Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 143
Filter
Add more filters

Publication year range
1.
Cell ; 174(3): 536-548.e21, 2018 07 26.
Article in English | MEDLINE | ID: mdl-29961578

ABSTRACT

The DNA-binding protein REST forms complexes withĀ histone deacetylases (HDACs) to repress neuronal genes in non-neuronal cells. In differentiating neurons, REST is downregulated predominantly by transcriptional silencing. Here we report that post-transcriptional inactivation of REST by alternative splicing is required for hearing in humans and mice. We show that, in the mechanosensory hair cells of the mouse ear, regulated alternative splicing of a frameshift-causing exon into the Rest mRNA is essential for the derepression of many neuronal genes. Heterozygous deletion of this alternative exon of mouse Rest causes hair cell degeneration and deafness, and the HDAC inhibitor SAHA (Vorinostat) rescues the hearing of these mice. In humans, inhibition of the frameshifting splicing event by a novel REST variant is associated with dominantly inherited deafness. Our data reveal the necessity for alternative splicing-dependent regulation of REST inĀ hair cells, and they identify a potential treatment for a group of hereditary deafness cases.


Subject(s)
Deafness/genetics , Repressor Proteins/genetics , Repressor Proteins/metabolism , Alternative Splicing/genetics , Animals , Cell Line , Exons , Gene Expression Regulation/genetics , HEK293 Cells , Hair Cells, Auditory/physiology , Hearing/genetics , Hearing/physiology , Histone Deacetylase Inhibitors/metabolism , Histone Deacetylases/metabolism , Humans , Mice , Mice, Inbred C57BL , Neurons , RNA Splicing/genetics , Repressor Proteins/physiology , Transcription Factors , Vorinostat/pharmacology
2.
J Biol Chem ; 300(9): 107725, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39214300

ABSTRACT

Mutations of human TBC1D24 are associated with deafness, epilepsy, or DOORS syndrome (deafness, onychodystrophy, osteodystrophy, cognitive disability, and seizures). The causal relationships between TBC1D24 variants and the different clinical phenotypes are not understood. Our hypothesis is that phenotypic heterogeneity of missense mutations of TBC1D24 results, in part, from perturbed binding of different protein partners. To discover novel protein partners of TBC1D24, we conducted yeast two-hybrid (Y2H) screen using mouse full-length TBC1D24 as bait. Kidney and brain protein (KIBRA), a scaffold protein encoded by Wwc1, was identified as a partner of TBC1D24. KIBRA functions in the Hippo signaling pathway and is important for human cognition and memory. The TBC1D24 TLDc domain binds to KIBRA full-length and to its C2 domain, confirmed by Y2H assays. No interaction was detected with Y2H assays between the KIBRA C2 domain and TLDc domains of NCOA7, MEAK7, and OXR1. Moreover, the C2 domains of other WWC family proteins do not interact with the TLDc domain of TBC1D24, demonstrating specificity. The mRNAs encoding TBC1D24 and KIBRA proteins in mouse are coexpressed at least in a subset of hippocampal cells indicating availability to interact inĀ vivo. As two epilepsy-associated recessive variants (Gly511Arg and Ala515Val) in the TLDc domain of human TBC1D24 disrupt the interaction with the human KIBRA C2 domain, this study reveals a pathogenic mechanism of TBC1D24-associated epilepsy, linking the TBC1D24 and KIBRA pathways. The interaction of TBC1D24-KIBRA is physiologically meaningful and necessary to reduce the risk of epilepsy.


Subject(s)
Epilepsy , GTPase-Activating Proteins , Intracellular Signaling Peptides and Proteins , Mutation, Missense , Animals , GTPase-Activating Proteins/genetics , GTPase-Activating Proteins/metabolism , Mice , Humans , Epilepsy/genetics , Epilepsy/metabolism , Intracellular Signaling Peptides and Proteins/metabolism , Intracellular Signaling Peptides and Proteins/genetics , Protein Domains , HEK293 Cells , Protein Binding , Hand Deformities, Congenital/genetics , Hand Deformities, Congenital/metabolism , Two-Hybrid System Techniques , Hearing Loss, Sensorineural , Intellectual Disability , Nails, Malformed , Craniofacial Abnormalities
3.
Cell ; 141(5): 786-98, 2010 May 28.
Article in English | MEDLINE | ID: mdl-20510926

ABSTRACT

Inner ear hair cells detect sound through deflection of mechanosensory stereocilia. Each stereocilium is supported by a paracrystalline array of parallel actin filaments that are packed more densely at the base, forming a rootlet extending into the cell body. The function of rootlets and the molecules responsible for their formation are unknown. We found that TRIOBP, a cytoskeleton-associated protein mutated in human hereditary deafness DFNB28, is localized to rootlets. In vitro, purified TRIOBP isoform 4 protein organizes actin filaments into uniquely dense bundles reminiscent of rootlets but distinct from bundles formed by espin, an actin crosslinker in stereocilia. We generated mutant Triobp mice (Triobp(Deltaex8/Deltaex8)) that are profoundly deaf. Stereocilia of Triobp(Deltaex8/Deltaex8) mice develop normally but fail to form rootlets and are easier to deflect and damage. Thus, F-actin bundling by TRIOBP provides durability and rigidity for normal mechanosensitivity of stereocilia and may contribute to resilient cytoskeletal structures elsewhere.


