Stem cell-derived inner ear sensory epithelia are a promising source of tissues for treating patients with hearing loss and dizziness. We recently demonstrated how to generate inner ear sensory epithelia, designated as inner ear organoids, from mouse embryonic stem cells (ESCs) in a self-organizing 3D culture. Here we improve the efficiency of this culture system by elucidating how Wnt signaling activity can drive the induction of otic tissue. We found that a carefully timed treatment with the potent Wnt agonist CHIR99021 promotes induction of otic vesicles-a process that was previously self-organized by unknown mechanisms. The resulting otic-like vesicles have a larger lumen size and contain a greater number of Pax8/Pax2-positive otic prog...
AbstractComponents of the Wnt signaling pathway are expressed in the developing inner ear. To explor...
Mechanosensory hair cells are central for our senses of hearing and balance. They are located in th...
The Wnt and Notch signalling pathways control proliferation, specification, and cell fate choices du...
Stem cell-derived inner ear sensory epithelia are a promising source of tissues for treating patient...
Otic organoids have the potential to resolve current challenges in hearing loss research. The reprod...
<p>Augmentation of canonical Wnt signaling by CHIR99021, a potent Wnt agonist, upon preplacodal form...
Components of the Wnt signaling pathway are expressed in the developing inner ear. Wnt3a was shown t...
Human inner ear tissue derived from pluripotent stem cells could provide a powerful platform for dru...
The inner ear is responsible for both hearing and balance in the body, and since the initial develop...
The inner ear is a complex sensory organ essential for hearing and balance. During embryonic develop...
The inner ear is a complex sensory organ essential for hearing and balance. During embryonic develop...
While inner ear disorders are common, our ability to intervene and recover their sensory function is...
AbstractWnt1 and Wnt3a secreted from the dorsal neural tube were previously shown to regulate a gene...
The inner ear sensory epithelium harbors mechanosensory hair cells responsible for detecting sound a...
Indiana University-Purdue University Indianapolis (IUPUI)Inner ear development requires the complex ...
AbstractComponents of the Wnt signaling pathway are expressed in the developing inner ear. To explor...
Mechanosensory hair cells are central for our senses of hearing and balance. They are located in th...
The Wnt and Notch signalling pathways control proliferation, specification, and cell fate choices du...
Stem cell-derived inner ear sensory epithelia are a promising source of tissues for treating patient...
Otic organoids have the potential to resolve current challenges in hearing loss research. The reprod...
<p>Augmentation of canonical Wnt signaling by CHIR99021, a potent Wnt agonist, upon preplacodal form...
Components of the Wnt signaling pathway are expressed in the developing inner ear. Wnt3a was shown t...
Human inner ear tissue derived from pluripotent stem cells could provide a powerful platform for dru...
The inner ear is responsible for both hearing and balance in the body, and since the initial develop...
The inner ear is a complex sensory organ essential for hearing and balance. During embryonic develop...
The inner ear is a complex sensory organ essential for hearing and balance. During embryonic develop...
While inner ear disorders are common, our ability to intervene and recover their sensory function is...
AbstractWnt1 and Wnt3a secreted from the dorsal neural tube were previously shown to regulate a gene...
The inner ear sensory epithelium harbors mechanosensory hair cells responsible for detecting sound a...
Indiana University-Purdue University Indianapolis (IUPUI)Inner ear development requires the complex ...
AbstractComponents of the Wnt signaling pathway are expressed in the developing inner ear. To explor...
Mechanosensory hair cells are central for our senses of hearing and balance. They are located in th...
The Wnt and Notch signalling pathways control proliferation, specification, and cell fate choices du...