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1.
Nature ; 563(7733): 696-700, 2018 11.
Article in English | MEDLINE | ID: mdl-30464345

ABSTRACT

The sensory cells that are responsible for hearing include the cochlear inner hair cells (IHCs) and outer hair cells (OHCs), with the OHCs being necessary for sound sensitivity and tuning1. Both cell types are thought to arise from common progenitors; however, our understanding of the factors that control the fate of IHCs and OHCs remains limited. Here we identify Ikzf2 (which encodes Helios) as an essential transcription factor in mice that is required for OHC functional maturation and hearing. Helios is expressed in postnatal mouse OHCs, and in the cello mouse model a point mutation in Ikzf2 causes early-onset sensorineural hearing loss. Ikzf2cello/cello OHCs have greatly reduced prestin-dependent electromotile activity, a hallmark of OHC functional maturation, and show reduced levels of crucial OHC-expressed genes such as Slc26a5 (which encodes prestin) and Ocm. Moreover, we show that ectopic expression of Ikzf2 in IHCs: induces the expression of OHC-specific genes; reduces the expression of canonical IHC genes; and confers electromotility to IHCs, demonstrating that Ikzf2 can partially shift the IHC transcriptome towards an OHC-like identity.


Subject(s)
DNA-Binding Proteins/metabolism , Gene Expression Regulation, Developmental/genetics , Hair Cells, Auditory, Outer/cytology , Hair Cells, Auditory, Outer/metabolism , Transcription Factors/metabolism , Transcription, Genetic , Transcriptome/genetics , Animals , Base Sequence , Biomarkers/metabolism , Female , Male , Mice , Mice, Inbred C57BL
2.
J Neurosci ; 39(27): 5284-5298, 2019 07 03.
Article in English | MEDLINE | ID: mdl-31085606

ABSTRACT

Acoustic signals are relayed from the ear to the brain via spiral ganglion neurons (SGNs) that receive auditory information from the cochlear inner hair cells (IHCs) and transmit that information to the cochlear nucleus of the brainstem. Physiologically distinct classes of SGNs have been characterized by their spontaneous firing rate and responses to sound and those physiological distinctions are thought to correspond to stereotyped synaptic positions on the IHC. More recently, single-cell profiling has identified multiple groups of SGNs based on transcriptional profiling; however, correlations between any of these groups and distinct neuronal physiology have not been determined. In this study, we show that expression of the POU (Pit-Oct-Unc) transcription factor Pou4f1 in type I SGNs in mice of both sexes correlates with a synaptic location on the modiolar side of IHCs. Conditional deletion of Pou4f1 in SGNs beginning in mice at embryonic day 13 rescues the early path-finding and apoptotic phenotypes reported for germline deletion of Pou4f1, resulting in a phenotypically normal development of SGN patterning. However, conditional deletion of Pou4f1 in SGNs alters the activation of Ca2+ channels in IHCs primarily by increasing their voltage sensitivity. Moreover, the modiolar to pillar gradient of active zone Ca2+ influx strength is eliminated. These results demonstrate that a subset of modiolar-targeted SGNs retain expression of Pou4f1 beyond the onset of hearing and suggest that this transcription factor plays an instructive role in presynaptic Ca2+ signaling in IHCs.SIGNIFICANCE STATEMENT Physiologically distinct classes of type I spiral ganglion neurons (SGNs) are necessary to encode sound intensities spanning the audible range. Although anatomical studies have demonstrated structural correlates for some physiologically defined classes of type I SGNs, an understanding of the molecular pathways that specify each type is only now emerging. Here, we demonstrate that expression of the transcription factor Pou4f1 corresponds to a distinct subgroup of type I SGNs that synapse on the modiolar side of inner hair cells. The conditional deletion of Pou4f1 after SGN formation does not disrupt ganglion size or morphology, change the distribution of IHC synaptic locations, or affect the creation of synapses, but it does influence the voltage dependence and strength of Ca2+ influx at presynaptic active zones in inner hair cells.