Subject(s)
Actin Cytoskeleton/metabolism , Deafness/metabolism , Hair Cells, Auditory, Inner/metabolism , Microfilament Proteins/metabolism , Animals , Hair Cells, Auditory, Inner/cytology , Humans , Mechanotransduction, Cellular , Mice , Mice, Knockout , Microfilament Proteins/genetics , Molecular Sequence Data
4.
Proc Natl Acad Sci U S A ; 119(26): e2115190119, 2022 06 28.
Article in English | MEDLINE | ID: mdl-35737845

ABSTRACT

Hearing depends on intricate morphologies and mechanical properties of diverse inner ear cell types. The individual contributions of various inner ear cell types into mechanical properties of the organ of Corti and the mechanisms of their integration are yet largely unknown. Using sub-100-nm spatial resolution atomic force microscopy (AFM), we mapped the Young's modulus (stiffness) of the apical surface of the different cells of the freshly dissected P5-P6 cochlear epithelium from wild-type and mice lacking either Trio and F-actin binding protein (TRIOBP) isoforms 4 and 5 or isoform 5 only. Variants of TRIOBP are associated with deafness in human and in Triobp mutant mouse models. Remarkably, nanoscale AFM mapping revealed unrecognized bidirectional radial stiffness gradients of different magnitudes and opposite orientations between rows of wild-type supporting cells and sensory hair cells. Moreover, the observed bidirectional radial stiffness gradients are unbalanced, with sensory cells being stiffer overall compared to neighboring supporting cells. Deafness-associated TRIOBP deficiencies significantly disrupted the magnitude and orientation of these bidirectional radial stiffness gradients. In addition, serial sectioning with focused ion beam and backscatter scanning electron microscopy shows that a TRIOBP deficiency results in ultrastructural changes of supporting cell apical phalangeal microfilaments and bundled cortical F-actin of hair cell cuticular plates, correlating with messenger RNA and protein expression levels and AFM stiffness measurements that exposed a softening of the apical surface of the sensory epithelium in mutant mice. Altogether, this additional complexity in the mechanical properties of the sensory epithelium is hypothesized to be an essential contributor to frequency selectivity and sensitivity of mammalian hearing.


Subject(s)
Actin Cytoskeleton , Deafness , Actin Cytoskeleton/metabolism , Actins/metabolism , Animals , Cochlea/metabolism , Deafness/metabolism , Hair Cells, Auditory/metabolism , Mammals/metabolism , Mice , Microfilament Proteins/metabolism , Organ of Corti , Protein Isoforms/metabolism
5.
Am J Hum Genet ; 108(11): 2195-2204, 2021 11 04.
Article in English | MEDLINE | ID: mdl-34715011

ABSTRACT

Human mitochondrial RNase P (mt-RNase P) is responsible for 5' end processing of mitochondrial precursor tRNAs, a vital step in mitochondrial RNA maturation, and is comprised of three protein subunits: TRMT10C, SDR5C1 (HSD10), and PRORP. Pathogenic variants in TRMT10C and SDR5C1 are associated with distinct recessive or x-linked infantile onset disorders, resulting from defects in mitochondrial RNA processing. We report four unrelated families with multisystem disease associated with bi-allelic variants in PRORP, the metallonuclease subunit of mt-RNase P. Affected individuals presented with variable phenotypes comprising sensorineural hearing loss, primary ovarian insufficiency, developmental delay, and brain white matter changes. Fibroblasts from affected individuals in two families demonstrated decreased steady state levels of PRORP, an accumulation of unprocessed mitochondrial transcripts, and decreased steady state levels of mitochondrial-encoded proteins, which were rescued by introduction of the wild-type PRORP cDNA. In mt-tRNA processing assays performed with recombinant mt-RNase P proteins, the disease-associated variants resulted in diminished mitochondrial tRNA processing. Identification of disease-causing variants in PRORP indicates that pathogenic variants in all three subunits of mt-RNase P can cause mitochondrial dysfunction, each with distinct pleiotropic clinical presentations.


