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Biology subjects

Segal, E. X.

Publications and source records attributed to Segal, E. X..

2 recordsLinked to original sources

Developmental regulation of intestinal best4+ cells

best4+/CFTR-high expressing cells are a recently described intestinal epithelial cell type potentially altered in inflammatory bowel disease and colorectal cancer. However, their developmental origin, developmental regulation, and functions remain undefined. This study identifies their conserved transcriptional program and uses zebrafish to dissect their developmental regulation in vivo. Lineage tracing identified that best4+ cells arise from atoh1b+ secretory progenitors. We identify that Notch signaling, mediated by dll4, specifies best4+ cells at the expense of enterochromaffin cells. Downstream of Notch, meis1b confers best4+ cell identity. best4+ cells then exhibit regionalized gene expression, regulated by pbx3a. Additionally, this study demonstrates a system where best4+ cells can be manipulated, observed, and removed in an organismal context. Live imaging and electron microscopy of best4+ cells identified dynamic cellular projections, suggesting a sensory or communicative function. Removal of best4+ cells in vivo eliminated previously proposed functions: they are not required to restore intestinal pH following acidic challenge and do not absorb nutrients. However, we identify region-specific intracellular pH differences that suggest potential functional heterogeneity. Altogether, this study presents a comprehensive description of best4+ cell development from birth to spatial regulation that will be instrumental to understand how best4+ cells change in disease or might be therapeutically manipulated and presents the tools to dissect their function in vivo.

developmental biology↗

Wnt activation in mature dermal adipocytes leads to lipodystrophy and skin fibrosis via ATGL-dependent lipolysis.

ObjectiveAccumulation of extracellular matrix (ECM) and dermal adipocyte lipodystrophy occurs during skin fibrosis, which compromises the skins flexibility and function. We recently showed that sustained Wnt activation in dermal progenitor cells leads to fibrotic ECM thickening in the dermis and lipodystrophy of dermal white adipose tissue (DWAT). The aim of this study was to test if Wnt/{beta}-catenin signaling in mature dermal adipocytes directly leads to lipodystrophy and impact skin fibrosis. MethodsWe developed a genetically lineage traceable, DWAT specific, inducible and reversible mouse model of Wnt activation (Adipo-{beta}-catistab) in the dorsal skin. We analyzed the DWAT lipid droplet size, cell identity, and affect on ECM accumulation and remodeling in skin fibrosis. Adipocyte triglyceride lipase (ATGL) is the key rate limiting enzyme of the lipolysis pathway, which is a biological process of breaking down triglyceride stores in adipocytes. The Atgl gene was conditionally deleted in mature dermal adipocytes to test the requirement of the lipolysis pathway in the Wnt-induced lipodystrophy (Adipo-{beta}-catistab; Atglfl/fl). ResultsHere, we utilize mouse genetic models with lineage tracing to show that Wnt activation in mature dermal adipocytes is sufficient to induce adipocyte lipodystrophy and fibrotic collagen remodeling. Upon withdrawal of adipocyte-restricted Wnt activation, lipodystrophy and fibrosis were reversed. Mechanistically, we find that Wnt activation stimulates Adipose Triglyceride Lipase (ATGL)-mediated lipolysis pathway. We found Atgl in dermal adipocytes is functionally required for Wnt-induced lipodystrophy in the DWAT and fibrotic remodeling. ConclusionCollectively, this study demonstrates that Wnt activation in dermal adipocytes promotes lipolysis and may be a novel therapeutic avenue for preventing and reversing lipodystrophy and skin fibrosis.

cell biology↗