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Cotovio, J. P.

Publications and source records attributed to Cotovio, J. P..

2 recordsLinked to original sources

Transcriptomic Analysis Identifies Transient Mesendodermal State and Lineage Divergence in Human Pluripotent Stem Cell Differentiation

Human pluripotent stem cells serve as a vital model for studying early human lineage specification, yet conventional assessments relying on endpoint canonical markers of the three germ layers may overlook transient intermediate states and broader cellular programs. Here we combined directed differentiation of human induced pluripotent stem cells toward neuroectodermal, cardiac mesodermal, and hepatic endodermal lineages with comparative transcriptomic profiling across timepoints. Our analyses revealed a transient primitive streak-like mesendodermal state shared by mesodermal and endodermal trajectories, followed by lineage-specific divergence characterized by distinct transcriptional, metabolic, proliferative, and chromatin remodeling dynamics. Notably, endodermal differentiation exhibited rapid definitive endoderm commitment with enriched oxidative metabolism, whereas cardiac mesoderm differentiation showed progressive transcriptional remodeling and cardiac progenitor activation. These findings demonstrate that comparative transcriptomics can resolve developmental intermediates and cellular-state dynamics during human germ layer specification, providing a framework for evaluating lineage commitment beyond endpoint canonical marker expression, and to inform strategies for optimizing or redirecting differentiation.

bioengineering↗

Gradient-Based Regulation of Activin A Directs Multilineage Liver Organoid Development from Human Pluripotent Stem Cells

Morphogen gradients critically regulate the coordinated emergence of endodermal and mesodermal lineages during liver bud formation, yet current human hepatic organoid models inadequately replicate these spatial cues. Here we demonstrate that precise modulation of Activin A concentrations within a dynamic 3D vertical-wheel bioreactor system enables the co-emergence and spatial organization of hepatic epithelium and septum transversum mesenchyme-like populations from human pluripotent stem cells. High Activin levels induce uniform definitive endoderm and enhanced hepatic maturation, whereas low levels promote epithelial tube-like structures encased by mesenchymal cells, recapitulating early liver diverticulum architecture. This gradient-based approach autonomously generates parenchymal and non-parenchymal hepatic lineages, providing a scalable platform to model human liver organogenesis and engineer ventral foregut-derived tissues.

bioengineering↗