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1.
Nat Commun ; 15(1): 4833, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38844821

ABSTRACT

Mammalian inner ear hair cell loss leads to permanent hearing and balance dysfunction. In contrast to the cochlea, vestibular hair cells of the murine utricle have some regenerative capacity. Whether human utricular hair cells regenerate in vivo remains unknown. Here we procured live, mature utricles from organ donors and vestibular schwannoma patients, and present a validated single-cell transcriptomic atlas at unprecedented resolution. We describe markers of 13 sensory and non-sensory cell types, with partial overlap and correlation between transcriptomes of human and mouse hair cells and supporting cells. We further uncover transcriptomes unique to hair cell precursors, which are unexpectedly 14-fold more abundant in vestibular schwannoma utricles, demonstrating the existence of ongoing regeneration in humans. Lastly, supporting cell-to-hair cell trajectory analysis revealed 5 distinct patterns of dynamic gene expression and associated pathways, including Wnt and IGF-1 signaling. Our dataset constitutes a foundational resource, accessible via a web-based interface, serving to advance knowledge of the normal and diseased human inner ear.


Subject(s)
Regeneration , Single-Cell Analysis , Transcriptome , Humans , Animals , Regeneration/genetics , Mice , Saccule and Utricle/metabolism , Saccule and Utricle/cytology , Neuroma, Acoustic/genetics , Neuroma, Acoustic/metabolism , Neuroma, Acoustic/pathology , Ear, Inner/metabolism , Ear, Inner/cytology , Insulin-Like Growth Factor I/metabolism , Insulin-Like Growth Factor I/genetics , Male , Hair Cells, Vestibular/metabolism , Female , Gene Expression Profiling
2.
Development ; 151(10)2024 May 15.
Article in English | MEDLINE | ID: mdl-38804528

ABSTRACT

The planar polarized organization of hair cells in the vestibular maculae is unique because these sensory organs contain two groups of cells with oppositely oriented stereociliary bundles that meet at a line of polarity reversal (LPR). EMX2 is a transcription factor expressed by one hair cell group that reverses the orientation of their bundles, thereby forming the LPR. We generated Emx2-CreERt2 transgenic mice for genetic lineage tracing and demonstrate Emx2 expression before hair cell specification when the nascent utricle and saccule constitute a continuous prosensory domain. Precursors labeled by Emx2-CreERt2 at this stage give rise to hair cells located along one side of the LPR in the mature utricle or saccule, indicating that this boundary is first established in the prosensory domain. Consistent with this, Emx2-CreERt2 lineage tracing in Dreher mutants, where the utricle and saccule fail to segregate, labels a continuous field of cells along one side of a fused utriculo-saccular-cochlear organ. These observations reveal that LPR positioning is pre-determined in the developing prosensory domain, and that EMX2 expression defines lineages of hair cells with oppositely oriented stereociliary bundles.


Subject(s)
Cell Lineage , Cell Polarity , Ear, Inner , Homeodomain Proteins , Mice, Transgenic , Transcription Factors , Animals , Homeodomain Proteins/metabolism , Homeodomain Proteins/genetics , Mice , Cell Lineage/genetics , Transcription Factors/metabolism , Transcription Factors/genetics , Ear, Inner/metabolism , Ear, Inner/embryology , Ear, Inner/cytology , Cell Polarity/genetics , Saccule and Utricle/cytology , Saccule and Utricle/metabolism , Saccule and Utricle/embryology , Gene Expression Regulation, Developmental , Hair Cells, Auditory/metabolism , Hair Cells, Auditory/cytology
3.
Development ; 151(10)2024 May 15.
Article in English | MEDLINE | ID: mdl-38682291

ABSTRACT

The planar polarized organization of hair cells in the vestibular maculae is unique because these sensory organs contain two groups of cells with oppositely oriented stereociliary bundles that meet at a line of polarity reversal (LPR). EMX2 is a transcription factor expressed by one hair cell group that reverses the orientation of their bundles, thereby forming the LPR. We generated Emx2-CreERt2 transgenic mice for genetic lineage tracing and demonstrate Emx2 expression before hair cell specification when the nascent utricle and saccule constitute a continuous prosensory domain. Precursors labeled by Emx2-CreERt2 at this stage give rise to hair cells located along one side of the LPR in the mature utricle or saccule, indicating that this boundary is first established in the prosensory domain. Consistent with this, Emx2-CreERt2 lineage tracing in Dreher mutants, where the utricle and saccule fail to segregate, labels a continuous field of cells along one side of a fused utriculo-saccular-cochlear organ. These observations reveal that LPR positioning is pre-determined in the developing prosensory domain, and that EMX2 expression defines lineages of hair cells with oppositely oriented stereociliary bundles.


