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Updated: Oct 24, 2025

Utilizing Murine Inducible Telomerase Alleles in the Studies of Tissue Degeneration/Regeneration and Cancer
Published on: April 13, 2015
Telomerase therapy reverses vascular senescence and extends lifespan in progeria mice
Anahita Mojiri1, Brandon K Walther1,2, Chongming Jiang3
1Center for Cardiovascular Regeneration, Department of Cardiovascular Sciences, Houston Methodist Research Institute, 6670 Bertner Ave., R10-South, Houston, TX 77030, USA.
Insights
Telomerase mRNA therapy rejuvenated vascular cells in Hutchinson-Gilford progeria syndrome (HGPS) models. This approach improved endothelial cell function and extended lifespan in mice, offering a promising treatment for this rapid aging disease.
Area of Science:
- Gerontology
- Vascular Biology
- Stem Cell Biology
Background:
- Hutchinson-Gilford progeria syndrome (HGPS) is a rare genetic disorder causing accelerated aging and premature death, primarily due to cardiovascular complications.
- Current therapies offer only modest lifespan increases, highlighting the need for a deeper understanding of HGPS mechanisms and improved therapeutic strategies.
- Endothelial cells (ECs) from HGPS patients exhibit cellular senescence, including impaired function and DNA damage, contributing to vascular aging.
Purpose of the Study:
- To investigate whether telomere correction using telomerase mRNA can reverse vascular aging hallmarks in HGPS.
- To assess the impact of telomerase treatment on endothelial cell function, morphology, and gene expression in HGPS models.
- To evaluate the therapeutic potential of telomerase in a mouse model of HGPS.
Main Methods:
- Generated endothelial cells (ECs) from induced pluripotent stem cells (iPSCs) of HGPS patients and controls.
- Treated HGPS ECs with telomerase mRNA (hTERT) and assessed cellular and functional parameters.
- Utilized a mouse model of HGPS, administering lentiviral telomerase (mTERT) to evaluate in vivo effects on senescence and lifespan.
Main Results:
- hTERT treatment improved replicative capacity, restored nitric oxide generation, LDL uptake, and angiogenesis in HGPS ECs.
- Telomerase therapy normalized cellular/nuclear morphology, reduced inflammatory markers, and decreased progerin expression in vitro and in vivo.
- mTERT treatment in HGPS mice reduced senescence markers, increased SIRT1 expression, and significantly extended lifespan.
Conclusions:
- Telomerase mRNA therapy effectively rejuvenates vascular cells in HGPS models, addressing key aspects of premature aging.
- This approach demonstrates significant potential for improving endothelial function and extending lifespan in HGPS.
- Vascular rejuvenation via telomerase represents a promising therapeutic strategy for HGPS and other age-related vascular diseases.
Aims:
Hutchinson-Gilford progeria syndrome (HGPS) is an accelerated ageing syndrome associated with premature vascular disease and death due to heart attack and stroke. In HGPS a mutation in lamin A (progerin) alters nuclear morphology and gene expression. Current therapy increases the lifespan of these children only modestly. Thus, greater understanding of the underlying mechanisms of HGPS is required to improve therapy. Endothelial cells (ECs) differentiated from induced pluripotent stem cells (iPSCs) derived from these patients exhibit hallmarks of senescence including replication arrest, increased expression of inflammatory markers, DNA damage, and telomere erosion. We hypothesized that correction of shortened telomeres may reverse these measures of vascular ageing.
Methods And Results:
We generated ECs from iPSCs belonging to children with HGPS and their unaffected parents. Telomerase mRNA (hTERT) was used to treat HGPS ECs. Endothelial morphology and functions were assessed, as well as proteomic and transcriptional profiles with attention to inflammatory markers, DNA damage, and EC identity genes. In a mouse model of HGPS, we assessed the effects of lentiviral transfection of mTERT on measures of senescence, focusing on the EC phenotype in various organs. hTERT treatment of human HGPS ECs improved replicative capacity; restored endothelial functions such as nitric oxide generation, acetylated low-density lipoprotein uptake and angiogenesis; and reduced the elaboration of inflammatory cytokines. In addition, hTERT treatment improved cellular and nuclear morphology, in association with a normalization of the transcriptional profile, effects that may be mediated in part by a reduction in progerin expression and an increase in sirtuin 1 (SIRT1). Progeria mice treated with mTERT lentivirus manifested similar improvements, with a reduction in inflammatory and DNA damage markers and increased SIRT1 in their vasculature and other organs. Furthermore, mTERT therapy increased the lifespan of HGPS mice.
Conclusion:
Vascular rejuvenation using telomerase mRNA is a promising approach for progeria and other age-related diseases.
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