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Belousov, R.

Publications and source records attributed to Belousov, R..

3 recordsLinked to original sources

Nuclear deformability facilitates apical nuclear migration in the developing zebrafish retina

Nuclear positioning is an important aspect of cell and developmental biology. One example is the apical positioning of nuclei in retinal and other neuroepithelia. Here, apical nuclear migration is crucial for correct tissue formation. Cytoskeletal mechanisms that drive nuclei to the apical side have been explored. Yet, whether also nuclear properties influence apical nuclear migration remained comparatively less understood. Lamin A/C expression levels have been shown to be directly related to nuclear deformability. Further, it was shown that many nuclei in early development, including neuroepithelial nuclei, express only low levels of Lamin A/C. Thus, we asked whether increased expression of Lamin A in the densely packed zebrafish retinal neuroepithelium affects nuclear migration phenomena. We find that overexpressing Lamin A in retinal nuclei of single cells or in the whole tissue increased nuclear stiffness and consequently impaired apical positioning. Interestingly, also nuclei of control cells embedded in a Lamin A overexpressing environment displayed impaired apical nuclear migration. When Lamin A is overexpressed at the tissue level this further leads to a delay in mitotic entry. Thus, nuclear material properties, within cells but also in the surrounding environment, can influence nuclear and cell behavior in densely packed neuroepithelia. Overall, this work quantitatively shows a relevance of low Lamin A/C levels in early neuroepithelial development. These findings are most likely also applicable for other developing tissues which feature nuclear and cell motion through crowded environments.

developmental biology↗

Apical-driven cell sorting optimised for tissue geometry ensures robust patterning

Tissue patterning coordinates morphogenesis, cell dynamics and fate specification. Understanding how these processes are coupled to achieve precision despite their inherent variability remains a challenge. Here, we investigate how salt-and-pepper epiblast and primitive endoderm (PrE) cells sort and robustly pattern the inner cell mass (ICM) of mammalian blastocysts. Quantifying cellular dynamics and mechanics together with simulations show a key role for the autonomously acquired apical polarity of mouse PrE cells in coupling cell fate and dynamics in tissue contexts. Specifically, apical polarity forms actin protrusions and is required for Rac1-dependent migration towards the ICM surface, where PrE cells are trapped due to decreased tension at their apical domain, while depositing an extracellular matrix gradient, breaking the tissue-level symmetry and collectively guiding their own migration. Tissue size perturbations and comparison with monkey blastocysts further demonstrate that the fixed proportion of PrE/epiblast cells is optimal and robust to variability in embryo size.

developmental biology↗

COORDINATION BETWEEN EMBRYO GROWTH AND TROPHOBLAST MIGRATION UPON IMPLANTATION DELINEATES MOUSE EMBRYOGENESIS

Implantation marks a key transition in mammalian development. The role of embryo-uterus interaction in periimplantation development is however poorly understood due to inaccessibility in utero. Here, we develop an engineered uterus-like microenvironment to recapitulate mouse development ex vivo up to E5.25 and discover an essential role of integrin-mediated trophoblast adhesion to the uterine matrix. Light-sheet microscopy shows that trophoblast cells undergo Rac1-dependent collective migration upon implantation, displacing Reicherts membrane and generating space for egg cylinder growth. The key role of coordination between trophoblast migration and embryo growth is verified by experimentally manipulating the migration velocity and geometry of the engineered uterus. Modeling the implanting embryo as a wetting droplet links the tissue shape dynamics to underlying changes in trophoblast adhesion and suggests that the corresponding tension release facilitates egg cylinder formation. Together, this study provides mechanisms by which dynamic embryo-uterus interactions play an essential role in peri-implantation development.

developmental biology↗