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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.
Res Sq ; 2024 Jan 22.
Article in English | MEDLINE | ID: mdl-38343799

ABSTRACT

Electron microscopy paired with immunogold labeling is the most precise tool for protein localization. However, these methods are either cumbersome, resulting in small sample numbers and restricted quantification, or limited to identifying protein epitopes external to the membrane. Here, we introduce SUB-immunogold-SEM, a scanning electron microscopy technique that detects intracellular protein epitopes proximal to the membrane. We identified four critical sample preparation factors that contribute to the method's sensitivity and validate its efficacy through precise localization and high-powered quantification of cytoskeletal and transmembrane proteins. We evaluated the capabilities of SUB-immunogold-SEM on cells with highly differentiated apical surfaces: (i) auditory hair cells, revealing the presence of nanoscale Myosin rings at the tip of stereocilia; and (ii) respiratory multiciliate cells, mapping the distribution of the SARS-CoV-2 receptor ACE2 along the motile cilia. SUB-immunogold-SEM provides a novel solution for nanoscale protein localization at the exposed surface of any cell.

3.
Res Sq ; 2024 Jan 02.
Article in English | MEDLINE | ID: mdl-38260480

ABSTRACT

Hearing is initiated in hair cells by the mechanical activation of ion channels in the hair bundle. The hair bundle is formed by stereocilia organized into rows of increasing heights interconnected by tip links, which convey sound-induced forces to stereocilia tips. The auditory mechanosensitive channels are complexes containing at least four protein-subunits - TMC1/2, TMIE, CIB2, and LHFPL51-16 - and are located at the tips of shorter stereocilia at a yet-undetermined distance from the lower tip link insertion point17. While multiple auditory channel subunits appear to interact with the tip link, it remains unknown whether their combined interaction alone can resist the high-frequency mechanical stimulations owing to sound. Here we show that an unanticipated additional element, LOXHD1, is indispensable for maintaining the TMC1 pore-forming channel subunits coupled to the tip link. We demonstrate that LOXHD1 is a unique element of the auditory mechanotransduction complex that selectively affects the localization of TMC1, but not its close developmental paralogue TMC2. Taking advantage of our novel immunogold scanning electron microscopy method for submembranous epitopes (SUB-immunogold-SEM), we demonstrate that TMC1 normally concentrates within 100-nm of the tip link insertion point. In LOXHD1's absence, TMC1 is instead mislocalized away from this force transmission site. Supporting this finding, we found that LOXHD1 interacts selectively in vitro with TMC1 but not with TMC2 while also binding to channel subunits CIB2 and LHFPL5 and tip-link protein PCDH15. SUB-immunogold-SEM additionally demonstrates that LOXHD1 and TMC1 are physically connected to the lower tip-link complex in situ. Our results show that the TMC1-driven mature channels require LOXHD1 to stay coupled to the tip link and remain functional, but the TMC2-driven developmental channels do not. As both tip links and TMC1 remain present in hair bundles lacking LOXHD1, it opens the possibility to reconnect them and restore hearing for this form of genetic deafness.

4.
Cell Rep ; 39(11): 110971, 2022 06 14.
Article in English | MEDLINE | ID: mdl-35705030

ABSTRACT

Ewing sarcoma (EwS) is a highly aggressive tumor of bone and soft tissues that mostly affects children and adolescents. The pathognomonic oncofusion EWSR1::FLI1 transcription factor drives EwS by orchestrating an oncogenic transcription program through de novo enhancers. By integrative analysis of thousands of transcriptomes representing pan-cancer cell lines, primary cancers, metastasis, and normal tissues, we identify a 32-gene signature (ESS32 [Ewing Sarcoma Specific 32]) that stratifies EwS from pan-cancer. Among the ESS32, LOXHD1, encoding a stereociliary protein, is the most highly expressed gene through an alternative transcription start site. Deletion or silencing of EWSR1::FLI1 bound upstream de novo enhancer results in loss of the LOXHD1 short isoform, altering EWSR1::FLI1 and HIF1α pathway genes and resulting in decreased proliferation/invasion of EwS cells. These observations implicate LOXHD1 as a biomarker and a determinant of EwS metastasis and suggest new avenues for developing LOXHD1-targeted drugs or cellular therapies for this deadly disease.


