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1.
J Neurosci ; 41(34): 7206-7223, 2021 08 25.
Artículo en Inglés | MEDLINE | ID: mdl-34266898

RESUMEN

Hearing in noise is a problem often assumed to depend on encoding of energy level by channels tuned to target frequencies, but few studies have tested this hypothesis. The present study examined neural correlates of behavioral tone-in-noise (TIN) detection in budgerigars (Melopsittacus undulatus, either sex), a parakeet species with human-like behavioral sensitivity to many simple and complex sounds. Behavioral sensitivity to tones in band-limited noise was assessed using operant-conditioning procedures. Neural recordings were made in awake animals from midbrain-level neurons in the inferior colliculus, the first processing stage of the ascending auditory pathway with pronounced rate-based encoding of stimulus amplitude modulation. Budgerigar TIN detection thresholds were similar to human thresholds across the full range of frequencies (0.5-4 kHz) and noise levels (45-85 dB SPL) tested. Also as in humans, thresholds were minimally affected by a challenging roving-level condition with random variation in background-noise level. Many midbrain neurons showed a decreasing response rate as TIN signal-to-noise ratio (SNR) was increased by elevating the tone level, a pattern attributable to amplitude-modulation tuning in these cells and the fact that higher SNR tone-plus-noise stimuli have flatter amplitude envelopes. TIN thresholds of individual neurons were as sensitive as behavioral thresholds under most conditions, perhaps surprisingly even when the unit's characteristic frequency was tuned an octave or more away from the test frequency. A model that combined responses of two cell types enhanced TIN sensitivity in the roving-level condition. These results highlight the importance of midbrain-level envelope encoding and off-frequency neural channels for hearing in noise.SIGNIFICANCE STATEMENT Detection of target sounds in noise is often assumed to depend on energy-level encoding by neural processing channels tuned to the target frequency. In contrast, we found that tone-in-noise sensitivity in budgerigars was often greatest in midbrain neurons not tuned to the test frequency, underscoring the potential importance of off-frequency channels for perception. Furthermore, the results highlight the importance of envelope processing for hearing in noise, especially under challenging conditions with random variation in background noise level over time.


Asunto(s)
Estimulación Acústica , Vías Auditivas/fisiología , Umbral Auditivo/fisiología , Condicionamiento Operante/fisiología , Colículos Inferiores/fisiología , Melopsittacus/fisiología , Neuronas/fisiología , Relación Señal-Ruido , Animales , Mapeo Encefálico , Señales (Psicología) , Electrodos Implantados , Femenino , Colículos Inferiores/citología , Masculino , Ruido , Percepción de la Altura Tonal/fisiología
2.
J Assoc Res Otolaryngol ; 22(1): 33-49, 2021 02.
Artículo en Inglés | MEDLINE | ID: mdl-33078291

RESUMEN

Sensorineural hearing loss is a prevalent problem that adversely impacts quality of life by compromising interpersonal communication. While hair cell damage is readily detectable with the clinical audiogram, this traditional diagnostic tool appears inadequate to detect lost afferent connections between inner hair cells and auditory nerve (AN) fibers, known as cochlear synaptopathy. The envelope-following response (EFR) is a scalp-recorded response to amplitude modulation, a critical acoustic feature of speech. Because EFRs can have greater amplitude than wave I of the auditory brainstem response (ABR; i.e., the AN-generated component) in humans, the EFR may provide a more sensitive way to detect cochlear synaptopathy. We explored the effects of kainate- (kainic acid) induced excitotoxic AN injury on EFRs and ABRs in the budgerigar (Melopsittacus undulatus), a parakeet species used in studies of complex sound discrimination. Kainate reduced ABR wave I by 65-75 % across animals while leaving otoacoustic emissions unaffected or mildly enhanced, consistent with substantial and selective AN synaptic loss. Compared to wave I loss, EFRs showed similar or greater percent reduction following kainate for amplitude-modulation frequencies from 380 to 940 Hz and slightly less reduction from 80 to 120 Hz. In contrast, forebrain-generated middle latency responses showed no consistent change post-kainate, potentially due to elevated "central gain" in the time period following AN damage. EFR reduction in all modulation frequency ranges was highly correlated with wave I reduction, though within-animal effect sizes were greater for higher modulation frequencies. These results suggest that even low-frequency EFRs generated primarily by central auditory nuclei might provide a useful noninvasive tool for detecting synaptic injury clinically.


Asunto(s)
Nervio Coclear/efectos de los fármacos , Potenciales Evocados Auditivos del Tronco Encefálico , Ácido Kaínico/toxicidad , Melopsittacus , Estimulación Acústica , Animales , Umbral Auditivo , Cóclea/efectos de los fármacos , Cóclea/fisiología , Nervio Coclear/lesiones , Potenciales Evocados Auditivos del Tronco Encefálico/efectos de los fármacos , Pérdida Auditiva , Humanos , Calidad de Vida
3.
Hear Res ; 374: 24-34, 2019 03 15.
Artículo en Inglés | MEDLINE | ID: mdl-30703625

