Age-related neurosensory deficit of the inner ear is mostly due to a loss of hair cells (HCs). Development of stem cell-based therapy requires a better understanding of factors and signals that drive stem cells into otic sensory progenitor cells (OSPCs) to replace lost HCs. Human induced pluripotent stem cells (hiPSCs) theoretically represent an unlimited supply for the generation of human OSPCs . In this study, we developed a monolayer-based differentiation system to generate an enriched population of OSPCs via a stepwise differentiation of hiPSCs. Gene and protein expression analyses revealed the efficient induction of a comprehensive panel of otic/placodal and late otic markers over the course of the differentiation. Furthermore, whole transcriptome analysis confirmed a developmental path of OSPC differentiation from hiPSCs. We found that modulation of WNT and transforming growth factor-β (TGF-β) signaling combined with fibroblast growth factor 3 (FGF3) and FGF10 treatment over a 6-day period drives the expression of early otic/placodal markers followed by late otic sensory markers within 13 days, indicative of a differentiation into embryonic-like HCs. In summary, we report a rapid and efficient strategy to generate an enriched population of OSPCs from hiPSCs, thereby establishing the value of this approach for disease modeling and cell-based therapies of the inner ear.
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http://dx.doi.org/10.3389/fnmol.2018.00452 | DOI Listing |
Development
December 2024
Department of Medicine and Life Sciences, Universitat Pompeu Fabra - Parc de Recerca Biomèdica de Barcelona, Carrer del Doctor Aiguader 8808003 Barcelona, Spain.
Human inner ear organoids are three-dimensional tissular structures grown in vitro that recapitulate some aspects of the fetal inner ear and allow the differentiation of inner ear cell types. These organoids offer a system in which to study human inner ear development, mutations causing hearing loss and vertigo, and new therapeutic drugs. However, the extent to which such organoids mimic in vivo human inner ear development and cellular composition remains unclear.
View Article and Find Full Text PDFInt J Mol Sci
October 2024
Nantong Laboratory of Development and Diseases, School of Life Sciences, Co-Innovation Center of Neuroregeneration, Nantong University, Qixiu Road 19, Nantong 226001, China.
The development of sensory hair cells (HCs) is closely linked to hearing loss. There are still many unidentified genes that may play a crucial role in HC development and function. Glutamine synthetase, Glul, is expressed in sensory hair cells and auditory organs.
View Article and Find Full Text PDFSemin Ultrasound CT MR
October 2024
Neuroradiology Section, Department of Radiology, Hospital Sírio-Libanês, São Paulo, SP, Brazil; Neuroradiology Section, Instituto de Radiologia, Hospital das Clinicas da Universidade de Sao Paulo, Sao Paulo, SP, Brazil. Electronic address:
The intricate anatomy and embryology of the middle ear, labyrinth, and vertigo-related intracranial pathways involve complex developmental processes and contributions from multiple germ layers. The middle ear, comprised of the tympanic cavity, ossicles, and Eustachian tube, develops from the first and second branchial arches and clefts. In contrast, the inner ear originates from the otic vesicle, forming the bony and membranous labyrinths.
View Article and Find Full Text PDFDev Dyn
October 2024
Unidad de Excelencia, Instituto de Biomedicina y Genética Molecular de Valladolid (IBGM), Universidad de Valladolid y Consejo Superior de Investigaciones Científicas (CSIC), Valladolid, Spain.
Background: The mechanisms underlying the formation of complex structures such as during the outgrowth of the cochlear duct are still poorly understood.
Results: We have analyzed the morphological and molecular changes associated with cochlear development in mouse mutants for the transcription factor Meis2, which show defective coiling of the cochlea. These morphological abnormalities were accompanied by the formation of ectopic and extra rows of sensory hair cells.
Nutrients
August 2024
Department of Oriental Medicine Biotechnology, Graduate School of Biotechnology, Kyung Hee University, Global Campus, Yongin 17104, Republic of Korea.
Sensorineural hearing loss (SNHL), characterized by damage to the inner ear or auditory nerve, is a prevalent auditory disorder. This study explores the potential of (CAE) as a therapeutic agent for SNHL. In vivo experiments were conducted using zebrafish and mouse models.
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