Subject(s)
Carrier Proteins , Enhancer Elements, Genetic , Oncogene Proteins, Fusion , Sarcoma, Ewing , Adolescent , Carrier Proteins/genetics , Cell Line, Tumor , Child , Gene Expression Regulation, Neoplastic , Humans , Oncogene Proteins, Fusion/genetics , Oncogene Proteins, Fusion/metabolism , Proteins/metabolism , Proto-Oncogene Protein c-fli-1/genetics , Proto-Oncogene Protein c-fli-1/metabolism , RNA-Binding Protein EWS/genetics , RNA-Binding Protein EWS/metabolism , Sarcoma, Ewing/genetics , Sarcoma, Ewing/pathology
5.
STAR Protoc ; 3(2): 101431, 2022 06 17.
Article in English | MEDLINE | ID: mdl-35669049

ABSTRACT

High-resolution immunofluorescence imaging of cochlear hair bundles faces many challenges due to the hair bundle's small dimensions, fragile nature, and complex organization. Here, we describe an optimized protocol for hair-bundle protein immunostaining and localization. We detail the steps and solutions for extracting and fixing the mouse inner ear and for dissecting the organ of Corti. We further emphasize the optimal permeabilization, blocking, staining, and mounting conditions as well as the parameters for high-resolution microscopy imaging. For complete details on the use and execution of this protocol, please refer to Trouillet et al. (2021).


Subject(s)
Cochlea , Hair , Animals , Cochlea/diagnostic imaging , Fluorescent Antibody Technique , Mice , Staining and Labeling
6.
STAR Protoc ; 3(1): 101213, 2022 03 18.
Article in English | MEDLINE | ID: mdl-35257116

ABSTRACT

Scanning electron microscopy (SEM) allows cell surface imaging at a sub-nanometric resolution. However, the sample requires a specific preparation to sustain the high vacuum of the SEM and be electrically conductive. The sample preparation consists of dissection, fixation, dehydration, metal coating, and tissue mounting. Here we provide a comprehensive protocol to perform SEM on the mouse's inner ear, and image the hair bundles at high resolution. Hair bundles are the force-sensitive organelles located at the apical surface of hair cells. For complete details on the use and execution of this protocol, please refer to Trouillet et al. (2021).


Subject(s)
Ear, Inner , Hair Cells, Auditory , Animals , Hair/diagnostic imaging , Mechanical Phenomena , Mice , Microscopy, Electron, Scanning
7.
Otol Neurotol ; 43(4): e507-e514, 2022 04 01.
Article in English | MEDLINE | ID: mdl-35120078

ABSTRACT

OBJECTIVE: To identify optimal conditions for recovering viable inner ear tissues from deceased organ donors. SETTING: Tertiary recovery hospitals and Donor Network West Organ Recovery Center. INTERVENTIONS: Recovering bilateral inner ear tissues and immunohistological analysis. MAIN OUTCOME MEASURES: Immunohistochemical analysis of utricles from human organ donors after brain death (DBD) or donors after cardiac death (DCD). RESULTS: Vestibular tissues from 21 organ donors (39 ears) were recovered. Of these, 18 donors (33 utricles) were examined by immunofluorescence. The sensory epithelium was present in seven utricles (two from DBD and five from DCD). Relative to DBD utricles, DCD organs more commonly displayed dense populations of hair cells and supporting cells. Relative to DBD, DCD had significantly shorter postmortem interval time to tissue recovery (<48 h). Compared to donors with no sensory epithelium, donors with intact and viable sensory epithelium (both DCD and DBD) had significantly shorter lag time to resuscitation prior to hospital admission (6.4 ±â€Š9.2 vs 35.6 ±â€Š23.7 min, respectively) as well as a shorter time between pronouncements of death to organ recovery (22.6 ±â€Š30.4 vs 64.8 ±â€Š22.8 h, respectively). CONCLUSIONS: Organ donors are a novel resource for bilateral inner ear organs. Selecting tissue donors within defined parameters can optimize the quality of recovered inner ear tissues, thereby facilitating future research investigating sensory and nonsensory cells.


