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Updated: Jun 6, 2026

Utilizing Murine Inducible Telomerase Alleles in the Studies of Tissue Degeneration/Regeneration and Cancer
Published on: April 13, 2015
Telomerase reactivation reverses tissue degeneration in aged telomerase-deficient mice
Mariela Jaskelioff1, Florian L Muller, Ji-Hye Paik
1Belfer Institute for Applied Cancer Science and Departments of Medical Oncology, Medicine and Genetics, Dana-Farber Cancer Institute, Harvard Medical School, Boston, Massachusetts 02115, USA.
Abstract:
An ageing world population has fuelled interest in regenerative remedies that may stem declining organ function and maintain fitness. Unanswered is whether elimination of intrinsic instigators driving age-associated degeneration can reverse, as opposed to simply arrest, various afflictions of the aged. Such instigators include progressively damaged genomes. Telomerase-deficient mice have served as a model system to study the adverse cellular and organismal consequences of wide-spread endogenous DNA damage signalling activation in vivo. Telomere loss and uncapping provokes progressive tissue atrophy, stem cell depletion, organ system failure and impaired tissue injury responses. Here, we sought to determine whether entrenched multi-system degeneration in adult mice with severe telomere dysfunction can be halted or possibly reversed by reactivation of endogenous telomerase activity. To this end, we engineered a knock-in allele encoding a 4-hydroxytamoxifen (4-OHT)-inducible telomerase reverse transcriptase-oestrogen receptor (TERT-ER) under transcriptional control of the endogenous TERT promoter. Homozygous TERT-ER mice have short dysfunctional telomeres and sustain increased DNA damage signalling and classical degenerative phenotypes upon successive generational matings and advancing age. Telomerase reactivation in such late generation TERT-ER mice extends telomeres, reduces DNA damage signalling and associated cellular checkpoint responses, allows resumption of proliferation in quiescent cultures, and eliminates degenerative phenotypes across multiple organs including testes, spleens and intestines. Notably, somatic telomerase reactivation reversed neurodegeneration with restoration of proliferating Sox2(+) neural progenitors, Dcx(+) newborn neurons, and Olig2(+) oligodendrocyte populations. Consistent with the integral role of subventricular zone neural progenitors in generation and maintenance of olfactory bulb interneurons, this wave of telomerase-dependent neurogenesis resulted in alleviation of hyposmia and recovery of innate olfactory avoidance responses. Accumulating evidence implicating telomere damage as a driver of age-associated organ decline and disease risk and the marked reversal of systemic degenerative phenotypes in adult mice observed here support the development of regenerative strategies designed to restore telomere integrity.
Insights
Reactivating telomerase in aging mice reversed age-associated degeneration and restored organ function. This study shows telomere maintenance can combat aging, offering hope for regenerative medicine strategies.
Area of Science:
- Gerontology
- Molecular Biology
- Regenerative Medicine
Background:
- Aging populations drive demand for regenerative therapies to counter organ decline.
- Intrinsic factors, like genomic damage, contribute to age-associated diseases.
- Telomere shortening and dysfunction lead to tissue atrophy and organ failure.
Purpose of the Study:
- To investigate if reactivating telomerase can reverse existing degeneration in mice with telomere dysfunction.
- To assess the impact of telomere restoration on multi-system aging phenotypes.
Main Methods:
- Engineered mice with an inducible telomerase reverse transcriptase (TERT-ER) allele.
- Utilized 4-hydroxytamoxifen (4-OHT) to activate telomerase in late-generation mice with short telomeres.
- Evaluated telomere length, DNA damage signaling, cellular proliferation, and organ function post-reactivation.
Main Results:
- Telomerase reactivation extended telomeres and reduced DNA damage signaling.
- Degenerative phenotypes across multiple organs (testes, spleen, intestines) were eliminated.
- Neurodegeneration was reversed, with restored neural progenitor and neuron populations, improving olfactory function.
Conclusions:
- Somatic telomerase reactivation can reverse established, multi-system degenerative phenotypes in adult mice.
- Restoring telomere integrity is a viable regenerative strategy for age-associated organ decline.
- Findings support telomere maintenance as a therapeutic target for aging and related diseases.
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