Subject(s)
Cell Lineage , Cell Polarity , Ear, Inner , Homeodomain Proteins , Mice, Transgenic , Transcription Factors , Animals , Homeodomain Proteins/metabolism , Homeodomain Proteins/genetics , Mice , Cell Lineage/genetics , Transcription Factors/metabolism , Transcription Factors/genetics , Ear, Inner/metabolism , Ear, Inner/embryology , Ear, Inner/cytology , Cell Polarity/genetics , Saccule and Utricle/cytology , Saccule and Utricle/metabolism , Saccule and Utricle/embryology , Gene Expression Regulation, Developmental , Hair Cells, Auditory/metabolism , Hair Cells, Auditory/cytology
4.
Hear Res ; 443: 108962, 2024 Mar 01.
Article in English | MEDLINE | ID: mdl-38295585

ABSTRACT

Nestin expression is associated with pluripotency. Growing evidence suggests nestin is involved in hair cell development. The objective of this study was to investigate the morphology and role of nestin-expressing cells residing in the early postnatal murine inner ear. A lineage-tracing nestin reporter mouse line was used to further characterize these cells. Their cochleae and vestibular organs were immunostained and whole-mounted for cell counting. We found Nestin-expressing cells present in low numbers throughout the inner ear. Three morphotypes were observed: bipolar, unipolar, and globular. Mitotic activity was noted in nestin-expressing cells in the cochlea, utricle, saccule, and crista. Nestin-expressing cell characteristics were then observed after hair cell ablation in two mouse models. First, a reporter model demonstrated nestin expression in a significantly higher proportion of hair cells after hair cell ablation than in control cochleae. However, in a lineage tracing nestin reporter mouse, none of the new hair cells which repopulated the organ of Corti after hair cell ablation expressed nestin, nor did the nestin-expressing cells change in morphotype. In conclusion, Nestin-expressing cells were identified in the cochlea and vestibular organs. After hair cell ablation, nestin-expressing cells did not react to the insult. However, a small number of nestin-expressing cells in all inner ear tissues exhibited mitotic activity, supporting progenitor cell potential, though perhaps not involved in hair cell regeneration.


Subject(s)
Cochlea , Vestibule, Labyrinth , Animals , Mice , Cochlea/metabolism , Hair Cells, Auditory/metabolism , Nestin/genetics , Nestin/metabolism , Saccule and Utricle/metabolism , Vestibule, Labyrinth/metabolism
5.
J Neurosci ; 44(1)2024 Jan 03.
Article in English | MEDLINE | ID: mdl-37952940

ABSTRACT

Information about dynamic head motion is conveyed by a central "striolar" zone of vestibular hair cells and afferent neurons in the inner ear. How vestibular hair cells are tuned to transduce dynamic stimuli at the molecular level is not well understood. Here we take advantage of the differential expression pattern of tmc1, tmc2a, and tmc2b, which encode channel subunits of the mechanotransduction complex in zebrafish vestibular hair cells. To test the role of various combinations of Tmc subunits in transducing dynamic head movements, we measured reflexive eye movements induced by high-frequency stimuli in single versus double tmc mutants. We found that Tmc2a function correlates with the broadest range of frequency sensitivity, whereas Tmc2b mainly contributes to lower-frequency responses. Tmc1, which is largely excluded from the striolar zone, plays a minor role in sensing lower-frequency stimuli. Our study suggests that the Tmc subunits impart functional differences to the mechanotransduction of dynamic stimuli.Significance Statement Information about dynamic head movements is transmitted by sensory receptors, known as hair cells, in the labyrinth of the inner ear. The sensitivity of hair cells to fast or slow movements of the head differs according to cell type. Whether the mechanotransduction complex that converts mechanical stimuli into electrical signals in hair cells participates in conveying frequency information is not clear. Here we find that the transmembrane channel-like 1/2 genes, which encode a central component of the complex, are differentially expressed in the utricle and contribute to frequency sensitivity in zebrafish.


Subject(s)
Mechanotransduction, Cellular , Zebrafish , Animals , Zebrafish/metabolism , Mechanotransduction, Cellular/physiology , Membrane Proteins/metabolism , Hair Cells, Auditory/physiology , Saccule and Utricle/metabolism
6.
Prog Neurobiol ; 212: 102238, 2022 05.
Article in English | MEDLINE | ID: mdl-35104536