Subject(s)
Alleles , Genetic Pleiotropy , Mitochondria/enzymology , RNA, Mitochondrial/genetics , RNA, Transfer/genetics , Ribonuclease P/genetics , Adult , Female , Humans , Male , Pedigree
6.
Clin Genet ; 105(5): 584-586, 2024 05.
Article in English | MEDLINE | ID: mdl-38454547

ABSTRACT

A female proband and her affected niece are homozygous for a novel frameshift variant of CLPP.Ā The proband was diagnosed with severe Perrault syndrome encompassing hearing loss, primary ovarian insufficiency, abnormal brain white matter and developmental delay.


Subject(s)
Gonadal Dysgenesis, 46,XX , Hearing Loss, Sensorineural , Female , Humans , Gonadal Dysgenesis, 46,XX/complications , Hearing Loss, Sensorineural/diagnosis , Homozygote , Pedigree
7.
Mol Ther ; 31(9): 2783-2795, 2023 09 06.
Article in English | MEDLINE | ID: mdl-37481704

ABSTRACT

Hearing loss is a common disorder affecting nearly 20% of the world's population. Recently, studies have shown that inner ear gene therapy can improve auditory function in several mouse models of hereditary hearing loss. In most of these studies, the underlying mutations affect only a small number of cell types of the inner ear (e.g., sensory hair cells). Here, we applied inner ear gene therapy to the Ildr1Gt(D178D03)Wrst (Ildr1w-/-) mouse, a model of human DFNB42, non-syndromic autosomal recessive hereditary hearing loss associated with ILDR1 variants. ILDR1 is an integral protein of the tricellular tight junction complex and is expressed by diverse inner ear cell types in the organ of Corti and the cochlear lateral wall. We simultaneously applied two synthetic adeno-associated viruses (AAVs) with different tropism to deliver Ildr1 cDNA to the Ildr1w-/- mouse inner ear: one targeting the organ of Corti (AAV2.7m8) and the other targeting the cochlear lateral wall (AAV8BP2). We showed that combined AAV2.7m8/AAV8BP2 gene therapy improves cochlear structural integrity and auditory function in Ildr1w-/- mice.


Subject(s)
Deafness , Hearing Loss , Humans , Animals , Mice , Receptors, Cell Surface/genetics , Deafness/genetics , Deafness/therapy , Disease Models, Animal , Genetic Therapy
8.
Clin Genet ; 103(6): 699-703, 2023 06.
Article in English | MEDLINE | ID: mdl-36807241

ABSTRACT

Hereditary deafness and retinal dystrophy are each genetically heterogenous and clinically variable. Three small unrelated families segregating the combination of deafness and retinal dystrophy were studied by exome sequencing (ES). The proband of Family 1 was found to be compound heterozygous for NM_004525.3: LRP2: c.5005A > G, p.(Asn1669Asp) and c.149C > G, p.(Thr50Ser). In Family 2, two sisters were found to be compound heterozygous for LRP2 variants, p.(Tyr3933Cys) and an experimentally confirmed c.7715 + 3A > T consensus splice-altering variant. In Family 3, the proband is compound heterozygous for a consensus donor splice site variant LRP2: c.8452_8452 + 1del and p.(Cys3150Tyr). In mouse cochlea, Lrp2 is expressed abundantly in the stria vascularis marginal cells demonstrated by smFISH, single-cell and single-nucleus RNAseq, suggesting that a deficiency of LRP2 may compromise the endocochlear potential, which is required for hearing. LRP2 variants have been associated with Donnai-Barrow syndrome and other multisystem pleiotropic phenotypes different from the phenotypes of the four cases reported herein. Our data expand the phenotypic spectrum associated with pathogenic variants in LRP2 warranting their consideration in individuals with a combination of hereditary hearing loss and retinal dystrophy.


Subject(s)
Deafness , Hearing Loss, Sensorineural , Hearing Loss , Myopia , Retinal Dystrophies , Animals , Mice , Humans , Hearing Loss, Sensorineural/genetics , Deafness/genetics , Myopia/genetics , Mutation , Pedigree , Low Density Lipoprotein Receptor-Related Protein-2/genetics
9.
J Biol Chem ; 296: 100243, 2021.
Article in English | MEDLINE | ID: mdl-33372036

