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Custodio, B.

Publications and source records attributed to Custodio, B..

2 recordsLinked to original sources

A dual-phase enhancer couples progenitor maintenance and pancreatic lineage stability

Enhancers orchestrate transcriptional programs that control organ development and maintain differentiated cell states, yet how individual enhancers integrate developmental and long-term tissue maintenance logic remains poorly understood. Here, we identify a distal enhancer downstream of ptf1a (z3-DpE) as a regulatory node coupling pancreatic development with acinar cell homeostasis in zebrafish. Deletion of z3-DpE reduces ptf1a expression in pancreatic multipotent progenitor cells (MPCs), leading to depletion of the progenitor pool, altered morphogenesis, and premature exocrine differentiation. Transcriptomic analysis reveals broad repression of proliferation- and morphogenesis-related genes, including Notch pathway components essential for progenitor maintenance. After differentiation, loss of z3-DpE contributes to acinar cell loss, expansion of ductal and endocrine compartments, and disrupted pancreatic architecture. Chromatin-accessibility profiling of purified acinar cells reveals that reduced ptf1a activity leads to widespread remodeling of the acinar chromatin landscape, with decreased accessibility at loci associated with acinar identity and developmental programs, and increased accessibility at sites linked to inflammation, epithelial plasticity, and pancreatic cancer susceptibility. Histopathological analysis shows disorganized acinar tissue with increased duct-like structures and mucinous lesions reminiscent of early pancreatic neoplasia. Thus, z3-DpE safeguards acinar identity by sustaining ptf1a expression and a chromatin landscape that restricts fate instability and pathological plasticity. Our findings demonstrate the mechanistic sufficiency of a single enhancer to coordinate progenitor expansion and long-term lineage stabilization, providing a paradigm for how a developmental regulatory element is redeployed to preserve tissue integrity and suppress disease-associated plasticity.

developmental biology↗

Engineered micropillars to unveil oligodendrocyte responses to physical cues

Destruction of myelin internodes, oligodendrocyte (OL) apoptosis, and axonal degeneration characterize diseased or aged central nervous systems. While OLs can partially regenerate myelin sheaths, the remyelination process ultimately fails. Tissue mechanical and physical properties, such as stiffness and axonal curvature, play a role in this process. However, the complexity of existing models has hindered studies of OL mechanobiology. Here, a tissue-engineered model is presented to investigate the impact of stiffness and axonal diameter on OL myelination. The model consists of poly(dimethylsiloxane) micropillars with biologically relevant diameters (1-5 {micro}m), tunable rigidity, and amenable for surface functionalization. The optimized method enables the production of high-aspect-ratio, transparent micropillar arrays, in a reproducible and scalable system, serving as surrogate axons. Additionally, new protocols for quantifying myelin formation are introduced, which can be adapted to any myelination studies. Softer micropillars accelerate OL differentiation, while rigid ones promote the maintenance of mature OL states. Wrapping of OLs increased with micropillar diameter on rigid substrates, but not on softer ones, suggesting a complex interplay between curvature and rigidity. These processes involve calcium-sensitive channels, histone deacetylases, and microtubules dynamics. The proposed platform constitutes a versatile and user-friendly system, with applications from fundamental myelin research to drug discovery.

bioengineering↗