ABSTRACT

The saccule is one of the vestibular sensory organs of the inner ear. It detects head movements and provides information to maintain balance and orient in space. Despite its critical role, very little is known about its neurotransmission and regulation. Multiple disease entities and medications affect balance, which is why information on neurotransmission in the vestibular end organs including the saccule could have important pharmacological implications. To the best of our knowledge, this is the first paper to describe immunohistochemical expression of a large panel of neurotransmitters and receptors in the human saccule. Saccular tissue was sampled freshly during surgery. Based partly on previous findings in non-humans and partly on potential biological relevance, the neurotransmitters cholecystokinin, dopamine, GABA, glutamate, histamine and serotonin as well as receptors for these were selected for the tested panel. The neuroepithelium expressed glutamate receptor 1 (GluR1), metabotropic glutamate receptor (mGluR), GABA A receptor α (GABAARα), GABA B receptor 2 and cholecystokinin receptor B (CCKBR), whereas l-glutamate, GluR1, CCKBR, GABAARα, dopamine and serotonin receptor 1D were expressed in the subepithelial stroma. The non-sensory epithelium expressed GluR1, mGluR, histamine receptor 3, CCKAR and dopamine transporter. These findings provide a basis for pharmacological research and potential drug development.


Subject(s)
Dopamine , Vestibular System , Glutamic Acid/metabolism , Humans , Neurotransmitter Agents/metabolism , Saccule and Utricle/metabolism , gamma-Aminobutyric Acid/metabolism
7.
Neurotoxicology ; 84: 105-113, 2021 05.
Article in English | MEDLINE | ID: mdl-33722544

ABSTRACT

Epidemiological and experimental studies indicate that a number of aromatic solvents widely used in the industry can affect hearing and balance following chronic exposure. Animal studies demonstrated that long-term exposure to aromatic solvents directly damages the auditory receptor within the inner ear: the cochlea. However, no information is available on their effect on the vestibular receptor, which shares many structural features with the cochlea and is also localized in inner ear. The aim of this study was to use an in vitro approach to assess and compare the vestibular toxicity of different aromatic solvents (toluene, ethylbenzene, styrene and ortho-, meta-, para-xylene), all of which have well known cochleotoxic properties. We used a three-dimensional culture model of rat utricles ("cysts") with preserved functional sensory and secretory epithelia, and containing a potassium-rich (K+) endolymph-like fluid for this study. Variations in K+ concentrations in this model were considered as biomarkers of toxicity of the substances tested. After 72 h exposure, o-xylene, ethylbenzene and styrene decreased the K+ concentration by 78 %, 37 % and 28 %, respectively. O- xylene and styrene both caused histopathological alterations in secretory and sensory epithelial areas after 72 h exposure, whereas no anomalies were observed in ethylbenzene-exposed samples. These in vitro results suggest that some widely used aromatic solvents might have vestibulotoxic properties (o-xylene, styrene and ethylbenzene), whereas others may not (p-xylene, m-xylene, toluene). Our results also indicate that variations in endolymphatic K+ concentration may be a more sensitive marker of vestibular toxicity than histopathological events. Finally, this study suggests that cochleotoxic solvents might not be necessarily vestibulotoxic, and vice versa.


Subject(s)
Hydrocarbons, Aromatic/toxicity , Saccule and Utricle/drug effects , Saccule and Utricle/metabolism , Solvents/toxicity , Animals , Animals, Newborn , Cells, Cultured , Cochlea/drug effects , Cochlea/metabolism , Cochlea/pathology , Dose-Response Relationship, Drug , Female , Pregnancy , Rats , Rats, Long-Evans , Saccule and Utricle/pathology , Styrene/toxicity , Toluene/toxicity , Vestibule, Labyrinth/drug effects , Vestibule, Labyrinth/metabolism , Vestibule, Labyrinth/pathology , Xylenes/toxicity
8.
Sci Rep ; 11(1): 2140, 2021 01 25.
Article in English | MEDLINE | ID: mdl-33495483

ABSTRACT

The Hippo signaling pathway is a key regulator of tissue development and regeneration. Activation of the Hippo pathway leads to nuclear translocation of the YAP1 transcriptional coactivator, resulting in changes in gene expression and cell cycle entry. Recent studies have demonstrated the nuclear translocation of YAP1 during the development of the sensory organs of the inner ear, but the possible role of YAP1 in sensory regeneration of the inner ear is unclear. The present study characterized the cellular localization of YAP1 in the utricles of mice and chicks, both under normal conditions and after HC injury. During neonatal development, YAP1 expression was observed in the cytoplasm of supporting cells, and was transiently expressed in the cytoplasm of some differentiating hair cells. We also observed temporary nuclear translocation of YAP1 in supporting cells of the mouse utricle after short periods in organotypic culture. However, little or no nuclear translocation of YAP1 was observed in the utricles of neonatal or mature mice after ototoxic injury. In contrast, substantial YAP1 nuclear translocation was observed in the chicken utricle after streptomycin treatment in vitro and in vivo. Together, these data suggest that differences in YAP1 signaling may partially account for the differing regenerative abilities of the avian vs. mammalian inner ear.