Subject(s)
Ear, Inner , Tissue and Organ Procurement , Brain Death , Humans , Patient Selection , Retrospective Studies , Tissue Donors
8.
Front Cell Dev Biol ; 9: 742529, 2021.
Article in English | MEDLINE | ID: mdl-34900993

ABSTRACT

The hair bundle is the mechanosensory organelle of hair cells that detects mechanical stimuli caused by sounds, head motions, and fluid flows. Each hair bundle is an assembly of cellular-protrusions called stereocilia, which differ in height to form a staircase. Stereocilia have different heights, widths, and separations in different species, sensory organs, positions within an organ, hair-cell types, and even within a single hair bundle. The dimensions of the stereociliary assembly dictate how the hair bundle responds to stimuli. These hair-bundle properties have been measured previously only to a limited degree. In particular, mammalian data are either incomplete, lack control for age or position within an organ, or have artifacts owing to fixation or dehydration. Here, we provide a complete set of measurements for postnatal day (P) 11 C57BL/6J mouse apical inner hair cells (IHCs) obtained from living tissue, tissue mildly-fixed for fluorescent imaging, or tissue strongly fixed and dehydrated for scanning electronic microscopy (SEM). We found that hair bundles mildly-fixed for fluorescence had the same dimensions as living hair bundles, whereas SEM-prepared hair bundles shrank uniformly in stereociliary heights, widths, and separations. By determining the shrinkage factors, we imputed live dimensions from SEM that were too small to observe optically. Accordingly, we created the first complete blueprint of a living IHC hair bundle. We show that SEM-prepared measurements strongly affect calculations of a bundle's mechanical properties - overestimating stereociliary deflection stiffness and underestimating the fluid coupling between stereocilia. The methods of measurement, the data, and the consequences we describe illustrate the high levels of accuracy and precision required to understand hair-bundle mechanotransduction.

9.
J Neurosci ; 41(15): 3331-3343, 2021 04 14.
Article in English | MEDLINE | ID: mdl-33707295

ABSTRACT

Sound detection happens in the inner ear via the mechanical deflection of the hair bundle of cochlear hair cells. The hair bundle is an apical specialization consisting of actin-filled membrane protrusions (called stereocilia) connected by tip links (TLs) that transfer the deflection force to gate the mechanotransduction channels. Here, we identified the hearing loss-associated Loxhd1/DFNB77 gene as being required for the mechanotransduction process. LOXHD1 consists of 15 polycystin lipoxygenase α-toxin (PLAT) repeats, which in other proteins can bind lipids and proteins. LOXHD1 was distributed along the length of the stereocilia. Two LOXHD1 mouse models with mutations in the 10th PLAT repeat exhibited mechanotransduction defects (in both sexes). While mechanotransduction currents in mutant inner hair cells (IHCs) were similar to wild-type levels in the first postnatal week, they were severely affected by postnatal day 11. The onset of the mechanotransduction phenotype was consistent with the temporal progression of postnatal LOXHD1 expression/localization in the hair bundle. The mechanotransduction defect observed in Loxhd1-mutant IHCs was not accompanied by a morphologic defect of the hair bundle or a reduction in TL number. Using immunolocalization, we found that two proteins of the upper and lower TL protein complexes (Harmonin and LHFPL5) were maintained in the mutants, suggesting that the mechanotransduction machinery was present but not activatable. This work identified a novel LOXHD1-dependent step in hair bundle development that is critical for mechanotransduction in mature hair cells as well as for normal hearing function in mice and humans.SIGNIFICANCE STATEMENT Hair cells detect sound-induced forces via the hair bundle, which consists of membrane protrusions connected by tip links. The mechanotransduction machinery forms protein complexes at the tip-link ends. The current study showed that LOXHD1, a multirepeat protein responsible for hearing loss in humans and mice when mutated, was required for hair-cell mechanotransduction, but only after the first postnatal week. Using immunochemistry, we demonstrated that this defect was not caused by the mislocalization of the tip-link complex proteins Harmonin or LHFPL5, suggesting that the mechanotransduction protein complexes were maintained. This work identified a new step in hair bundle development, which is critical for both hair-cell mechanotransduction and hearing.


