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Updated: Jul 18, 2026

Utilizing Murine Inducible Telomerase Alleles in the Studies of Tissue Degeneration/Regeneration and Cancer
Published on: April 13, 2015
Cdkn1a deletion improves stem cell function and lifespan of mice with dysfunctional telomeres without accelerating
Aaheli Roy Choudhury1, Zhenyu Ju, Meta W Djojosubroto
1Department of Gastroenterology, Hepatology and Endocrinology, Hannover Medical School, Carl-Neuberg-Str. 1, 30625 Hannover, Germany.
Abstract:
Telomere shortening limits the proliferative lifespan of human cells by activation of DNA damage pathways, including upregulation of the cell cycle inhibitor p21 (encoded by Cdkn1a, also known as Cip1 and Waf1)) (refs. 1-5). Telomere shortening in response to mutation of the gene encoding telomerase is associated with impaired organ maintenance and shortened lifespan in humans and in mice. The in vivo function of p21 in the context of telomere dysfunction is unknown. Here we show that deletion of p21 prolongs the lifespan of telomerase-deficient mice with dysfunctional telomeres. p21 deletion improved hematolymphopoiesis and the maintenance of intestinal epithelia without rescuing telomere function. Moreover, deletion of p21 rescued proliferation of intestinal progenitor cells and improved the repopulation capacity and self-renewal of hematopoietic stem cells from mice with dysfunctional telomeres. In these mice, apoptotic responses remained intact, and p21 deletion did not accelerate chromosomal instability or cancer formation. This study provides experimental evidence that telomere dysfunction induces p21-dependent checkpoints in vivo that can limit longevity at the organismal level.
Insights
Deleting the cell cycle inhibitor p21 extended the lifespan of mice with telomere dysfunction. This improved organ maintenance and stem cell function without increasing cancer risk, revealing p21
Area of Science:
- Cellular senescence
- Genomics
- Aging research
Background:
- Telomere shortening limits cell proliferation and organism lifespan.
- Telomere dysfunction activates DNA damage pathways, including p21.
- The in vivo role of p21 in telomere dysfunction is not well understood.
Purpose of the Study:
- To investigate the in vivo function of p21 in telomere dysfunction.
- To determine if p21 deletion impacts lifespan and organ maintenance in telomere-deficient mice.
Main Methods:
- Generation of telomerase-deficient mice with dysfunctional telomeres.
- Deletion of the p21 gene (Cdkn1a) in these mice.
- Assessment of lifespan, hematolymphopoiesis, intestinal epithelia maintenance, and stem cell function.
Main Results:
- p21 deletion significantly prolonged the lifespan of telomerase-deficient mice.
- p21 deletion improved hematolymphopoiesis and intestinal epithelial maintenance.
- p21 deletion rescued progenitor cell proliferation and stem cell self-renewal without accelerating cancer.
Conclusions:
- Telomere dysfunction induces p21-dependent checkpoints in vivo.
- p21 acts as a critical regulator limiting longevity at the organismal level.
- Targeting p21 may offer therapeutic potential for age-related diseases.
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