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Antosova, B.

Publications and source records attributed to Antosova, B..

2 recordsLinked to original sources

Pax6 maintains lens epithelial cell identity and coordinates secondary fiber cell differentiation

Pax6 is a crucial regulator of vertebrate eye development, and its loss leads to the failure of lens placode formation. To investigate Pax6 function at successive stages of lens development, we employed the Cre-loxP system in combination with a novel Foxe3-Cre driver, which becomes active after the lens placode stage but prior to the onset of secondary fiber cell differentiation. The Foxe3-Cre enables efficient deletion of Pax6 throughout the entire lens by embryonic day E12.5. Our study shows that Pax6 loss causes a delay in lens differentiation, disrupts the lens epithelium, and produces a smaller lens that remains attached to the cornea, ultimately leading to a rudimentary lens in adulthood. Notably, Foxe3 persisted in the mutant lens epithelium despite Pax6 loss, while apoptosis and aberrant Sox2 upregulation occurred in the epithelium. Combined with the delayed onset of fiber cell differentiation, the abnormal anterior expansion of fiber cell differentiation regulators (c-Maf and Sox1), and the aberrant expression of cyclin D2, these results underscore the essential role of Pax6 in preserving lens epithelial identity and coordinating the transition to secondary fiber cell differentiation.

developmental biology↗

Chromatin remodeling enzyme Snf2h is essential for retinal cell proliferation and photoreceptor maintenance

Chromatin remodeling complexes are required for many distinct nuclear processes such as transcription, DNA replication and DNA repair. However, how these complexes contribute to the development of complex tissues within an organism is poorly characterized. Imitation switch (ISWI) proteins are among the most evolutionarily conserved ATP-dependent chromatin remodeling factors and are represented by yeast Isw1/Isw2, and their vertebrate counterparts Snf2h (Smarca5) and Snf2l (Smarca1). In this study, we focused on the role of the Snf2h gene during development of the mammalian retina. We show that Snf2h is expressed in both retinal progenitors and post-mitotic retinal cells. Using Snf2h conditional knockout mice (Snf2h cKO), we found that when Snf2h is deleted the laminar structure of the adult retina is not retained, the overall thickness of the retina is significantly reduced compared with controls, and the outer nuclear layer (ONL) is completely missing. Depletion of Snf2h did not influence the ability of retinal progenitors to generate all of the differentiated retinal cell types. Instead, Snf2h function is critical for proliferation of retinal progenitor cells. Cells lacking Snf2h have a defective S-phase, leading to the entire cell division process impairments. Although, all retinal cell types appear to be specified in the absence of Snf2h function, cell cycle defects and concomitantly increased apoptosis in Snf2h cKO result in abnormal retina lamination, complete destruction of the photoreceptor layer and, consequently, in a physiologically non-functional retina.

developmental biology↗