ABSTRACT

Cochlear hair cells each possess an exquisite bundle of actin-based stereocilia that detect sound. Unconventional myosin 15 (MYO15) traffics and delivers critical molecules required for stereocilia development and thus is essential for building the mechanosensory hair bundle. Mutations in the human MYO15A gene interfere with stereocilia trafficking and cause hereditary hearing loss, DFNB3, but the impact of these mutations is not known, as MYO15 itself is poorly characterized. To learn more, we performed a kinetic study of the ATPase motor domain to characterize its mechanochemical cycle. Using the baculovirus-Sf9 system, we purified a recombinant minimal motor domain (S1) by coexpressing the mouse MYO15 ATPase, essential and regulatory light chains that bind its IQ domains, and UNC45 and HSP90A chaperones required for correct folding of the ATPase. MYO15 purified with either UNC45A or UNC45B coexpression had similar ATPase activities (kcatĀ = Ć¢ĀˆĀ¼ 6Ā s-1 at 20 Ā°C). Using stopped-flow and quenched-flow transient kinetic analyses, we measured the major rate constants describing the ATPase cycle, including ATP, ADP, and actin binding; hydrolysis; and phosphate release. Actin-attached ADP release was the slowest measured transition (Ć¢ĀˆĀ¼12Ā s-1 at 20 Ā°C), although this did not rate-limit the ATPase cycle. The kinetic analysis shows the MYO15 motor domain has a moderate duty ratio (Ć¢ĀˆĀ¼0.5) and weak thermodynamic coupling between ADP and actin binding. These findings are consistent with MYO15 being kinetically adapted for processive motility when oligomerized. Our kinetic characterization enables future studies into how deafness-causing mutations affect MYO15 and disrupt stereocilia trafficking necessary for hearing.


Subject(s)
Deafness/genetics , Molecular Chaperones/genetics , Myosins/genetics , Stereocilia/genetics , Adenosine Triphosphatases/genetics , Animals , Deafness/pathology , Hair Cells, Auditory/metabolism , Hair Cells, Auditory/pathology , Hearing/genetics , Humans , Kinetics , Mice , Mutation/genetics , Protein Domains/genetics , Stereocilia/pathology
10.
Hum Genet ; 141(3-4): 363-382, 2022 Apr.
Article in English | MEDLINE | ID: mdl-34232383

ABSTRACT

Stereocilia protrude up to 100Ā Āµm from the apical surface of vertebrate inner ear hair cells and are packed with cross-linked filamentous actin (F-actin). They function as mechanical switches to convert sound vibration into electrochemical neuronal signals transmitted to the brain. Several genes encode molecular components of stereocilia including actin monomers, actin regulatory and bundling proteins, motor proteins and the proteins of the mechanotransduction complex. A stereocilium F-actin core is a dynamic system, which is continuously being remodeled while maintaining an outwardly stable architecture under the regulation of F-actin barbed-end cappers, severing proteins and crosslinkers. The F-actin cores of stereocilia also provide a pathway for motor proteins to transport cargos including components of tip-link densities, scaffolding proteins and actin regulatory proteins. Deficiencies and mutations of stereocilia components that disturb this "dynamic equilibrium" in stereocilia can induce morphological changes and disrupt mechanotransduction causing sensorineural hearing loss, best studied in mouse and zebrafish models. Currently, at least 23 genes, associated with human syndromic and nonsyndromic hearing loss, encode proteins involved in the development and maintenance of stereocilia F-actin cores. However, it is challenging to predict how variants associated with sensorineural hearing loss segregating in families affect protein function. Here, we review the functions of several molecular components of stereocilia F-actin cores and provide new data from our experimental approach to directly evaluate the pathogenicity and functional impact of reported and novel variants of DIAPH1 in autosomal-dominant DFNA1 hearing loss using single-molecule fluorescence microscopy.


Subject(s)
Deafness , Hearing Loss, Sensorineural , Actins/genetics , Animals , Deafness/genetics , Deafness/metabolism , Formins , Hair/metabolism , Hearing Loss, Sensorineural/metabolism , Humans , Mechanotransduction, Cellular/genetics , Mice , Microfilament Proteins/genetics , Stereocilia/metabolism , Zebrafish/genetics , Zebrafish/metabolism
11.
Hum Genet ; 141(3-4): 805-819, 2022 Apr.
Article in English | MEDLINE | ID: mdl-34338890

ABSTRACT

Hearing loss and impaired fertility are common human disorders each with multiple genetic causes. Sometimes deafness and impaired fertility, which are the hallmarks of Perrault syndrome, co-occur in a person. Perrault syndrome is inherited as an autosomal recessive disorder characterized by bilateral mild to severe childhood sensorineural hearing loss with variable age of onset in both sexes and ovarian dysfunction in females who have a 46, XX karyotype. Since the initial clinical description of Perrault syndrome 70Ā years ago, the phenotype of some subjects may additionally involve developmental delay, intellectual deficit and other neurological disabilities, which can vary in severity in part dependent upon the genetic variants and the gene involved. Here, we review the molecular genetics and clinical phenotype of Perrault syndrome and focus on supporting evidence for the eight genes (CLPP, ERAL1, GGPS1, HARS2, HSD17B4, LARS2, RMND1, TWNK) associated with Perrault syndrome. Variants of these eight genes only account for approximately half of the individuals with clinical features of Perrault syndrome where the molecular genetic base remains under investigation. Additional environmental etiologies and novel Perrault disease-associated genes remain to be identified to account for unresolved cases. We also report a new genetic variant of CLPP, computational structural insight about CLPP and single cell RNAseq data for eight reported Perrault syndrome genes suggesting a common cellular pathophysiology for this disorder. Some unanswered questions are raised to kindle future research about Perrault syndrome.