Subject(s)
Adaptor Proteins, Signal Transducing/metabolism , Saccule and Utricle/embryology , Saccule and Utricle/injuries , Animals , Cell Nucleus/drug effects , Cell Nucleus/metabolism , Chickens , Diphtheria Toxin/pharmacology , Female , Gene Expression Regulation, Developmental/drug effects , Hair Cells, Auditory/drug effects , Hair Cells, Auditory/metabolism , Homeodomain Proteins/metabolism , Humans , Male , Mice, Inbred C57BL , Mice, Transgenic , Protein Transport/drug effects , Saccule and Utricle/metabolism , Saccule and Utricle/pathology , Transcription Factor Brn-3C/metabolism
9.
J Cell Physiol ; 236(7): 5235-5252, 2021 07.
Article in English | MEDLINE | ID: mdl-33368220

ABSTRACT

Intratympanic injection of gentamicin has proven to be an effective therapy for intractable vestibular dysfunction. However, most studies to date have focused on the cochlea, so little is known about the distribution and uptake of gentamicin by the counterpart of the auditory system, specifically vestibular hair cells (HCs). Here, with a combination of in vivo and in vitro approaches, we used a gentamicin-Texas Red (GTTR) conjugate to investigate the mechanisms of gentamicin vestibulotoxicity in the developing mammalian utricular HCs. In vivo, GTTR fluorescence was concentrated in the apical cytoplasm and the cellular membrane of neonatal utricular HCs, but scarce in the nucleus of HCs and supporting cells. Quantitative analysis showed the GTTR uptake by striolar HCs was significantly higher than that in the extrastriola. In addition, the GTTR fluorescence intensity in the striola was increased gradually from 1 to 8 days, peaking at 8-9 days postnatally. In vitro, utricle explants were incubated with GTTR and candidate uptake conduits, including mechanotransduction (MET) channels and endocytosis in the HC, were inhibited separately. GTTR uptake by HCs could be inhibited by quinine, a blocker of MET channels, under both normal and stressed conditions. Meanwhile, endocytic inhibition only reduced GTTR uptake in the CoCl2 hypoxia model. In sum, the maturation of MET channels mediated uptake of GTTR into vestibular HCs. Under stressed conditions, MET channels play a pronounced role, manifested by channel-dependent stress enhanced GTTR permeation, while endocytosis participates in GTTR entry in a more selective manner.


Subject(s)
Biological Transport/physiology , Gentamicins/pharmacology , Gentamicins/pharmacokinetics , Hair Cells, Auditory/metabolism , Saccule and Utricle/embryology , Animals , Endocytosis/drug effects , Female , Gentamicins/chemistry , Male , Membrane Transport Modulators/pharmacology , Mice , Mice, Inbred C57BL , Organ Culture Techniques , Quinine/pharmacology , Reactive Oxygen Species/metabolism , Saccule and Utricle/metabolism , Staining and Labeling , Vestibular Diseases/drug therapy , Vestibular Diseases/pathology , Xanthenes/chemistry
10.
Neurotox Res ; 39(1): 36-41, 2021 Feb.
Article in English | MEDLINE | ID: mdl-32221851

ABSTRACT

Cisplatin is a platinum-based chemotherapy compound effective against a variety of cancers. However, it can cause increased reactive oxygen species (ROS) production in auditory and vestibular tissue leading to permanent hearing and balance loss. The amino acid, L-serine, has been shown to reduce ROS in some tissue types. In this project, we first investigated whether L-serine could reduce cisplatin-mediated ROS generation in zebrafish utricular tissue culture using spectrophotometry and the fluorescent ROS detector dye, H2DCFDA. Then, we examined whether L-serine could prevent the effect of cisplatin against cellular viability in the mouse auditory hybridoma cell line, HEI-OC1, using the spectrophotometric (3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide) (MTT) assay. As a final step, we used H2DCFDA dye and flow cytometry analysis to determine if L-serine could counteract the effect of cisplatin on ROS production in this cell line. We found that cisplatin and L-serine treatment may influence ROS production in utricular tissue. Further, although L-serine did not counteract the effect of cisplatin against HEI-OC1 cellular viability, the amino acid did prevent the platinum compound's effect to increase ROS in these cells. These results suggest that L-serine may act in auditory and vestibular tissues as an effective protectant against cisplatin-mediated toxicity.