RESUMEN

Auditory-nerve fibers are lost steadily with age and as a possible consequence of noise-induced glutamate excitotoxicity. Auditory-nerve loss in the absence of other cochlear pathologies is thought to be undetectable with a pure-tone audiogram while degrading real-world speech perception (hidden hearing loss). Perceptual deficits remain unclear, however, due in part to the limited behavioral capacity of existing rodent models to discriminate complex sounds. The budgerigar is an avian vocal learner with human-like behavioral sensitivity to many simple and complex sounds and the capacity to mimic speech. Previous studies in this species show that intracochlear kainic-acid infusion reduces wave 1 of the auditory brainstem response by 40-70%, consistent with substantial excitotoxic auditory-nerve damage. The present study used operant-conditioning procedures in trained budgerigars to quantify kainic-acid effects on tone detection across frequency (0.25-8 kHz; the audiogram) and as a function of duration (20-160 ms; temporal integration). Tone thresholds in control animals were lowest from 1 to 4 kHz and decreased with increasing duration as in previous studies of the budgerigar. Behavioral results in kainic-acid-exposed animals were as sensitive as in controls, suggesting preservation of the audiogram and temporal integration despite auditory-nerve loss associated with up to 70% wave 1 reduction. Distortion-product otoacoustic emissions were also preserved in kainic-acid exposed animals, consistent with normal hair-cell function. These results highlight considerable perceptual resistance of tone-detection performance with selective auditory-nerve loss. Future behavioral studies in budgerigars with auditory-nerve damage can use complex speech-like stimuli to help clarify aspects of auditory perception impacted by this common cochlear pathology.


Asunto(s)
Nervio Coclear/fisiopatología , Melopsittacus/fisiología , Estimulación Acústica , Animales , Audiometría de Tonos Puros , Percepción Auditiva/fisiología , Umbral Auditivo/fisiología , Conducta Animal/fisiología , Nervio Coclear/efectos de los fármacos , Nervio Coclear/lesiones , Condicionamiento Operante/fisiología , Modelos Animales de Enfermedad , Potenciales Evocados Auditivos del Tronco Encefálico/fisiología , Femenino , Humanos , Ácido Kaínico/toxicidad , Masculino , Emisiones Otoacústicas Espontáneas/fisiología , Ototoxicidad/fisiopatología , Psicoacústica
4.
J Acoust Soc Am ; 142(4): 2073, 2017 10.
Artículo en Inglés | MEDLINE | ID: mdl-29092534

RESUMEN

Vowels are complex sounds with four to five spectral peaks known as formants. The frequencies of the two lowest formants, F1and F2, are sufficient for vowel discrimination. Behavioral studies show that many birds and mammals can discriminate vowels. However, few studies have quantified thresholds for formant-frequency discrimination. The present study examined formant-frequency discrimination in budgerigars (Melopsittacus undulatus) and humans using stimuli with one or two formants and a constant fundamental frequency of 200 Hz. Stimuli had spectral envelopes similar to natural speech and were presented with random level variation. Thresholds were estimated for frequency discrimination of F1, F2, and simultaneous F1 and F2 changes. The same two-down, one-up tracking procedure and single-interval, two-alternative task were used for both species. Formant-frequency discrimination thresholds were as sensitive in budgerigars as in humans and followed the same patterns across all conditions. Thresholds expressed as percent frequency difference were higher for F1 than for F2, and were unchanged between stimuli with one or two formants. Thresholds for simultaneous F1 and F2 changes indicated that discrimination was based on combined information from both formant regions. Results were consistent with previous human studies and show that budgerigars provide an exceptionally sensitive animal model of vowel feature discrimination.


Asunto(s)
Conducta Animal , Discriminación en Psicología , Melopsittacus , Discriminación de la Altura Tonal , Acústica del Lenguaje , Percepción del Habla , Calidad de la Voz , Estimulación Acústica , Adulto , Animales , Audiometría de Tonos Puros , Umbral Auditivo , Femenino , Humanos , Masculino , Psicoacústica , Especificidad de la Especie , Adulto Joven
5.
Hear Res ; 275(1-2): 89-95, 2011 May.
Artículo en Inglés | MEDLINE | ID: mdl-21147208

RESUMEN

The characterization of ability in behavioral sound-localization tasks is an important aspect of understanding how the brain encodes and processes sound location information. In a few species, both physiological and behavioral results related to sound localization are available. In the Mongolian gerbil, physiological sensitivity to interaural time differences in the auditory brainstem is comparable to that reported in other species; however, the gerbil has been reported to have relatively poor behavioral localization performance as compared with several other species. In this study, the behavioral performance of the gerbil for sound localization was re-examined using a task that involved a simpler response map than in previously published studies. In the current task, the animal directly approached the speaker on each trial, thus the response map was simpler than the 90°-right vs. 90°-left response required in previous studies of localization and source discrimination. Although the general performance across a group of animals was more consistent in the task with the simpler response map, the sound-localization ability replicated that previously reported. These results are consistent with the previous reports that sound-localization performance in gerbil is poor with respect to other species that have comparable neural sensitivity to interaural cues.


Asunto(s)
Gerbillinae/fisiología , Localización de Sonidos/fisiología , Estimulación Acústica/métodos , Animales , Vías Auditivas , Umbral Auditivo/fisiología , Conducta Animal , Tronco Encefálico , Diseño de Equipo , Femenino , Masculino , Modelos Biológicos , Neuronas/metabolismo , Psicoacústica , Sonido
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