Subject(s)
Amino Acyl-tRNA Synthetases , Gonadal Dysgenesis, 46,XX , Hearing Loss, Sensorineural , Amino Acyl-tRNA Synthetases/genetics , Cell Cycle Proteins/genetics , Child , Female , Gonadal Dysgenesis, 46,XX/genetics , Hearing Loss, Sensorineural/genetics , Humans , Male , Mutation , Pedigree
12.
Clin Genet ; 101(4): 466-471, 2022 04.
Article in English | MEDLINE | ID: mdl-35060117

ABSTRACT

Diaphanous-related formin 1 (DIAPH1) is a formin homology F-actin elongating protein encoded by DIAPH1. Homozygous recessive variants resulting in the loss of DIAPH1 function cause seizures, cortical blindness, and microcephaly syndrome (SCBMS), but hearing loss has not been reported. In contrast, dominant variants of human DIAPH1 are associated with DFNA1 non-syndromic sensorineural hearing loss. The deafness phenotype is due partly to abnormal F-actin elongation activity caused by disruption of the DIAPH1 autoinhibitory mechanism. We report an elderly female heterozygous for the c.3145C>T: p.R1049X variant who showed late-onset sensorineural hearing loss in her fifth decade. p.R1049X lacks F-actin elongation activity because this variant truncates one-third of the FH2 domain, which is vital for DIAPH1 dimerization and processive F-actin elongation activity. Concordantly, no increase of F-actin or processive F-actin elongation activity was observed after overexpression of p.R1049X DIAPH1 in HeLa cells or by single-molecule microscopy using Xenopus XTC cells. However, overexpression of the p.R1049X variant impairs formation of cell-cell junctions and mitosis. We speculate that late-onset hearing loss is a long-term consequence of heterozygosity for the recessive p.R1049X variant, a phenotype that may have been overlooked among carriers of other recessive alleles of DIAPH1.


Subject(s)
Formins , Hearing Loss, Sensorineural , Hearing Loss , Aged , Female , Formins/genetics , HeLa Cells , Hearing Loss/genetics , Hearing Loss, Sensorineural/genetics , Humans , Phenotype
13.
FASEB J ; 35(1): e21092, 2021 01.
Article in English | MEDLINE | ID: mdl-33378124

ABSTRACT

Myosin 18Aα is a myosin 2-like protein containing unique N- and C-terminal protein interaction domains that co-assembles with myosin 2. One protein known to bind to myosin 18Aα is Ɵ-Pix, a guanine nucleotide exchange factor (GEF) for Rac1 and Cdc42 that has been shown to promote dendritic spine maturation by activating the assembly of actin and myosin filaments in spines.Ā Here, we show that myosin 18AĆ¢ĀĀŗ concentrates in the spines of cerebellar Purkinje neurons via co-assembly with myosin 2 and through an actin binding site in its N-terminal extension. miRNA-mediated knockdown of myosin 18AĆ¢ĀĀŗ results in a significant defect in spine maturation that is rescued by an RNAi-immune version of myosin 18AĆ¢ĀĀŗ.Ā Importantly, Ɵ-Pix co-localizes with myosin 18AĆ¢ĀĀŗ in spines, and its spine localization is lost upon myosin 18AĆ¢ĀĀŗ knockdown or when its myosin 18AĆ¢ĀĀŗ binding site is deleted.Ā Finally, we show that the spines of myosin 18AĆ¢ĀĀŗ knockdown Purkinje neurons contain significantly less F-actin and myosin 2. Together, these data argue that mixed filaments of myosin 2 and myosin 18AĆ¢ĀĀŗ form a complex with Ɵ-Pix in Purkinje neuron spines that promotes spine maturation by enhancing the assembly of actin and myosin filaments downstream of Ɵ-Pix's GEF activity.


Subject(s)
Dendritic Spines/metabolism , Myosins/metabolism , Purkinje Cells/metabolism , Rho Guanine Nucleotide Exchange Factors/metabolism , Animals , Dendritic Spines/genetics , Gene Deletion , Mice , Myosin Type II/genetics , Myosin Type II/metabolism , Myosins/genetics , Rho Guanine Nucleotide Exchange Factors/genetics
14.
J Neurosci ; 40(15): 2976-2992, 2020 04 08.
Article in English | MEDLINE | ID: mdl-32152201