Subject(s)
Cisplatin/toxicity , Hybridomas/drug effects , Hybridomas/metabolism , Reactive Oxygen Species/metabolism , Saccule and Utricle/drug effects , Saccule and Utricle/metabolism , Serine/administration & dosage , Animals , Cell Line, Tumor , Female , Male , Tissue Culture Techniques , Zebrafish
11.
Exp Cell Res ; 398(1): 112395, 2021 01 01.
Article in English | MEDLINE | ID: mdl-33279477

ABSTRACT

Loss of hair cells from vestibular epithelium results in balance dysfunction. The current therapeutic regimen for vestibular diseases is limited. Upon injury or Atoh1 overexpression, hair cell replacement occurs rapidly in the mammalian utricle, suggesting a promising approach to induce vestibular hair cell regeneration. In this study, we applied simultaneous gentamicin-mediated hair cell ablation and Atoh1 overexpression to induce neonatal utricular hair cell formation in vitro. We confirmed that type I hair cells were the primary targets of gentamicin. Furthermore, injury and Atoh1 overexpression promoted hair cell regeneration in a timely and efficient manner through robust viral transfection. Hair cells regenerated with type II characteristics in the striola and type I/II characteristics in non-sensory regions. Rare EdU+/myosin7a+ cells in sensory regions and robust EdU+/myosin7a+ signals in ectopic regions indicate that transdifferentiation of supporting cells in situ, and mitosis and differentiation of non-sensory epithelial cells in ectopic regions, are sources of regenerative hair cells. Distinct regeneration patterns in in situ and ectopic regions suggested robust plasticity of vestibular non-sensory epithelium, generating more developed hair cell subtypes and thus providing a promising stem cell-like source of hair cells. These findings suggest that simultaneously causing injury and overexpressing Atoh1 promotes hair cell regeneration efficacy and maturity, thus expanding the understanding of ectopic plasticity in neonatal vestibular organs.


Subject(s)
Basic Helix-Loop-Helix Transcription Factors/genetics , Gentamicins/pharmacology , Hair Cells, Vestibular/drug effects , Saccule and Utricle/drug effects , Animals , Basic Helix-Loop-Helix Transcription Factors/metabolism , Hair Cells, Vestibular/metabolism , Hair Cells, Vestibular/pathology , Mice , Mice, Inbred C57BL , Saccule and Utricle/metabolism , Saccule and Utricle/pathology
12.
Aging (Albany NY) ; 12(20): 19834-19851, 2020 10 24.
Article in English | MEDLINE | ID: mdl-33099273

ABSTRACT

Foxg1 plays important roles in regeneration of hair cell (HC) in the cochlea of neonatal mouse. Here, we used Sox9-CreER to knock down Foxg1 in supporting cells (SCs) in the utricle in order to investigate the role of Foxg1 in HC regeneration in the utricle. We found Sox9 an ideal marker of utricle SCs and bred Sox9CreER/+Foxg1loxp/loxp mice to conditionally knock down Foxg1 in utricular SCs. Conditional knockdown (cKD) of Foxg1 in SCs at postnatal day one (P01) led to increased number of HCs at P08. These regenerated HCs had normal characteristics, and could survive to at least P30. Lineage tracing showed that a significant portion of newly regenerated HCs originated from SCs in Foxg1 cKD mice compared to the mice subjected to the same treatment, which suggested SCs trans-differentiate into HCs in the Foxg1 cKD mouse utricle. After neomycin treatment in vitro, more HCs were observed in Foxg1 cKD mice utricle compared to the control group. Together, these results suggest that Foxg1 cKD in utricular SCs may promote HC regeneration by inducing trans-differentiation of SCs. This research therefore provides theoretical basis for the effects of Foxg1 in trans-differentiation of SCs and regeneration of HCs in the mouse utricle.


Subject(s)
Cell Transdifferentiation , Forkhead Transcription Factors/deficiency , Hair Cells, Auditory/metabolism , Labyrinth Supporting Cells/metabolism , Nerve Tissue Proteins/deficiency , SOX9 Transcription Factor/metabolism , Saccule and Utricle/metabolism , Animals , Animals, Newborn , Cell Lineage , Cell Proliferation , Female , Forkhead Transcription Factors/genetics , Gene Expression Regulation, Developmental , Hair Cells, Auditory/drug effects , Hair Cells, Auditory/pathology , Labyrinth Supporting Cells/drug effects , Labyrinth Supporting Cells/pathology , Male , Mice, Knockout , Neomycin/toxicity , Nerve Tissue Proteins/genetics , Ototoxicity , Phenotype , SOX9 Transcription Factor/genetics , Saccule and Utricle/drug effects , Saccule and Utricle/pathology , Signal Transduction
13.
Elife ; 92020 09 23.
Article in English | MEDLINE | ID: mdl-32965215

ABSTRACT

Directional sensitivity of hair cells (HCs) is conferred by the aymmetric apical hair bundle, comprised of a kinocilium and stereocilia staircase. The mother centriole (MC) forms the base of the kinocilium and the stereocilia develop adjacent to it. Previously, we showed that transcription factor Emx2 reverses hair bundle orientation and its expression in the mouse vestibular utricle is restricted, resulting in two regions of opposite bundle orientation (Jiang et al., 2017). Here, we investigated establishment of opposite bundle orientation in embryonic utricles by live-imaging GFP-labeled centrioles in HCs. The daughter centriole invariably migrated ahead of the MC from the center to their respective peripheral locations in HCs. Comparing HCs between utricular regions, centriole trajectories were similar but they migrated toward opposite directions, suggesting that Emx2 pre-patterned HCs prior to centriole migration. Ectopic Emx2, however, reversed centriole trajectory within hours during a critical time-window when centriole trajectory was responsive to Emx2.


