing-aid output, compression, and dynamic-range settings according to each patient's sound-tolerance profile, ultimately improving rehabilitation outcomes and hearing-aid adherence.

Chair-Moderator
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Associate Professor Ercan Karababa is a faculty member in the Department of Audiology at the University of Health Sciences Gülhane Faculty of Health Sciences. His academic and clinical research is primarily centered on vestibular science, with a specialized focus on the diagnosis and management of Benign Paroxysmal Positional Vertigo (BPPV). He possesses extensive expertise in utilizing advanced diagnostic technologies, including Videonystagmography (VNG), Video Head Impulse Test (v-HIT), and Vestibular Evoked Myogenic Potentials (VEMP). Additionally, his research explores the intersection of audiology and cognitive psychology, specifically investigating how working memory and executive functions influence auditory performance.

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