Subject(s)
Carrier Proteins/metabolism , Hair Cells, Auditory/metabolism , Mechanotransduction, Cellular , Animals , Carrier Proteins/genetics , Female , Hair Cells, Auditory/cytology , Hair Cells, Auditory/physiology , Male , Mice , Mutation , Neurogenesis
10.
Development ; 147(19)2020 10 05.
Article in English | MEDLINE | ID: mdl-32907846

ABSTRACT

Planar cell polarity (PCP) proteins localize asymmetrically to instruct cell polarity within the tissue plane, with defects leading to deformities of the limbs, neural tube and inner ear. Wnt proteins are evolutionarily conserved polarity cues, yet Wnt mutants display variable PCP defects; thus, how Wnts regulate PCP remains unresolved. Here, we have used the developing cochlea as a model system to show that secreted Wnts regulate PCP through polarizing a specific subset of PCP proteins. Conditional deletion of Wntless or porcupine, both of which are essential for secretion of Wnts, caused misrotated sensory cells and shortened cochlea - both hallmarks of PCP defects. Wntless-deficient cochleae lacked the polarized PCP components dishevelled 1/2 and frizzled 3/6, while other PCP proteins (Vangl1/2, Celsr1 and dishevelled 3) remained localized. We identified seven Wnt paralogues, including the major PCP regulator Wnt5a, which was, surprisingly, dispensable for planar polarization in the cochlea. Finally, Vangl2 haploinsufficiency markedly accentuated sensory cell polarization defects in Wntless-deficient cochlea. Together, our study indicates that secreted Wnts and Vangl2 coordinate to ensure proper tissue polarization during development.


Subject(s)
Cochlea/embryology , Cochlea/metabolism , Nerve Tissue Proteins/metabolism , Wnt Proteins/metabolism , Animals , Dishevelled Proteins/genetics , Dishevelled Proteins/metabolism , Frizzled Receptors/genetics , Frizzled Receptors/metabolism , Genotype , Immunohistochemistry , In Situ Hybridization , Mice , Microscopy, Electron, Scanning , Nerve Tissue Proteins/genetics , Polymerase Chain Reaction , Receptors, G-Protein-Coupled/genetics , Receptors, G-Protein-Coupled/metabolism , Wnt Proteins/genetics
11.
Hum Mol Genet ; 29(9): 1520-1536, 2020 06 03.
Article in English | MEDLINE | ID: mdl-32337552

ABSTRACT

Here we define a ~200 Kb genomic duplication in 2p14 as the genetic signature that segregates with postlingual progressive sensorineural autosomal dominant hearing loss (HL) in 20 affected individuals from the DFNA58 family, first reported in 2009. The duplication includes two entire genes, PLEK and CNRIP1, and the first exon of PPP3R1 (protein coding), in addition to four uncharacterized long non-coding (lnc) RNA genes and part of a novel protein-coding gene. Quantitative analysis of mRNA expression in blood samples revealed selective overexpression of CNRIP1 and of two lncRNA genes (LOC107985892 and LOC102724389) in all affected members tested, but not in unaffected ones. Qualitative analysis of mRNA expression identified also fusion transcripts involving parts of PPP3R1, CNRIP1 and an intergenic region between PLEK and CNRIP1, in the blood of all carriers of the duplication, but were heterogeneous in nature. By in situ hybridization and immunofluorescence, we showed that Cnrip1, Plek and Ppp3r1 genes are all expressed in the adult mouse cochlea including the spiral ganglion neurons, suggesting changes in expression levels of these genes in the hearing organ could underlie the DFNA58 form of deafness. Our study highlights the value of studying rare genomic events leading to HL, such as copy number variations. Further studies will be required to determine which of these genes, either coding proteins or non-coding RNAs, is or are responsible for DFNA58 HL.


Subject(s)
Blood Proteins/genetics , Calcineurin/genetics , Hearing Loss, Sensorineural/genetics , Membrane Proteins/genetics , Phosphoproteins/genetics , Adolescent , Adult , Animals , Calcineurin/blood , Child , Chromosome Duplication/genetics , Chromosomes, Human, Pair 2/genetics , DNA Copy Number Variations/genetics , Disease Models, Animal , Female , Gene Expression Regulation/genetics , Genetic Predisposition to Disease , Genome, Human/genetics , Hearing Loss, Sensorineural/blood , Hearing Loss, Sensorineural/pathology , Heterozygote , Humans , Male , Membrane Proteins/blood , Mice , Middle Aged , Neurons/metabolism , Neurons/pathology , Phosphoproteins/blood , RNA, Messenger/blood , Spiral Ganglion/metabolism , Spiral Ganglion/pathology , Young Adult
12.
Proc Natl Acad Sci U S A ; 115(21): E4853-E4860, 2018 05 22.
Article in English | MEDLINE | ID: mdl-29735658