Subject(s)
Cell Polarity/physiology , Hair Cells, Auditory , Homeodomain Proteins/metabolism , Saccule and Utricle , Transcription Factors/metabolism , Animals , Centrioles/metabolism , Cilia/metabolism , Female , Hair Cells, Auditory/cytology , Hair Cells, Auditory/metabolism , Homeodomain Proteins/genetics , Male , Mice , Mice, Knockout , Microscopy , Saccule and Utricle/cytology , Saccule and Utricle/diagnostic imaging , Saccule and Utricle/metabolism , Transcription Factors/genetics
14.
Toxicol In Vitro ; 67: 104915, 2020 Sep.
Article in English | MEDLINE | ID: mdl-32540163

ABSTRACT

Despite well-documented neurotoxic and ototoxic properties, styrene remains commonly used in industry. Its effects on the cochlea have been extensively studied in animals, and epidemiological and animal evidence indicates an impact on balance. However, its influence on the peripheral vestibular receptor has yet to be investigated. Here, we assessed the vestibulotoxicity of styrene using an in vitro model, consisting of three-dimensional cultured newborn rat utricles filled with a high­potassium (K+) endolymph-like fluid, called "cysts". K+ entry in the cyst ("influx") and its exit ("efflux") are controlled by secretory cells and hair cells, respectively. The vestibular epithelium's functionality is thus linked to K+ concentration, measured using a microelectrode. Known inhibitors of K+ efflux and influx validated the model. Cysts were subsequently exposed to styrene (0.25; 0.5; 0.75 and 1 mM) for 2 h or 72 h. The decrease in K+ concentration measured after both exposure durations was dose-dependent, and significant from 0.75 mM styrene. Vacuoles were visible in the cytoplasm of epithelial cells from 0.5 mM after 2 h and from 0.25 mM after 72 h. The results presented here are the first evidence that styrene may deregulate K+ homeostasis in the endolymphatic space, thereby altering the functionality of the vestibular receptor.


Subject(s)
Endolymph/drug effects , Potassium/metabolism , Saccule and Utricle/drug effects , Styrene/toxicity , Animals , Animals, Newborn , Endolymph/metabolism , Female , Rats, Long-Evans , Saccule and Utricle/metabolism , Saccule and Utricle/pathology
15.
J Neurosci ; 40(13): 2618-2632, 2020 03 25.
Article in English | MEDLINE | ID: mdl-32079647

ABSTRACT

Sensory hair cell losses underlie the vast majority of permanent hearing and balance deficits in humans, but many nonmammalian vertebrates can fully recover from hearing impairments and balance dysfunctions because supporting cells (SCs) in their ears retain lifelong regenerative capacities that depend on proliferation and differentiation as replacement hair cells. Most SCs in vertebrate ears stop dividing during embryogenesis; and soon after birth, vestibular SCs in mammals transition to lasting quiescence as they develop massively thickened circumferential F-actin bands at their E-cadherin-rich adherens junctions. Here, we report that treatment with EGF and a GSK3 inhibitor thinned the circumferential F-actin bands throughout the sensory epithelium of cultured utricles that were isolated from adult mice of either sex. That treatment also caused decreases in E-cadherin, ß-catenin, and YAP in the striola, and stimulated robust proliferation of mature, normally quiescent striolar SCs. The findings suggest that E-cadherin-rich junctions, which are not present in the SCs of the fish, amphibians, and birds which readily regenerate hair cells, are responsible in part for the mammalian ear's vulnerability to permanent balance and hearing deficits.SIGNIFICANCE STATEMENT Millions of people are affected by hearing and balance deficits that arise when loud sounds, ototoxic drugs, infections, and aging cause hair cell losses. Such deficits are permanent for humans and other mammals, but nonmammals can recover hearing and balance after supporting cells regenerate replacement hair cells. Mammalian supporting cells lose the capacity to proliferate around the time they develop unique, exceptionally reinforced, E-cadherin-rich intercellular junctions. Here, we report the discovery of a pharmacological treatment that thins F-actin bands, depletes E-cadherin, and stimulates proliferation in long-quiescent supporting cells within a balance epithelium from adult mice. The findings suggest that high E-cadherin in those supporting cell junctions may be responsible, in part, for the permanence of hair cell loss in mammals.