Subject(s)
Calcium Signaling , Hearing/physiology , Neurons/metabolism , Presynaptic Terminals/metabolism , Spiral Ganglion/metabolism , Transcription Factor Brn-3A/metabolism , Animals , Evoked Potentials, Auditory, Brain Stem , Female , Hair Cells, Auditory, Inner , Male , Mice, Inbred C57BL , Spiral Ganglion/cytology
3.
Dev Biol ; 453(2): 191-205, 2019 09 15.
Article in English | MEDLINE | ID: mdl-31185200

ABSTRACT

The development of asymmetric patterns along biologically relevant axes is a hallmark of many vertebrate organs or structures. One example is the sensory epithelium of the mammalian auditory system. Two distinct types of mechanosensory hair cells (inner and outer) and at least six types of associated supporting cells are precisely and asymmetrically arrayed along the radial (medial-lateral) axis of the cochlear spiral. Immunolabeling of developing cochleae indicates differential expression of Glycogen synthase kinase 3ß (GSK3ß) along the same axis. To determine whether GSK3ß plays a role in specification of cell fates along the medial-lateral axis, GSK3 activity was blocked pharmacologically in cochlear explants. Results indicate significant changes in both the number of hair cells and in the specification of hair cell phenotypes. The overall number of inner hair cells increased as a result of both a shift in the medial boundary between sensory and non-sensory regions of the cochlea and a change in the specification of inner and outer hair cell phenotypes. Previous studies have inhibited GSK3 as a method to examine effects of canonical Wnt signaling. However, quantification of changes in Wnt pathway target genes in GSK3-inhibited cochleae, and treatment with more specific Wnt agonists, indicated that the Wnt pathway is not activated. Instead, expression of Bmp4 in a population of GSK3ß-expressing cells was shown to be down-regulated. Finally, addition of BMP4 to GSK3-inhibited cochleae achieved a partial rescue of the hair cell phenotype. These results demonstrate a role for GSK3ß in the specification of cellular identities along the medial-lateral axis of the cochlea and provide evidence for a positive role for GSK3ß in the expression of Bmp4.


Subject(s)
Cell Lineage , Glycogen Synthase Kinase 3 beta/metabolism , Hair Cells, Auditory/cytology , Hair Cells, Auditory/enzymology , Animals , Bone Morphogenetic Protein 4/pharmacology , Cell Lineage/drug effects , Cell Proliferation/drug effects , Epithelium/drug effects , Epithelium/metabolism , Female , Glycogen Synthase Kinase 3 beta/antagonists & inhibitors , Hair Cells, Auditory/drug effects , Hair Cells, Auditory, Inner/cytology , Hair Cells, Auditory, Inner/drug effects , Hair Cells, Auditory, Inner/enzymology , Hair Cells, Auditory, Outer/cytology , Hair Cells, Auditory, Outer/drug effects , Hair Cells, Auditory, Outer/enzymology , Mice , Models, Biological , Protein Kinase Inhibitors/pharmacology , Receptors, Fibroblast Growth Factor/metabolism , Wnt Signaling Pathway/drug effects
4.
Nat Commun ; 11(1): 2389, 2020 05 13.
Article in English | MEDLINE | ID: mdl-32404924

ABSTRACT

Mammalian hearing requires the development of the organ of Corti, a sensory epithelium comprising unique cell types. The limited number of each of these cell types, combined with their close proximity, has prevented characterization of individual cell types and/or their developmental progression. To examine cochlear development more closely, we transcriptionally profile approximately 30,000 isolated mouse cochlear cells collected at four developmental time points. Here we report on the analysis of those cells including the identification of both known and unknown cell types. Trajectory analysis for OHCs indicates four phases of gene expression while fate mapping of progenitor cells suggests that OHCs and their surrounding supporting cells arise from a distinct (lateral) progenitor pool. Tgfßr1 is identified as being expressed in lateral progenitor cells and a Tgfßr1 antagonist inhibits OHC development. These results provide insights regarding cochlear development and demonstrate the potential value and application of this data set.


Subject(s)
Cochlea/cytology , Hair Cells, Auditory, Inner/cytology , Hair Cells, Auditory, Outer/cytology , Hair Cells, Auditory/cytology , Organ of Corti/cytology , Animals , Cells, Cultured , Cochlea/embryology , Cochlea/growth & development , Gene Expression Profiling/methods , Gene Expression Regulation, Developmental , Hair Cells, Auditory/metabolism , Hair Cells, Auditory, Inner/metabolism , Hair Cells, Auditory, Outer/metabolism , Mice , Organ of Corti/embryology , Organ of Corti/growth & development , Single-Cell Analysis/methods , Time Factors
5.
Birth Defects Res C Embryo Today ; 87(3): 212-21, 2009 Sep.
Article in English | MEDLINE | ID: mdl-19750520

