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1.
Sci Rep ; 14(1): 11312, 2024 05 17.
Artigo em Inglês | MEDLINE | ID: mdl-38760496

RESUMO

The syncytiotrophoblast is a multinucleated structure that arises from fusion of mononucleated cytotrophoblasts, to sheath the placental villi and regulate transport across the maternal-fetal interface. Here, we ask whether the dynamic mechanical forces that must arise during villous development might influence fusion, and explore this question using in vitro choriocarcinoma trophoblast models. We demonstrate that mechanical stress patterns arise around sites of localized fusion in cell monolayers, in patterns that match computational predictions of villous morphogenesis. We then externally apply these mechanical stress patterns to cell monolayers and demonstrate that equibiaxial compressive stresses (but not uniaxial or equibiaxial tensile stresses) enhance expression of the syndecan-1 and loss of E-cadherin as markers of fusion. These findings suggest that the mechanical stresses that contribute towards sculpting the placental villi may also impact fusion in the developing tissue. We then extend this concept towards 3D cultures and demonstrate that fusion can be enhanced by applying low isometric compressive stresses to spheroid models, even in the absence of an inducing agent. These results indicate that mechanical stimulation is a potent activator of cellular fusion, suggesting novel avenues to improve experimental reproductive modelling, placental tissue engineering, and understanding disorders of pregnancy development.


Assuntos
Fusão Celular , Estresse Mecânico , Trofoblastos , Trofoblastos/metabolismo , Trofoblastos/citologia , Trofoblastos/fisiologia , Humanos , Feminino , Gravidez , Fenômenos Biomecânicos , Placenta/metabolismo , Placenta/citologia , Caderinas/metabolismo , Modelos Biológicos
2.
Nat Commun ; 12(1): 3192, 2021 05 27.
Artigo em Inglês | MEDLINE | ID: mdl-34045434

RESUMO

Tissues achieve their complex spatial organization through an interplay between gene regulatory networks, cell-cell communication, and physical interactions mediated by mechanical forces. Current strategies to generate in-vitro tissues have largely failed to implement such active, dynamically coordinated mechanical manipulations, relying instead on extracellular matrices which respond to, rather than impose mechanical forces. Here, we develop devices that enable the actuation of organoids. We show that active mechanical forces increase growth and lead to enhanced patterning in an organoid model of the neural tube derived from single human pluripotent stem cells (hPSC). Using a combination of single-cell transcriptomics and immunohistochemistry, we demonstrate that organoid mechanoregulation due to actuation operates in a temporally restricted competence window, and that organoid response to stretch is mediated extracellularly by matrix stiffness and intracellularly by cytoskeleton contractility and planar cell polarity. Exerting active mechanical forces on organoids using the approaches developed here is widely applicable and should enable the generation of more reproducible, programmable organoid shape, identity and patterns, opening avenues for the use of these tools in regenerative medicine and disease modelling applications.


Assuntos
Tubo Neural/citologia , Organoides/fisiologia , Engenharia Tecidual/métodos , Técnicas de Cultura de Células/instrumentação , Técnicas de Cultura de Células/métodos , Diferenciação Celular/fisiologia , Linhagem Celular , Matriz Extracelular/fisiologia , Humanos , Hidrogéis/química , Mecanotransdução Celular/fisiologia , Células-Tronco Pluripotentes , Polietilenoglicóis/química , RNA-Seq , Medicina Regenerativa/métodos , Análise de Célula Única , Engenharia Tecidual/instrumentação
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