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Conner, A. N.

Publications and source records attributed to Conner, A. N..

5 recordsLinked to original sources

Noise-induced temporary threshold shift in macaques disrupts electrophysiological temporal processing despite recovery of cochlear sensitivity and preserved ribbon synapse counts

Noise exposure can produce lasting auditory dysfunction in the absence of permanent threshold shifts or hair cell loss, yet the functional consequences of temporary threshold shift (TTS) remain poorly defined in translational models. We assessed auditory brainstem responses (ABRs) and distortion product otoacoustic emissions (DPOAEs) in rhesus macaques (n = 13) at 2 and 9-10 months following a single moderate noise exposure that induced TTS. Previous histological analyses of these macaques showed no significant loss of hair cells or ribbon synapses but revealed persistent broadening of inner and outer hair cell ribbon-volume distributions. After exposure, DPOAE amplitudes and thresholds and ABR thresholds returned to pre-exposure values and showed low-frequency enhancement at later time points. Suprathreshold click- and tone-evoked ABR amplitudes were largely preserved or enhanced after exposure, consistent with compensatory gain. In contrast, macaque-specific chirp-evoked ABRs showed modest amplitude reductions and latency prolongation across waves, indicating altered neural synchrony at standard stimulus presentation rates, but with variable time courses. More temporally demanding paradigms revealed persistent impairments. ABRs to faster click rates and shorter paired-click intervals showed reduced adaptability in response amplitude and timing after normalization, with deficits persisting through 9-10 months. Increased inner hair cell ribbon-volume variability was more consistently associated with temporal response measures, including latency, paired-click recovery, and rate adaptation, than with amplitude-based ABR measures. Together, these findings reveal a lasting dissociation between response magnitude and fidelity after TTS: suprathreshold responses may be preserved or enhanced, while neural synchrony and temporal adaptability remain impaired. Increased presynaptic ribbon volume variability may serve as a structural marker of synaptic remodeling accompanying hidden auditory dysfunction, rather than as a direct determinant of suprathreshold response magnitude. Temporally demanding ABR paradigms may supplement threshold-based diagnostics for detecting persistent noise-induced auditory dysfunction.

neuroscience↗

Physiological, Histological, and Cognitive Characterization of a Macaque Model of Presbycusis

Age-related hearing loss (ARHL), or presbycusis, is one of the most prevalent sensory deficits in older adults and has been increasingly implicated in cognitive decline and dementia. This study characterizes ARHL in a rhesus macaque model by combining histological, physiological, and cognitive assessments. Aged macaques exhibited progressive cochlear degeneration, with marked outer hair cell loss at mid-to-high frequencies, elevated auditory thresholds, reduced distortion product otoacoustic emissions, and impaired auditory brainstem responses including amplitude reduction, latency prolongation, and diminished temporal precision. Despite modest reductions in inner hair cell ribbon synapse counts, hypertrophic changes were observed. These auditory deficits correlated with subtle impairments in visual working memory, as measured by a delayed match-to-sample task, underscoring a potential sensory-cognitive link. By capturing cross-domain aging markers in a translationally relevant primate model, this work lays a foundation for mechanistic studies and therapeutic interventions targeting both hearing and cognition in aging populations.

neuroscience↗

Persistent impairment of spatial hearing and neural binaural interaction after temporary noise-induced hearing loss