ABSTRACT

Mammalian auditory sensation is mediated by the organ of Corti, a specialized sensory epithelium found in the cochlea of the inner ear. Proper auditory function requires that the many different cell types found in the sensory epithelium be precisely ordered within an exquisitely patterned cellular mosaic. The development of this mosaic depends on a series of cell fate decisions that transform the initially nearly uniform cochlear epithelium into the complex structure of the mature organ of Corti. The prosensory domain, which contains the progenitors of both the mechanosensory hair cells and their associated supporting cells, first becomes distinct from both the neural and the nonsensory domains. Further cell fate decisions subdivide prosensory cells into populations of inner and outer hair cells, and several different types of supporting cells. A number of different signaling pathways and transcription factors are known to be necessary for these developmental processes; in this review, we will summarize these results with an emphasis on recent findings.


Subject(s)
Cell Differentiation , Embryo, Mammalian , Organ of Corti , Animals , Basic Helix-Loop-Helix Transcription Factors , Cochlea/cytology , Cochlea/embryology , Cochlea/growth & development , Gene Expression Regulation, Developmental , Hair Cells, Auditory , Mice , Organ of Corti/cytology , Organ of Corti/growth & development , Organ of Corti/metabolism , Signal Transduction , Transcription Factors
6.
Curr Protoc Neurosci ; Chapter 4: Unit 4.34.1-10, 2010 Apr.
Article in English | MEDLINE | ID: mdl-20373505

ABSTRACT

The sensory epithelium of the mammalian inner ear, also referred to as the organ of Corti, is a remarkable structure comprised of highly ordered rows of mechanosensory hair cells and non-sensory supporting cells located within the coiled cochlea. This unit describes an in vitro explant culture technique that can be coupled with gene transfer via electroporation to study the effects of altering gene expression during development of the organ of Corti. While the protocol is largely focused on embryonic cochlea, the same basic protocol can be used on cochleae from mice as old as P5.


Subject(s)
Cochlea/metabolism , Electroporation/methods , Organ of Corti/metabolism , Transfection/methods , Animals , Cochlea/cytology , Cochlea/embryology , Developmental Biology/methods , Gene Expression Regulation, Developmental/physiology , Mice , Microdissection/methods , Molecular Biology/methods , Organ Culture Techniques/methods , Organ of Corti/cytology , Organ of Corti/embryology
7.
Curr Opin Otolaryngol Head Neck Surg ; 17(5): 381-7, 2009 Oct.
Article in English | MEDLINE | ID: mdl-19623076

ABSTRACT

PURPOSE OF REVIEW: A significant proportion of hearing loss and deafness is caused by defects in the structure or function of cells within the organ of Corti. Identification of the molecular factors that regulate the development of this structure should provide valuable insights regarding inner ear formation and the signaling pathways that underlie congenital auditory deficits. In addition, targeted modulation of these same factors could be developed as therapies for hair cell regeneration. RECENT FINDINGS: Results from experiments using transgenic and mutant mice, as well as in-vitro techniques, have identified genes and signaling pathways that are required to either specify unique auditory cell types, such as hair cells or supporting cells, or to generate the highly ordered cellular pattern that is characteristic for the organ of Corti. In particular, the hedgehog and fibroblast growth factor signaling pathways modulate the formation of the progenitor cells that will give rise to the organ of Corti. SRY-box containing gene 2, a transcription factor that is required for the formation of the cochlear progenitor cell population, has paradoxically been shown to also act as an inhibitor of hair cell development. Finally, the motor protein myosin II regulates extension of the organ of Corti and the alignment of hair cells and supporting cells into ordered rows. SUMMARY: A better understanding of the signaling pathways that direct different aspects of cochlear development, such as specific of cell fates or cellular patterning, offers the potential to identify new pathways or molecules that could be targeted for therapeutic interventions.


Subject(s)
Organ of Corti/cytology , Organ of Corti/embryology , Animals , Basic Helix-Loop-Helix Transcription Factors/physiology , Cell Differentiation/physiology , Fibroblast Growth Factors/physiology , Hedgehog Proteins/physiology , Mice , Mice, Transgenic , Myosin Type II/physiology , Pallister-Hall Syndrome/genetics , SOXB1 Transcription Factors/physiology , Signal Transduction/physiology
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