Subject(s)
Cadherins/metabolism , Cell Proliferation/drug effects , Epidermal Growth Factor/pharmacology , Glycogen Synthase Kinase 3/antagonists & inhibitors , Hair Cells, Auditory/drug effects , Saccule and Utricle/drug effects , Actins/metabolism , Animals , Cadherins/genetics , Hair Cells, Auditory/metabolism , Mice , Pyridines/pharmacology , Pyrimidines/pharmacology , Saccule and Utricle/metabolism , beta Catenin/metabolism
16.
Hear Res ; 386: 107860, 2020 02.
Article in English | MEDLINE | ID: mdl-31869657

ABSTRACT

Purinergic receptors protect the cochlea during high-intensity stimulation by providing a parallel shunt pathway through non-sensory neighboring epithelial cells for cation absorption. So far, there is no direct functional evidence for the presence and type/subunit of purinergic receptors in the utricle of the vestibular labyrinth. The goal of the present study was to investigate which purinergic receptors are expressed and carry cation-absorption currents in the utricular transitional cells and macula. Purinergic agonists induced cation-absorption currents with a potency order of ATP > bzATP = αßmeATP â‰« ADP = UTP = UDP. ATP and bzATP are full agonists, whereas αßmeATP is a partial agonist. ATP-induced currents were partially inhibited by 100 µM suramin, 10 µM pyridoxal-phosphate-6-azo-(benzene-2,4-disulfonic acid (PPADS), or 5 µM 5-(3-bromophenyl)-1,3-dihydro-2H-benzofuro[3,2-e]-1, 4-diazepin-2-one (5-BDBD), and almost completely blocked by 100 µM Gd3+ or by a combination of 10 µM PPADS and 5 µM 5-BDBD. Expression of the P2RX2 and P2RX4 receptor was detected by immunocytochemistry in transitional cells and macular supporting cells. This is the first study to demonstrate that ATP induces cation currents carried by a combination of P2RX2 and P2RX4 in utricular transitional and macular epithelial cells, and supporting the hypothesis that purinergic receptors protect utricular hair cells during elevated stimulus intensity levels.


Subject(s)
Adenosine Triphosphate/metabolism , Labyrinth Supporting Cells/metabolism , Receptors, Purinergic P2X2/metabolism , Receptors, Purinergic P2X4/metabolism , Saccule and Utricle/metabolism , Animals , Drug Partial Agonism , Labyrinth Supporting Cells/drug effects , Membrane Potentials , Mice, Inbred C57BL , Mice, Transgenic , Purinergic P2X Receptor Agonists/pharmacology , Purinergic P2X Receptor Antagonists/pharmacology , Receptors, Purinergic P2X2/drug effects , Receptors, Purinergic P2X4/drug effects , Saccule and Utricle/cytology , Saccule and Utricle/drug effects , Signal Transduction , Sulfate Transporters/genetics , Sulfate Transporters/metabolism
17.
Elife ; 82019 04 29.
Article in English | MEDLINE | ID: mdl-31033441

ABSTRACT

The mammalian cochlea loses its ability to regenerate new hair cells prior to the onset of hearing. In contrast, the adult vestibular system can produce new hair cells in response to damage, or by reprogramming of supporting cells with the hair cell transcription factor Atoh1. We used RNA-seq and ATAC-seq to probe the transcriptional and epigenetic responses of utricle supporting cells to damage and Atoh1 transduction. We show that the regenerative response of the utricle correlates with a more accessible chromatin structure in utricle supporting cells compared to their cochlear counterparts. We also provide evidence that Atoh1 transduction of supporting cells is able to promote increased transcriptional accessibility of some hair cell genes. Our study offers a possible explanation for regenerative differences between sensory organs of the inner ear, but shows that additional factors to Atoh1 may be required for optimal reprogramming of hair cell fate.


Subject(s)
Basic Helix-Loop-Helix Transcription Factors/genetics , Basic Helix-Loop-Helix Transcription Factors/metabolism , Epigenesis, Genetic , Gene Expression Regulation , Hair Cells, Auditory/metabolism , Regeneration/physiology , Saccule and Utricle/metabolism , Transcriptome , Animals , Cell Cycle , Cell Death , Cochlea , Female , Male , Mice , Transcription Factors , Transduction, Genetic
18.
Hear Res ; 377: 247-259, 2019 06.
Article in English | MEDLINE | ID: mdl-31003036

ABSTRACT

Brg1 is an ATPase subunit of the SWI/SNF chromatin-remodeling complex, and it is indispensable for the development and homeostasis of various organs. Conditional deletion of Brg1 in cochlea hair cells (HCs) leads to multiple structural defects and profound deafness. However, the premature death of Brg1-deficient cochlea HCs hindered further study of the role of Brg1. In contrast to cochlea HCs, Brg1-deficient vestibular HCs survived for a long time. Therefore, HC apical structure and vestibular function were examined in inner HC-specific conditional Brg1 knockout mice. Vestibular HCs exhibited fused and elongated stereocilia bundles after deletion of Brg1, and the cuticular plate was absent in most HCs with fused stereocilia bundles. HC loss was observed in conditional Brg1 knockout mice at the age of 12 months. Morphological defects and HC loss were primarily restricted in the striolar region of the utricle and saccule and in the central region of ampulla. The behavioral tests revealed that Brg1 deletion in HCs caused vestibular dysfunction in older adult mice. These results suggest that Brg1 may play specific roles in the maintenance of the HC stereocilia bundle and the cuticular plate.