Many people have trouble understanding speech in noisy environments despite normal audiometric thresholds, a condition referred to as "hidden hearing loss." A leading hypothesis attributes this deficit to inner hair cell synaptic pathology (cochlear synaptopathy), which can persist after recovery from noise-induced temporary elevation of audiometric thresholds. This pathology impairs the temporally precise sound encoding necessary for spatial hearing, but direct evidence in primates, human or nonhuman, is lacking. Here, we show that a single noise exposure, producing only a temporary threshold elevation, induced long-lasting alterations in synaptic morphology, without synapse loss, resulting in persistent spatial hearing deficits for up to 11 months post-exposure in nonhuman primates of both sexes. These perceptual deficits were accompanied by a reduction in a neurophysiological measure of binaural processing - the binaural interaction component (BIC) of the auditory brainstem response (ABR). Both behavioral and neural deficits persisted despite full recovery of audiometric thresholds. Together, these findings provide the first evidence in primates that noise exposure disrupts spatial hearing and binaural neural circuit function without loss of hair cells or synapses. Because spatial hearing tests and the ABR/BIC are clinically accessible, this work also establishes translational biomarkers for early neural dysfunction underlying hidden hearing loss.

neuroscience↗

Cochlear histopathology in macaques after noise-induced temporary threshold shifts

Noise exposures causing transient hearing loss were previously considered benign. However, recent work has revealed that temporary noise-induced threshold shifts may be associated with long-lasting cochlear histopathology. One such effect is cochlear synaptopathy, i.e. changes to the afferent synapse between inner hair cells and auditory nerve fibers. Noise-induced synaptopathy has been extensively characterized in several rodent models, and temporal bone studies suggest similar age-related changes in humans. However, it remains unclear how noise-induced temporary threshold shifts affect cochlear structures in humans and nonhuman primates, which show greater resistance to noise exposure than other animals. Additionally, the long-term sequelae of temporary threshold shifts are largely unknown. Here, we characterized the effects of a noise exposure causing temporary hearing loss on cochlear histopathology in macaque monkeys at long post-exposure survival times. Overall, cochlear histopathology was variable across subjects, similar to the variable susceptibility observed in humans. At 2 and 10 months post-exposure, macaques had no significant loss of hair cells, inner hair cell synapses, or cholinergic efferent innervation. However, enlargement of ribbons in both inner and outer hair cells was observed. Together, these findings provide insight into the cochlear effects of single-exposure temporary threshold shifts in nonhuman primates. HIGHLIGHTS- Macaques exposed to 120 dB SPL noise for 4h showed temporary threshold shifts - Cochlear histopathology was evaluated at 2 and 10 months post-exposure - Macaques had no significant loss of hair cells or inner hair cell synapses - Chronic enlargement of inner and outer hair cell ribbons was observed - Transient loss of outer hair cell ribbons was also observed

neuroscience↗

A Specialized Epithelial Cell Type Regulating Mucosal Immunity and Driving Human Crohn's Disease

Crohns disease (CD) is a complex chronic inflammatory disorder that may affect any part of gastrointestinal tract with extra-intestinal manifestations and associated immune dysregulation. To characterize heterogeneity in CD, we profiled single-cell transcriptomics of 170 samples from 65 CD patients and 18 non-inflammatory bowel disease (IBD) controls in both the terminal ileum (TI) and ascending colon (AC). Analysis of 202,359 cells identified a novel epithelial cell type in both TI and AC, featuring high expression of LCN2, NOS2, and DUOX2, and thus is named LND. LND cells, confirmed by high-resolution in-situ RNA imaging, were rarely found in non-IBD controls, but expanded significantly in active CD. Compared to other epithelial cells, genes defining LND cells were enriched in antimicrobial response and immunoregulation. Moreover, multiplexed protein imaging demonstrated that LND cell abundance was associated with immune infiltration. Cross-talk between LND and immune cells was explored by ligand-receptor interactions and further evidenced by their spatial colocalization. LND cells showed significant enrichment of expression specificity of IBD/CD susceptibility genes, revealing its role in immunopathogenesis of CD. Investigating lineage relationships of epithelial cells detected two LND cell subpopulations with different origins and developmental potential, early and late LND. The ratio of the late to early LND cells was related to anti-TNF response. These findings emphasize the pathogenic role of the specialized LND cell type in both Crohns ileitis and Crohns colitis and identify novel biomarkers associated with disease activity and treatment response.

bioinformatics↗