Charlotte Steenblock-Group

Stem-like Cells of the HPA axis and their role in stress

Stem Cells within the HPA Axis in Tissue Homeostasis and Disease.


Journal article


Mario Schubert, Kaomei Guan, C. Steenblock
Stem Cells, 2025

Semantic Scholar DOI PubMed
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APA   Click to copy
Schubert, M., Guan, K., & Steenblock, C. (2025). Stem Cells within the HPA Axis in Tissue Homeostasis and Disease. Stem Cells.


Chicago/Turabian   Click to copy
Schubert, Mario, Kaomei Guan, and C. Steenblock. “Stem Cells within the HPA Axis in Tissue Homeostasis and Disease.” Stem Cells (2025).


MLA   Click to copy
Schubert, Mario, et al. “Stem Cells within the HPA Axis in Tissue Homeostasis and Disease.” Stem Cells, 2025.


BibTeX   Click to copy

@article{mario2025a,
  title = {Stem Cells within the HPA Axis in Tissue Homeostasis and Disease.},
  year = {2025},
  journal = {Stem Cells},
  author = {Schubert, Mario and Guan, Kaomei and Steenblock, C.}
}

Abstract

The hypothalamus-pituitary-adrenal (HPA) axis is crucial for the energy metabolism, cardiovascular function, and stress response. Importantly, neuronal signalling circuits in the hypothalamus, along with hormones released from the pituitary and adrenal gland, must adapt to physiological demands or pathological conditions. Stem and progenitor cells are pivotal in this regulation, either by giving rise to distinct cell types or by interacting with progenitor or hormone-producing cells. While lineage-tracing studies in rodent models have explored the role of stem cells in the HPA axis, our understanding of the mechanisms underlying this dynamic tissue plasticity remains limited, especially in humans. Moreover, single-cell RNA sequencing has revealed significant heterogeneity among stem cell populations in the HPA-axis, raising questions about the functional relevance of individual subclusters during development and adulthood. In this concise review, we summarise current knowledge on stem cells in the HPA axis, focusing on their origins, localisation of different stem cell populations, and sex-specific activity in maintaining tissue integrity. We further address their role under pathophysiological conditions, including metabolic disease, cancer, and stress. Lastly, we discuss emerging strategies for replacing lost or damaged stem or progenitor cells during ageing, highlighting recent achievements in the in vitro differentiation of hypothalamic, pituitary, and adrenal stem cells.