ABSTRACT

Traumatic noise causes hearing loss by damaging sensory hair cells and their auditory synapses. There are no treatments. Here, we investigated mice exposed to a blast wave approximating a roadside bomb. In vivo cochlear imaging revealed an increase in the volume of endolymph, the fluid within scala media, termed endolymphatic hydrops. Endolymphatic hydrops, hair cell loss, and cochlear synaptopathy were initiated by trauma to the mechanosensitive hair cell stereocilia and were K+-dependent. Increasing the osmolality of the adjacent perilymph treated endolymphatic hydrops and prevented synaptopathy, but did not prevent hair cell loss. Conversely, inducing endolymphatic hydrops in control mice by lowering perilymph osmolality caused cochlear synaptopathy that was glutamate-dependent, but did not cause hair cell loss. Thus, endolymphatic hydrops is a surrogate marker for synaptic bouton swelling after hair cells release excitotoxic levels of glutamate. Because osmotic stabilization prevents neural damage, it is a potential treatment to reduce hearing loss after noise exposure.


Subject(s)
Cochlea/physiopathology , Cochlear Diseases/prevention & control , Endolymphatic Hydrops/physiopathology , Hair Cells, Auditory/pathology , Hearing Loss, Noise-Induced/prevention & control , Noise/adverse effects , Osmosis , Animals , Auditory Threshold , Cochlear Diseases/physiopathology , Hearing Loss, Noise-Induced/physiopathology , Mice
13.
Nat Neurosci ; 20(1): 24-33, 2017 01.
Article in English | MEDLINE | ID: mdl-27893727

ABSTRACT

Auditory hair cells contain mechanotransduction channels that rapidly open in response to sound-induced vibrations. We report here that auditory hair cells contain two molecularly distinct mechanotransduction channels. One ion channel is activated by sound and is responsible for sensory transduction. This sensory transduction channel is expressed in hair cell stereocilia, and previous studies show that its activity is affected by mutations in the genes encoding the transmembrane proteins TMHS, TMIE, TMC1 and TMC2. We show here that the second ion channel is expressed at the apical surface of hair cells and that it contains the Piezo2 protein. The activity of the Piezo2-dependent channel is controlled by the intracellular Ca2+ concentration and can be recorded following disruption of the sensory transduction machinery or more generally by disruption of the sensory epithelium. We thus conclude that hair cells express two molecularly and functionally distinct mechanotransduction channels with different subcellular distributions.


Subject(s)
Calcium/metabolism , Hair Cells, Auditory/cytology , Mechanotransduction, Cellular/physiology , Stereocilia/metabolism , Animals , Hair/metabolism , Mechanotransduction, Cellular/genetics , Membrane Proteins/metabolism , Mice, Knockout , Mutation/genetics , Stereocilia/genetics
14.
J Neurosci ; 36(35): 9201-16, 2016 08 31.
Article in English | MEDLINE | ID: mdl-27581460

ABSTRACT

UNLABELLED: Neuroplastin (Nptn) is a member of the Ig superfamily and is expressed in two isoforms, Np55 and Np65. Np65 regulates synaptic transmission but the function of Np55 is unknown. In an N-ethyl-N-nitrosaurea mutagenesis screen, we have now generated a mouse line with an Nptn mutation that causes deafness. We show that Np55 is expressed in stereocilia of outer hair cells (OHCs) but not inner hair cells and affects interactions of stereocilia with the tectorial membrane. In vivo vibrometry demonstrates that cochlear amplification is absent in Nptn mutant mice, which is consistent with the failure of OHC stereocilia to maintain stable interactions with the tectorial membrane. Hair bundles show morphological defects as the mutant mice age and while mechanotransduction currents can be evoked in early postnatal hair cells, cochlea microphonics recordings indicate that mechanontransduction is affected as the mutant mice age. We thus conclude that differential splicing leads to functional diversification of Nptn, where Np55 is essential for OHC function, while Np65 is implicated in the regulation of synaptic function. SIGNIFICANCE STATEMENT: Amplification of input sound signals, which is needed for the auditory sense organ to detect sounds over a wide intensity range, depends on mechanical coupling of outer hair cells to the tectorial membrane. The current study shows that neuroplastin, a member of the Ig superfamily, which has previously been linked to the regulation of synaptic plasticity, is critical to maintain a stable mechanical link of outer hair cells with the tectorial membrane. In vivo recordings demonstrate that neuroplastin is essential for sound amplification and that mutation in neuroplastin leads to auditory impairment in mice.


