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Updated: Jun 26, 2025

In vitro Organoid Culture of Primary Mouse Colon Tumors
Published on: May 17, 2013
Non-pituitary growth hormone enables colon cell senescence evasion
Vera Chesnokova1, Svetlana Zonis1, Tugce Apaydin1
1Department of Medicine, Cedars-Sinai Medical Center, Los Angeles, California, USA.
Abstract:
DNA damage-induced senescence is initially sustained by p53. Senescent cells produce a senescence-associated secretory phenotype (SASP) that impacts the aging microenvironment, often promoting cell transformation. Employing normal non-tumorous human colon cells (hNCC) derived from surgical biopsies and three-dimensional human intestinal organoids, we show that local non-pituitary growth hormone (npGH) induced in senescent cells is a SASP component acting to suppress p53. npGH autocrine/paracrine suppression of p53 results in senescence evasion and cell-cycle reentry, as evidenced by increased Ki67 and BrdU incorporation. Post-senescent cells exhibit activated epithelial-to-mesenchymal transition (EMT), and increased cell motility. Nu/J mice harboring GH-secreting HCT116 xenografts with resultant high GH levels and injected intrasplenic with post-senescent hNCC developed fourfold more metastases than did mice harboring control xenografts, suggesting that paracrine npGH enables post-senescent cell transformation. By contrast, senescent cells with suppressed npGH exhibit downregulated Ki67 and decreased soft agar colony formation. Mechanisms underlying these observations include npGH induction by the SASP chemokine CXCL1, which attracts immune effectors to eliminate senescent cells; GH, in turn, suppresses CXCL1, likely by inhibiting phospho-NFκB, resulting in SASP cytokine downregulation. Consistent with these findings, GH-receptor knockout mice exhibited increased colon phospho-NFκB and CXCL1, while GH excess decreased colon CXCL1. The results elucidate mechanisms for local hormonal regulation of microenvironmental changes in DNA-damaged non-tumorous epithelial cells and portray a heretofore unappreciated GH action favoring age-associated epithelial cell transformation.
Insights
Local growth hormone (GH) in senescent colon cells suppresses p53, promoting cell cycle reentry and transformation. This GH action, a senescence-associated secretory phenotype (SASP) component, drives age-associated epithelial cell changes.
Area of Science:
- Cellular senescence
- Cancer biology
- Endocrinology
Background:
- DNA damage triggers cellular senescence, initially regulated by p53.
- Senescent cells release SASP, influencing the microenvironment and potentially promoting cancer.
- The role of local hormones in senescence and transformation remains incompletely understood.
Purpose of the Study:
- To investigate the role of local non-pituitary growth hormone (npGH) as a SASP component.
- To determine how npGH affects p53 activity, senescence evasion, and cell transformation.
- To elucidate the mechanisms linking GH, SASP, and epithelial cell transformation.
Main Methods:
- Utilized normal human colon cells (hNCC) and intestinal organoids.
- Induced senescence and analyzed npGH expression and its effect on p53.
- Assessed cell-cycle reentry markers (Ki67, BrdU), epithelial-to-mesenchymal transition (EMT), and motility.
- Employed mouse models with xenografts and GH receptor knockout.
Main Results:
- Senescent hNCC induced local npGH, a SASP factor that suppresses p53.
- npGH-mediated p53 suppression led to senescence evasion, cell-cycle reentry, and EMT.
- Mice with GH-secreting xenografts and post-senescent cells showed increased metastasis.
- npGH induction by CXCL1 and subsequent GH suppression of CXCL1/phospho-NFκB were identified.
Conclusions:
- Local npGH is a novel SASP component that promotes senescence evasion and epithelial cell transformation.
- GH signaling plays a critical role in regulating the microenvironment of DNA-damaged cells.
- This study reveals an unappreciated GH action that favors age-associated epithelial cell transformation.
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