Subject(s)
Gene Deletion , Hair Cells, Vestibular/enzymology , Neoplasm Proteins/deficiency , Saccule and Utricle/metabolism , Stereocilia/enzymology , Animals , Basic Helix-Loop-Helix Transcription Factors/genetics , Basic Helix-Loop-Helix Transcription Factors/metabolism , Behavior, Animal , Genotype , Hair Cells, Vestibular/pathology , Mice, Knockout , Neoplasm Proteins/genetics , Phenotype , Saccule and Utricle/abnormalities , Saccule and Utricle/physiopathology , Stereocilia/pathology
19.
Dev Biol ; 443(1): 1-9, 2018 11 01.
Article in English | MEDLINE | ID: mdl-30194919

ABSTRACT

The highly conserved transcription factor Grainyhead-like 2 (Grhl2) exhibits a dynamic expression pattern in lung epithelium throughout embryonic development. Using a conditional gene targeting approach to delete Grhl2 in the developing lung epithelium, our results demonstrate that Grhl2 plays multiple roles in lung morphogenesis that are essential for respiratory function. Loss of Grhl2 leads to impaired ciliated cell differentiation and perturbed formation of terminal saccules. Critically, a substantial increase in Sox9-positive distal tip progenitor cells was observed following loss of Grhl2, suggesting that Grhl2 plays an important role in branching morphogenesis. Gene transcription profiling of Grhl2-deficient lung epithelial cells revealed a significant down regulation of Elf5, a member of the Ets family of transcription factors. Furthermore, ChIP and comparative genomic analyzes confirmed that Elf5 is a direct transcriptional target of Grhl2. Taken together, these results support the hypothesis that Grhl2 controls normal lung morphogenesis by tightly regulating the activity of distal tip progenitor cells.


Subject(s)
Alveolar Epithelial Cells/physiology , Transcription Factors/metabolism , Transcription Factors/physiology , Alveolar Epithelial Cells/metabolism , Animals , Cell Differentiation , DNA-Binding Proteins/metabolism , Down-Regulation , Epithelium/metabolism , Gene Expression Profiling , Lung/embryology , Lung/metabolism , Lung/physiology , Mice/embryology , Respiratory Function Tests/methods , SOX9 Transcription Factor , Saccule and Utricle/metabolism
20.
Auris Nasus Larynx ; 45(3): 412-416, 2018 Jun.
Article in English | MEDLINE | ID: mdl-28781154

ABSTRACT

OBJECTIVE: We recently reported that the heat shock response played a major role in the protection of hair cells against stress. Oral administration of the heat shock inducer, geranylgeranylacetone (GGA) protected hair cells against intense noise. In our present study, we investigated the effect of GGA on vestibular hair cell death induced by an aminoglycoside. METHODS: We used CBA/N mice aged 4-6 weeks. The mice were divided into two groups, GGA and control. Mice in the GGA group were fed a diet containing GGA (0.5%) for 4 weeks, and those in the control group were fed a standard diet. Immunohistochemical analyses for Hsp70 were performed in four animals. The utricles of the remaining animals were cultured in medium for 24h with neomycin to induce hair cell death. After fixation, the vestibular hair cells were immunohistochemically stained against calmodulin, and hair cell survival was evaluated. RESULTS: The vestibular hair cells of mice in the GGA group expressed Hsp70. In addition, after exposure to neomycin, vestibular hair cell survival was higher in the GGA group than in the control group. CONCLUSION: Our results demonstrated the oral administration of GGA induced the heat shock response in the vestibule and could protect sensory cells.


Subject(s)
Anti-Bacterial Agents/toxicity , Antineoplastic Agents/pharmacology , Cell Death/drug effects , Diterpenes/pharmacology , Hair Cells, Vestibular/drug effects , Neomycin/toxicity , Administration, Oral , Animals , Calmodulin/drug effects , Calmodulin/metabolism , Cell Survival/drug effects , HSP72 Heat-Shock Proteins/drug effects , HSP72 Heat-Shock Proteins/metabolism , Hair Cells, Vestibular/metabolism , Heat-Shock Response/drug effects , Mice , Mice, Inbred CBA , Saccule and Utricle/cytology , Saccule and Utricle/metabolism
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