ABSTRACT

Hepatocyte growth factor (HGF) is a multifunctional protein that signals through the MET receptor. HGF stimulates cell proliferation, cell dispersion, neuronal survival, and wound healing. In the inner ear, levels of HGF must be fine-tuned for normal hearing. In mice, a deficiency of HGF expression limited to the auditory system, or an overexpression of HGF, causes neurosensory deafness. In humans, noncoding variants in HGF are associated with nonsyndromic deafness DFNB39 However, the mechanism by which these noncoding variants causes deafness was unknown. Here, we reveal the cause of this deafness using a mouse model engineered with a noncoding intronic 10 bp deletion (del10) in Hgf Male and female mice homozygous for del10 exhibit moderate-to-profound hearing loss at 4 weeks of age as measured by tone burst auditory brainstem responses. The wild type (WT) 80 mV endocochlear potential was significantly reduced in homozygous del10 mice compared with WT littermates. In normal cochlea, endocochlear potentials are dependent on ion homeostasis mediated by the stria vascularis (SV). Previous studies showed that developmental incorporation of neural crest cells into the SV depends on signaling from HGF/MET. We show by immunohistochemistry that, in del10 homozygotes, neural crest cells fail to infiltrate the developing SV intermediate layer. Phenotyping and RNAseq analyses reveal no other significant abnormalities in other tissues. We conclude that, in the inner ear, the noncoding del10 mutation in Hgf leads to developmental defects of the SV and consequently dysfunctional ion homeostasis and a reduction in the EP, recapitulating human DFNB39 nonsyndromic deafness.SIGNIFICANCE STATEMENT Hereditary deafness is a common, clinically and genetically heterogeneous neurosensory disorder. Previously, we reported that human deafness DFNB39 is associated with noncoding variants in the 3'UTR of a short isoform of HGF encoding hepatocyte growth factor. For normal hearing, HGF levels must be fine-tuned as an excess or deficiency of HGF cause deafness in mouse. Using a Hgf mutant mouse with a small 10 bp deletion recapitulating a human DFNB39 noncoding variant, we demonstrate that neural crest cells fail to migrate into the stria vascularis intermediate layer, resulting in a significantly reduced endocochlear potential, the driving force for sound transduction by inner ear hair cells. HGF-associated deafness is a neurocristopathy but, unlike many other neurocristopathies, it is not syndromic.


Subject(s)
Cochlea/physiopathology , Evoked Potentials, Auditory, Brain Stem/genetics , Hearing Loss, Sensorineural/genetics , Hepatocyte Growth Factor/genetics , Neural Crest/growth & development , Stria Vascularis/pathology , Animals , Cell Count , Ear, Inner/abnormalities , Female , Hair Cells, Auditory , Hearing Loss, Sensorineural/pathology , Homeostasis , Humans , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Neural Crest/pathology , RNA Probes
15.
Hum Mutat ; 42(10): 1321-1335, 2021 10.
Article in English | MEDLINE | ID: mdl-34265170

ABSTRACT

Hereditary deafness is clinically and genetically heterogeneous. We investigated deafness segregating as a recessive trait in two families. Audiological examinations revealed an asymmetric mild to profound hearing loss with childhood or adolescent onset. Exome sequencing of probands identified a homozygous c.475G>A;p.(Glu159Lys) variant of CLDN9 (NM_020982.4) in one family and a homozygous c.370_372dupATC;p.(Ile124dup) CLDN9 variant in an affected individual of a second family. Claudin 9 (CLDN9) is an integral membrane protein and constituent of epithelial bicellular tight junctions (TJs) that form semipermeable, paracellular barriers between inner ear perilymphatic and endolymphatic compartments. Computational structural modeling predicts that substitution of a lysine for glutamic acid p.(Glu159Lys) alters one of two cis-interactions between CLDN9 protomers. The p.(Ile124dup) variant is predicted to locally misfold CLDN9 and mCherry tagged p.(Ile124dup) CLDN9 is not targeted to the HeLa cell membrane. In situ hybridization shows that mouse Cldn9 expression increases from embryonic to postnatal development and persists in adult inner ears coinciding with prominent CLDN9 immunoreactivity in TJs of epithelia outlining the scala media. Together with the Cldn9 deaf mouse and a homozygous frameshift of CLDN9 previously associated with deafness, the two bi-allelic variants of CLDN9 described here point to CLDN9 as a bona fide human deafness gene.


Subject(s)
Claudins , Deafness , Adolescent , Animals , Child , Claudins/genetics , Deafness/genetics , HeLa Cells , Homozygote , Humans , Mice , Mutation , Pedigree
16.
Hum Mol Genet ; 28(9): 1530-1547, 2019 05 01.
Article in English | MEDLINE | ID: mdl-30602030