Subject(s)
Hair Cells, Auditory, Outer/cytology , Mechanotransduction, Cellular/physiology , Membrane Glycoproteins/metabolism , Stereocilia/physiology , Acoustic Stimulation , Animals , Animals, Newborn , DNA Mutational Analysis , Deafness/genetics , Deafness/pathology , Evoked Potentials, Auditory, Brain Stem/genetics , Evoked Potentials, Auditory, Brain Stem/physiology , Gene Expression Regulation, Developmental/genetics , Hair Cells, Auditory, Inner/metabolism , Membrane Glycoproteins/genetics , Mice , Mice, Inbred C57BL , Mice, Knockout , Microscopy, Electron, Scanning , Mutation/genetics , Otoacoustic Emissions, Spontaneous/genetics , Patch-Clamp Techniques , Physical Stimulation , Protein Isoforms/genetics , Protein Isoforms/metabolism , Protein Transport/genetics , RNA, Messenger/metabolism , Stereocilia/ultrastructure , Tomography, Optical Coherence , Transduction, Genetic
15.
J Neurosci ; 36(31): 8160-73, 2016 08 03.
Article in English | MEDLINE | ID: mdl-27488636

ABSTRACT

UNLABELLED: The exquisite sensitivity and frequency discrimination of mammalian hearing underlie the ability to understand complex speech in noise. This requires force generation by cochlear outer hair cells (OHCs) to amplify the basilar membrane traveling wave; however, it is unclear how amplification is achieved with sharp frequency tuning. Here we investigated the origin of tuning by measuring sound-induced 2-D vibrations within the mouse organ of Corti in vivo Our goal was to determine the transfer function relating the radial shear between the structures that deflect the OHC bundle, the tectorial membrane and reticular lamina, to the transverse motion of the basilar membrane. We found that, after normalizing their responses to the vibration of the basilar membrane, the radial vibrations of the tectorial membrane and reticular lamina were tuned. The radial tuning peaked at a higher frequency than transverse basilar membrane tuning in the passive, postmortem condition. The radial tuning was similar in dead mice, indicating that this reflected passive, not active, mechanics. These findings were exaggerated in Tecta(C1509G/C1509G) mice, where the tectorial membrane is detached from OHC stereocilia, arguing that the tuning of radial vibrations within the hair cell epithelium is distinct from tectorial membrane tuning. Together, these results reveal a passive, frequency-dependent contribution to cochlear filtering that is independent of basilar membrane filtering. These data argue that passive mechanics within the organ of Corti sharpen frequency selectivity by defining which OHCs enhance the vibration of the basilar membrane, thereby tuning the gain of cochlear amplification. SIGNIFICANCE STATEMENT: Outer hair cells amplify the traveling wave within the mammalian cochlea. The resultant gain and frequency sharpening are necessary for speech discrimination, particularly in the presence of background noise. Here we measured the 2-D motion of the organ of Corti in mice and found that the structures that stimulate the outer hair cell stereocilia, the tectorial membrane and reticular lamina, were sharply tuned in the radial direction. Radial tuning was similar in dead mice and in mice lacking a tectorial membrane. This suggests that radial tuning comes from passive mechanics within the hair cell epithelium, and that these mechanics, at least in part, may tune the gain of cochlear amplification.


Subject(s)
Acoustic Stimulation/methods , Mechanotransduction, Cellular/physiology , Models, Neurological , Organ of Corti/physiology , Pitch Perception/physiology , Tectorial Membrane/physiology , Animals , Computer Simulation , Female , Male , Mice , Mice, Inbred C57BL , Pressure , Shear Strength/physiology , Vibration
16.
Neuron ; 84(5): 954-67, 2014 Dec 03.
Article in English | MEDLINE | ID: mdl-25467981

ABSTRACT

Hair cells are the mechanosensory cells of the inner ear. Mechanotransduction channels in hair cells are gated by tip links. The molecules that connect tip links to transduction channels are not known. Here we show that the transmembrane protein TMIE forms a ternary complex with the tip-link component PCDH15 and its binding partner TMHS/LHFPL5. Alternative splicing of the PCDH15 cytoplasmic domain regulates formation of this ternary complex. Transducer currents are abolished by a homozygous Tmie-null mutation, and subtle Tmie mutations that disrupt interactions between TMIE and tip links affect transduction, suggesting that TMIE is an essential component of the hair cell's mechanotransduction machinery that functionally couples the tip link to the transduction channel. The multisubunit composition of the transduction complex and the regulation of complex assembly by alternative splicing is likely critical for regulating channel properties in different hair cells and along the cochlea's tonotopic axis.


