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Macho-Rendon, J.

Publications and source records attributed to Macho-Rendon, J..

2 recordsLinked to original sources

Optic cup folding is driven by the geometry and tension of the Retinal Pigmented Epithelium (RPE) cells

While optic cup folding is known to involve specific geometrical changes of RPE cells, the precise gene regulatory mechanisms orchestrating the adoption of their highly rigid geometry, and how these contribute to successful folding, remain poorly understood. To address this gap, we investigated how the increase in mechanical tension and maintenance of an elongated geometry depend on the activation of the Wnt/{beta}-catenin and YAP pathways in RPE cells. We demonstrated that interference with these pathways causes folding failure due to a reduction in RPE cellular tension. We also identified transcriptional programs controlled by these pathways that regulate the mechanical properties of the actin cytoskeleton, cell-to-cell and cell-to-ECM adhesions, and endocytosis. Finally, we hypothesized that the LINC complex, which transmits tension between the cell and nuclear membranes, is responsible for the nuclear entry of {beta}-catenin and YAP in a cellular geometry-dependent manner. We combined quantitative imaging, functional analysis, mechanical perturbation assays, and transcriptomic analysis to generate a comprehensive view of how the coordination of mechanosensitive gene expression and changes in cellular geometries drive eye formation.

developmental biology↗

HUMAN SPINAL CORD ORGANOIDS REVEAL CELL INTERCALATION AS A CONSERVED MECHANISM FOR SECONDARY NEURULATION

Human pluripotent stem cells (hPSCs) have enabled major advances in neural organoid research, yet reconstructing spinal cord development in vitro remains challenging, as it requires mimicking the early environment of body axis elongation. Here, by exposing hPSCs to defined extrinsic signals, we directed their self-organizing capacity to generate organoids that recapitulate the transcriptional profile, cellular composition, and tissue architecture of the early human posterior spinal cord. Furthermore, we refined our culture system to more closely model the in vivo morphogenetic events of secondary neurulation. Using this approach, we identified cell intercalation--regulated by Yes-associated protein (YAP) activity--as a key morphogenetic mechanism driving de novo lumen formation and resolution. These biomimetic models provide a powerful platform to investigate the molecular and mechanical processes underlying human spinal cord development and offer new opportunities to elucidate the origins of neural tube defects, among the most common congenital defects.

developmental biology↗