Lamins are the major structural components of the nuclear lamina with a variety of roles in development and organogenesis. However, the function of lamins during trophoblast development, the first lineage to differentiate during mouse embryogenesis, remains unexplored. By utilizing an in vitro trophoblast stem cell differentiation model in a lamin null setting, we uncover that lamins maintain expression of genes related to trophoblast differentiation, while repressing genes involved in maintaining trophoblast stem cell stemness and off-lineage development. By deleting different combinations of lamins in mice, we show that both lamin triple-knockout and lamin-A and -B1 (lamin-A/B1) double-knockout result in placental defects, including reduced placenta size and disrupted placental organogenesis at embryonic day (E)9.5. At this stage, lamin-A/B1 are expressed in trophoblast giant cells of the placenta, and lamin-A/B1 loss leads to their impaired maturation in vivo. Lamin-A/B1 double knockout trophoblast giant cells exhibit reduced nuclear size along with a reduction of DNA damage signaling foci, suggesting a role for lamins in supporting trophoblast giant cell polyploidization. Similar to the transcriptional dysregulation observed during differentiation of lamin triple knockout trophoblast stem cells in vitro, lamin-A/B1 knockout in vivo results in downregulation of genes related to trophoblast giant cell function and upregulation of off-lineage genes. Our results suggest lamins are required for placental organogenesis by maintaining polyploidization and lineage-associated transcriptional programs in trophoblast giant cells.
Debic, S., Hu, J., Zheng, X., Zheng, Y.
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