ABSTRACT

Epilepsy, deafness, onychodystrophy, osteodystrophy and intellectual disability are associated with a spectrum of mutations of human TBC1D24. The mechanisms underlying TBC1D24-associated disorders and the functions of TBC1D24 are not well understood. Using CRISPR-Cas9 genome editing, we engineered a mouse with a premature translation stop codon equivalent to human S324Tfs*3, a recessive mutation of TBC1D24 associated with early infantile epileptic encephalopathy (EIEE). Homozygous S324Tfs*3 mice have normal auditory and vestibular functions but show an abrupt onset of spontaneous seizures at postnatal day 15 recapitulating human EIEE. The S324Tfs*3 variant is located in an alternatively spliced micro-exon encoding six perfectly conserved amino acids incorporated postnatally into TBC1D24 protein due to a micro-exon utilization switch. During embryonic and early postnatal development, S324Tfs*3 homozygotes produce predominantly the shorter wild-type TBC1D24 protein isoform that omits the micro-exon. S324Tfs*3 homozygotes show an abrupt onset of seizures at P15 that correlates with a developmental switch to utilization of the micro-exon. A mouse deficient for alternative splice factor SRRM3 impairs incorporation of the Tbc1d24 micro-exon. Wild-type Tbc1d24 mRNA is abundantly expressed in the hippocampus using RNAscope in situ hybridization. Immunogold electron microscopy using a TBC1D24-specific antibody revealed that TBC1D24 is associated with clathrin-coated vesicles and synapses of hippocampal neurons, suggesting a crucial role of TBC1D24 in vesicle trafficking important for neuronal signal transmission. This is the first characterization of a mouse model of human TBC1D24-associated EIEE that can now be used to screen for antiepileptogenic drugs ameliorating TBCID24 seizure disorders.


Subject(s)
GTPase-Activating Proteins/genetics , Genetic Association Studies , Genetic Predisposition to Disease , Mutation , Phenotype , Spasms, Infantile/diagnosis , Spasms, Infantile/genetics , Alleles , Animals , Biomarkers , Brain/metabolism , DNA Mutational Analysis , GTPase-Activating Proteins/metabolism , Gene Expression , Genetic Loci , Humans , Male , Mice , Neurons/metabolism , Protein Binding , RNA, Messenger/genetics , RNA, Messenger/metabolism
17.
Clin Genet ; 99(2): 226-235, 2021 02.
Article in English | MEDLINE | ID: mdl-33089500

ABSTRACT

Usher syndrome has been historically categorized into one of three classical types based on the patient phenotype. However, the vestibular phenotype does not infallibly predict which Usher genes are mutated. Conversely, the Usher syndrome genotype is not sufficient to reliably predict vestibular function. Here we present a characterization of the vestibular phenotype of 90 patients with clinical presentation of Usher syndrome (59 females), aged 10.9 to 75.5 years, with genetic variants in eight Usher syndromic genes and expand the description of atypical Usher syndrome. We identified unexpected horizontal semicircular canal reactivity in response to caloric and rotational stimuli in 12.5% (3 of 24) and 41.7% (10 of 24), respectively, of our USH1 cohort. These findings are not consistent with the classical phenotypic definition of vestibular areflexia in USH1. Similarly, 17% (6 of 35) of our cohort with USH2A mutations had saccular dysfunction as evidenced by absent cervical vestibular evoked myogenic potentials in contradiction to the classical assumption of normal vestibular function. The surprising lack of consistent genotypic to vestibular phenotypic findings as well as no clear vestibular phenotypic patterns among atypical USH cases, indicate that even rigorous vestibular phenotyping data will not reliably differentiate the three USH types.


Subject(s)
Usher Syndromes/genetics , Usher Syndromes/physiopathology , Vestibule, Labyrinth/physiopathology , Adolescent , Adult , Aged , Child , Cohort Studies , Energy Intake , Evoked Potentials, Auditory , Female , Genetic Association Studies , Humans , Middle Aged , Prospective Studies , Young Adult
18.
PLoS Genet ; 14(3): e1007297, 2018 03.
Article in English | MEDLINE | ID: mdl-29590114

ABSTRACT

Autosomal recessive nonsyndromic hearing loss is a genetically heterogeneous disorder. Here, we report a severe-to-profound sensorineural hearing loss locus, DFNB100 on chromosome 5q13.2-q23.2. Exome enrichment followed by massive parallel sequencing revealed a c.2510G>A transition variant in PPIP5K2 that segregated with DFNB100-associated hearing loss in two large apparently unrelated Pakistani families. PPIP5Ks enzymes interconvert 5-IP7 and IP8, two key members of the inositol pyrophosphate (PP-IP) cell-signaling family. Their actions at the interface of cell signaling and bioenergetic homeostasis can impact many biological processes. The c.2510G>A transition variant is predicted to substitute a highly invariant arginine residue with histidine (p.Arg837His) in the phosphatase domain of PPIP5K2. Biochemical studies revealed that the p.Arg837His variant reduces the phosphatase activity of PPIP5K2 and elevates its kinase activity. We found that in mouse inner ear, PPIP5K2 is expressed in the cochlear and vestibular sensory hair cells, supporting cells and spiral ganglion neurons. Mice homozygous for a targeted deletion of the Ppip5k2 phosphatase domain exhibit degeneration of cochlear outer hair cells and elevated hearing thresholds. Our demonstration that PPIP5K2 has a role in hearing in humans indicates that PP-IP signaling is important to hair cell maintenance and function within inner ear.


