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He, D. Z.

Publications and source records attributed to He, D. Z..

2 recordsLinked to original sources

ZBTB20 is Essential for Cochlear Maturation and Hearing in Mice

The mammalian cochlear epithelium undergoes substantial remodeling and maturation before the onset of hearing. However, very little is known about the transcriptional network governing cochlear late-stage maturation and particularly the differentiation of its lateral non-sensory region. Here we establish ZBTB20 as an essential transcription factor required for cochlear terminal differentiation and maturation and hearing. ZBTB20 is abundantly expressed in the developing and mature cochlear non-sensory epithelial cells, with transient expression in immature hair cells and spiral ganglion neurons. Otocyst-specific deletion of Zbtb20 causes profound deafness with reduced endolymph potential in mice. The subtypes of cochlear epithelial cells are normally generated but their postnatal development is arrested in the absence of ZBTB20, as manifested by an immature appearance of the organ of Corti, malformation of tectorial membrane, a flattened spiral prominence, and a lack of identifiable Boettcher cells. Furthermore, these defects are related with a failure in the terminal differentiation of the non-sensory epithelium covering the outer border Claudius cells, outer sulcus root cells and spiral prominence epithelial cells. Transcriptome analysis shows ZBTB20 regulates genes coding for tectorial membrane proteins in the greater epithelial ridge, and those preferentially expressed in root cells and spiral prominence epithelium. Our results point to ZBTB20 as an essential regulator for postnatal cochlear maturation and particularly for the terminal differentiation of cochlear lateral non-sensory domain.

developmental biology↗

Apicosome: newly identified cell-type-specific organelle in mouse cochlear and vestibular hair cells

Cochlear and vestibular hair cells in the inner ear are highly specialized sensory receptors for sound waves and acceleration of body movements; these cells can perform their specialized functions because of their distinctive morphology and some unique organelles that they harbor. Here, we report a serendipitous identification in the mouse of a hair-cell-specific organelle, which we name "apicosome." The apicosome was recognized by anti-FLRT1 antibodies but contains no FLRT1, and the organelle presents several distinctive characteristics: (1) the apicosome typically appears as a single entity ([~]500 nm in diameter), but occasionally as two entities, in hair cells; (2) it first appears in the subapical region at the neural side at embryonic day (E) 17-18 in cochlear hair cells, subsequently descends to the perinuclear region during the first postnatal week, and completely disappears around postnatal day (P) 10; (3) in vestibular hair cells, it can be detected in the subapical region of neonatal (P3) cells and persists in adult hair cells although it becomes smaller and more distant from the subapical region; (4) the timing of apicosome translocation and disappearance during development is correlated in kinocilium maintenance; (5) the organelle is potentially associated with microtubules; and (6) the appearance of the apicosome is irregular in supernumerary hair cells and this is likely linked to anomalous lateral inhibition. Thus, our study identifies a previously undescribed organelle in sensory hair cells and lays the foundation for further characterization of this specialized structure potentially linked to hair-cell development and morphogenesis.

neuroscience↗