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Sese, W. D.

Publications and source records attributed to Sese, W. D..

2 recordsLinked to original sources

Cochlear Innate Immune Homeostasis is altered in the Oncomodulin-Deficient Mouse Model

As part of cochlear innate immunity, cochlear resident macrophages regulate different aspects of tissue maturation, cochlear homeostasis, and injury response. Cochlear resident macrophages exhibit dynamic changes in morphology, distribution, and abundance after cochlear injury. However, in the absence of pathology, regulation of cochlear innate immunity is poorly understood. Since loss of cochlear outer hair cells (OHCs) are indicators of cochlear pathology, we hypothesize that cochlear innate immunity might be sensitive to changes in OHC function. Calcium homeostasis in OHCs is necessary for auditory function, and its dysregulation is associated with hearing loss. However, it is unknown if changes in OHC Ca2+ homeostasis are sufficient to alter cochlear innate immunity. Here, we investigate alterations in cochlear innate immunity in a mouse model lacking oncomodulin (OCM), an OHC-specific calcium buffer. Our study focused on the osseous spiral lamina (OSL), a region adjacent to cochlear hair cells. At 1 month, wild-type (WT) mice and Ocm knockout (KO) mice have similar hearing thresholds and no evidence of cochlear damage. However, in KO mice, OSL resident macrophages show increased density, altered morphology, and increased spatial segregation closer to the sensory epithelium. Despite these changes in OSL resident macrophages, cytokine profiling revealed no remarkable differences. At 5 months, Ocm KO mice show a progressive hearing loss with a frequency dependent loss of OHCs and inner hair cell ribbon synapses, but the density of OSL macrophages remained unchanged. Prior to hearing onset, there was no significant difference in immune cell numbers between Ocm WT and KO mice. These findings suggest that cochlear innate immunity is sensitive to OHC calcium buffering following hearing onset.

neuroscience↗

Lack of Oncomodulin Increases ATP-Dependent Calcium Signaling and Susceptibility to Noise in Adult Mice

Tight regulation of Ca2+ is crucial for the function of cochlear outer hair cells (OHCs). Dysregulation of Ca2+ homeostasis in OHCs is associated with impaired hearing and contributes to increased vulnerability to insults such as noise exposure. Ca2+ signaling in developing OHCs is modulated by oncomodulin (OCM), an EF-hand calcium-binding protein. Here, we investigated whether the lack of OCM disrupts the control of intracellular Ca2+ in mature OHCs, and influences vulnerability to acoustic injury. Using young adult CBA/CaJ mice, we found that OHCs from Ocm-knockout (Ocm-/-) mice showed normal biophysical profiles, electromotile responses, and synaptic innervation compared to littermate controls. Moderate noise exposure (95 dB SPL, 2 hrs) caused temporary threshold shifts in Ocm+/+ and Ocm-/- mice. However, while Ocm+/+ fully recovered thresholds 2 weeks after noise exposure, Ocm-/- mice showed permanent threshold shifts. Additionally, Ocm-/- mice had auditory brainstem responses with highly variable latencies and amplitudes both before and after noise exposure compared to Ocm+/+ mice. Using a genetically encoded Ca2+ sensor (GCaMP6s) expressed in Ocm+/+ and Ocm-/- OHCs, we found that prolonged noise exposure (95 dB SPL, 9 hrs) significantly increased GCaMP6s fluorescence, ATP-induced Ca2+ signaling and also caused greater threshold shifts in Ocm-/- compared to Ocm+/+ OHCs. However, prolonged noise exposure had no significant change in the number of presynaptic OHC ribbons in either Ocm+/+ or Ocm-/- mice. We assessed whether the ATP-induced responses were due to changes in P2X2 receptor expression. Prior to noise exposure, P2X2 expression was higher in the cochlea of Ocm-/- mice compared to Ocm+/+ mice. Following prolonged noise, P2X2 receptors were upregulated in the cochlea of Ocm+/+ but not in the Ocm-/- mice, which retained their pre-noise expression level. We propose that the lack of OCM increases susceptibility to cochlear pathology and that purinergic signaling and dysregulation of cytosolic Ca2+ homeostasis likely contribute to early onset hearing loss in the Ocm-/- mice.

neuroscience↗