Subject(s)
Cadherins/metabolism , Hair Cells, Auditory/physiology , Mechanotransduction, Cellular/genetics , Membrane Proteins/metabolism , Protein Precursors/metabolism , Animals , Animals, Newborn , Cadherin Related Proteins , Cadherins/genetics , Gene Expression Regulation, Developmental/genetics , HEK293 Cells , Hair Cells, Auditory/drug effects , Hair Cells, Auditory/ultrastructure , Humans , Mechanotransduction, Cellular/drug effects , Membrane Potentials/genetics , Membrane Proteins/genetics , Mice , Mice, Transgenic , Models, Molecular , Molecular Motor Proteins/genetics , Organ Culture Techniques , Point Mutation/genetics , Protein Binding/drug effects , Protein Binding/physiology , Protein Precursors/genetics , Tamoxifen/analogs & derivatives , Tamoxifen/pharmacology
17.
Nat Protoc ; 9(10): 2438-49, 2014 Oct.
Article in English | MEDLINE | ID: mdl-25232939

ABSTRACT

Mechanosensation, the transduction of mechanical force into electrochemical signals, allows organisms to detect touch and sound, to register movement and gravity, and to sense changes in cell volume and shape. The hair cells of the mammalian inner ear are the mechanosensors for the detection of sound and head movement. The analysis of gene function in hair cells has been hampered by the lack of an efficient gene transfer method. Here we describe a method termed injectoporation that combines tissue microinjection with electroporation to express cDNAs and shRNAs in mouse cochlear hair cells. Injectoporation allows for gene transfer into dozens of hair cells, and it is compatible with the analysis of hair cell function using imaging approaches and electrophysiology. Tissue dissection and injectoporation can be carried out within a few hours, and the tissue can be cultured for days for subsequent functional analyses.


Subject(s)
Electroporation/methods , Gene Transfer Techniques , Hair Cells, Auditory/physiology , Animals , Calcium/analysis , Calcium/metabolism , Dissection/methods , Electrophysiology/methods , Electroporation/instrumentation , Gene Transfer Techniques/instrumentation , Image Processing, Computer-Assisted , Mice, Inbred C57BL , Microinjections/instrumentation , Microinjections/methods , Microscopy, Electron, Scanning , Patch-Clamp Techniques
18.
Eur J Neurosci ; 39(8): 1256-67, 2014 Apr.
Article in English | MEDLINE | ID: mdl-24460873

ABSTRACT

Thrombospondins (TSPs) constitute a family of secreted extracellular matrix proteins that have been shown to be involved in the formation of synapses in the central nervous system. In this study, we show that TSP1 and TSP2 are expressed in the cochlea, and offer the first description of their putative roles in afferent synapse development and function in the inner ear. We examined mice with deletions of TSP1, TSP2 and both (TSP1/TSP2) for inner ear development and function. Immunostaining for synaptic markers indicated a significant decrease in the number of formed afferent synapses in the cochleae of TSP2 and TSP1/TSP2 knockout (KO) mice at postnatal day (P)29. In functional studies, TSP2 and TSP1/TSP2 KO mice showed elevated auditory brainstem response (ABR) thresholds as compared with wild-type littermates, starting at P15, with the most severe phenotype being seen for TSP1/TSP2 KO mice. TSP1/TSP2 KO mice also showed reduced wave I amplitudes of ABRs and vestibular evoked potentials, suggesting synaptic dysfunction in both the auditory and vestibular systems. Whereas ABR thresholds in TSP1 KO mice were relatively unaffected at early ages, TSP1/TSP2 KO mice showed the most severe phenotype among all of the genotypes tested, suggesting functional redundancy between the two genes. On the basis of the above results, we propose that TSPs play an important role in afferent synapse development and function of the inner ear.