Subject(s)
Hearing Loss, Sensorineural/genetics , Phosphotransferases (Phosphate Group Acceptor)/genetics , Animals , Chromosomes, Human, Pair 5 , Ear, Inner/physiopathology , Exome , Female , Genes, Recessive , Genetic Linkage , Hair Cells, Auditory, Inner , Homeostasis , Humans , Male , Mice , Pedigree , Point Mutation
19.
Hum Mol Genet ; 27(5): 780-798, 2018 03 01.
Article in English | MEDLINE | ID: mdl-29293958

ABSTRACT

The Cell Division-Cycle-14 gene encodes a dual-specificity phosphatase necessary in yeast for exit from mitosis. Numerous disparate roles of vertebrate Cell Division-Cycle-14 (CDC14A) have been proposed largely based on studies of cultured cancer cells in vitro. The in vivo functions of vertebrate CDC14A are largely unknown. We generated and analyzed mutations of zebrafish and mouse CDC14A, developed a computational structural model of human CDC14A protein and report four novel truncating and three missense alleles of CDC14A in human families segregating progressive, moderate-to-profound deafness. In five of these families segregating pathogenic variants of CDC14A, deaf males are infertile, while deaf females are fertile. Several recessive mutations of mouse Cdc14a, including a CRISPR/Cas9-edited phosphatase-dead p.C278S substitution, result in substantial perinatal lethality, but survivors recapitulate the human phenotype of deafness and male infertility. CDC14A protein localizes to inner ear hair cell kinocilia, basal bodies and sound-transducing stereocilia. Auditory hair cells of postnatal Cdc14a mutants develop normally, but subsequently degenerate causing deafness. Kinocilia of germ-line mutants of mouse and zebrafish have normal lengths, which does not recapitulate the published cdc14aa knockdown morphant phenotype of short kinocilia. In mutant male mice, degeneration of seminiferous tubules and spermiation defects result in low sperm count, and abnormal sperm motility and morphology. These findings for the first time define a new monogenic syndrome of deafness and male infertility revealing an absolute requirement in vivo of vertebrate CDC14A phosphatase activity for hearing and male fertility.


Subject(s)
Hearing Loss/genetics , Infertility, Male/genetics , Phosphoric Monoester Hydrolases/genetics , Protein Tyrosine Phosphatases/genetics , Animals , CRISPR-Cas Systems , Female , Genetic Association Studies , Hearing Loss/physiopathology , Humans , Male , Mice, Mutant Strains , Pedigree , Phosphoric Monoester Hydrolases/chemistry , Protein Tyrosine Phosphatases/metabolism , Testis/physiopathology , Zebrafish/embryology , Zebrafish/genetics , Zebrafish Proteins/genetics , Zebrafish Proteins/metabolism
20.
Clin Genet ; 97(1): 138-155, 2020 01.
Article in English | MEDLINE | ID: mdl-31506927

ABSTRACT

A variety of different signaling pathways are necessary for development and maintenance of the human auditory system. Normal hearing allows for the detection of soft sounds within the frequency range of 20 to 20 000 Hz, but more importantly to perceive the human voice frequency band of 250 to 6000 Hz. Loss of hearing is common, and is a clinically heterogeneous disorder that can be caused by environmental factors such as exposure to loud noise, infections and ototoxic drugs. In addition, variants of hundreds of genes have been reported to disrupt processes required for hearing. Noncoding regulatory variants and variants of additional genes necessary for hearing remain to be discovered as many individuals with inherited deafness are without a genetic diagnosis, despite the advent of whole exome sequencing. Here, we discuss in detail some of these deafness-causing variants of genes encoding a ligand or its receptor. Spotlighted in this review are three growth factor-receptor-pairs EDN3/EDNRB, HGF/MET and JAG/NOTCH, which individually are necessary for normal hearing. We also offer our perspective on unanswered questions, future challenges and potential opportunities for treatments emerging from molecular genetic and mechanistic studies of deafness due to these causes.


Subject(s)
Deafness/genetics , Endothelin-3/genetics , Hearing Loss, Sensorineural/genetics , Hepatocyte Growth Factor/genetics , Receptor, Endothelin B/genetics , Deafness/pathology , Hearing/genetics , Hearing/physiology , Hearing Loss, Sensorineural/pathology , Humans , Jagged-1 Protein/genetics , Proto-Oncogene Proteins c-met/genetics , Receptors, Notch/genetics
SELECTION OF CITATIONS
SEARCH DETAIL