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Skritakis, P.

Publications and source records attributed to Skritakis, P..

2 recordsLinked to original sources

Canonical Wnt Signaling Maintains Human Mesenchymal Progenitor Cell Multipotency During Adipose Tissue Development

Tissue development and repair throughout life depends on the availability of multipotent mesenchymal stem/progenitor cells capable of differentiating into specialized cell types. How an appropriately sized pool of such multipotent progenitors is maintained under varied signals for tissue growth and repair is unknown. We addressed this question by monitoring fate trajectories of human adipose tissue-derived multipotent progenitor cells using single-cell transcriptomics. Homogenous multipotent progenitors underwent two distinct fate trajectories rapidly upon induction of adipose differentiation- one toward the adipocyte fate, and the other towards a distinct, non-differentiated state characterized by up-regulation of canonical Wnt target genes. Upon isolation, this latter cell population was able to resume proliferation and display multipotency. Using canonical Wnt agonists and antagonists we find Wnt signaling is required for the maintenance of this multipotent pool under differentiation stimulus. In vivo, these cells are retained in adipose tissue developed from human multipotent progenitor cells in immunocompromised mice, and their transcriptomic signature is detected in human adult adipose tissue. Our study reveals a previously unrecognized mechanism for maintaining a functional pool of human mesenchymal progenitor cells under conditions of differentiation pressure, driven by Wnt signaling.

developmental biology↗

A NEUROGENIC GENE EXPRESSION SIGNATURE SUPPORTS HUMAN THERMOGENIC ADIPOSE TISSUE DEVELOPMENT IN VIVO.

Mechanisms that control "beige/brite" thermogenic adipose tissue development may be harnessed to improve human metabolic health. To define these mechanisms, we developed a species-hybrid model in which human mesenchymal progenitor cells were used to develop white or thermogenic/beige adipose tissue in mice. The hybrid adipose tissue developed distinctive features of human adipose tissue, such as larger adipocyte size, despite its neurovascular architecture being entirely of murine origin. Thermogenic adipose tissue recruited a denser, qualitatively distinct vascular network, differing in genes mapping to circadian rhythm pathways, and denser sympathetic innervation. The enhanced thermogenic neurovascular network was associated with human adipocyte expression of THBS4, TNC, NTRK3 and SPARCL1, which enhance neurogenesis, and decreased expression of MAOA and ACHE, which control neurotransmitter tone. Systemic inhibition of MAOA, which is present in human but absent in mouse adipocytes, induced browning of human but not mouse adipose tissue, revealing the physiological relevance of this pathway. Our results reveal species-specific cell type dependencies controlling the development of thermogenic adipose tissue and point to human adipocyte MAOA as a potential target for metabolic disease therapy.

developmental biology↗