Subject(s)
Ear, Inner/physiology , Evoked Potentials, Auditory , Neurons, Afferent/metabolism , Synapses/metabolism , Thrombospondin 1/metabolism , Thrombospondins/metabolism , Animals , Auditory Pathways/growth & development , Auditory Pathways/metabolism , Auditory Pathways/physiology , Ear, Inner/cytology , Ear, Inner/growth & development , Ear, Inner/metabolism , Gene Deletion , Mice , Neurons, Afferent/physiology , Sensory Thresholds , Synapses/physiology , Thrombospondin 1/genetics , Thrombospondins/genetics
19.
Cell ; 151(6): 1283-95, 2012 Dec 07.
Article in English | MEDLINE | ID: mdl-23217710

ABSTRACT

Hair cells are mechanosensors for the perception of sound, acceleration, and fluid motion. Mechanotransduction channels in hair cells are gated by tip links, which connect the stereocilia of a hair cell in the direction of their mechanical sensitivity. The molecular constituents of the mechanotransduction channels of hair cells are not known. Here, we show that mechanotransduction is impaired in mice lacking the tetraspan TMHS. TMHS binds to the tip-link component PCDH15 and regulates tip-link assembly, a process that is disrupted by deafness-causing Tmhs mutations. TMHS also regulates transducer channel conductance and is required for fast channel adaptation. TMHS therefore resembles other ion channel regulatory subunits such as the transmembrane alpha-amino-3-hydroxy-5-methyl-4-isoxazole propionic acid (AMPA) receptor regulatory proteins (TARPs) of AMPA receptors that facilitate channel transport and regulate the properties of pore-forming channel subunits. We conclude that TMHS is an integral component of the hair cell's mechanotransduction machinery that functionally couples PCDH15 to the transduction channel.


Subject(s)
Hair Cells, Auditory/metabolism , Hearing , Mechanotransduction, Cellular , Membrane Proteins/metabolism , Animals , Cadherin Related Proteins , Cadherins/metabolism , Membrane Proteins/genetics , Membrane Proteins/ultrastructure , Mice , Mice, Knockout , Protein Precursors/metabolism , Stereocilia/metabolism
20.
Development ; 138(8): 1607-17, 2011 Apr.
Article in English | MEDLINE | ID: mdl-21427143

ABSTRACT

Protocadherin 15 (PCDH15) is expressed in hair cells of the inner ear and in photoreceptors of the retina. Mutations in PCDH15 cause Usher Syndrome (deaf-blindness) and recessive deafness. In developing hair cells, PCDH15 localizes to extracellular linkages that connect the stereocilia and kinocilium into a bundle and regulate its morphogenesis. In mature hair cells, PCDH15 is a component of tip links, which gate mechanotransduction channels. PCDH15 is expressed in several isoforms differing in their cytoplasmic domains, suggesting that alternative splicing regulates PCDH15 function in hair cells. To test this model, we generated three mouse lines, each of which lacks one out of three prominent PCDH15 isoforms (CD1, CD2 and CD3). Surprisingly, mice lacking PCDH15-CD1 and PCDH15-CD3 form normal hair bundles and tip links and maintain hearing function. Tip links are also present in mice lacking PCDH15-CD2. However, PCDH15-CD2-deficient mice are deaf, lack kinociliary links and have abnormally polarized hair bundles. Planar cell polarity (PCP) proteins are distributed normally in the sensory epithelia of the mutants, suggesting that PCDH15-CD2 acts downstream of PCP components to control polarity. Despite the absence of kinociliary links, vestibular function is surprisingly intact in the PCDH15-CD2 mutants. Our findings reveal an essential role for PCDH15-CD2 in the formation of kinociliary links and hair bundle polarization, and show that several PCDH15 isoforms can function redundantly at tip links.


Subject(s)
Alternative Splicing/physiology , Cadherins/metabolism , Hair Cells, Auditory/metabolism , Protein Precursors/metabolism , Alternative Splicing/genetics , Animals , Cadherin Related Proteins , Cadherins/genetics , Cochlea/cytology , Cochlea/metabolism , Cochlea/ultrastructure , Hair Cells, Auditory/ultrastructure , Immunohistochemistry , In Situ Hybridization , Mechanotransduction, Cellular/genetics , Mechanotransduction, Cellular/physiology , Mice , Mice, Knockout , Microscopy, Electron , Protein Binding , Protein Precursors/genetics , Reverse Transcriptase Polymerase Chain Reaction
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