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Updated: Jul 3, 2026

Lineage Tracing of Inducible Fluorescently-Labeled Stem Cells in the Adult Mouse Brain
Published on: May 20, 2022
Generation of mTert-GFP mice as a model to identify and study tissue progenitor cells
David T Breault1, Irene M Min, Diana L Carlone
1Divisions of Endocrinology and Gastroenterology, Children's Hospital Boston, Harvard Medical School, Boston, MA 02115, USA. david.breault@childrens.harvard.edu
Abstract:
Stem cells hold great promise for regenerative medicine, but remain elusive in many tissues in part because universal markers of "stemness" have not been identified. The ribonucleoprotein complex telomerase catalyzes the extension of chromosome ends, and its expression is associated with failure of cells to undergo cellular senescence. Because such resistance to senescence is a common characteristic of many stem cells, we hypothesized that telomerase expression may provide a selective biomarker for stem cells in multiple tissues. In fact, telomerase expression has been demonstrated within hematopoietic stem cells. We therefore generated mouse telomerase reverse transcriptase (mTert)-GFP-transgenic mice and assayed the ability of mTert-driven GFP to mark tissue stem cells in testis, bone marrow (BM), and intestine. mTert-GFP mice were generated by using a two-step embryonic stem cell-based strategy, which enabled primary and secondary screening of stably transfected clones before blastocyst injection, greatly increasing the probability of obtaining mTert reporter mice with physiologically appropriate regulation of GFP expression. Analysis of adult mice showed that GFP is expressed in differentiating male germ cells, is enriched among BM-derived hematopoietic stem cells, and specifically marks long-term BrdU-retaining intestinal crypt cells. In addition, telomerase-expressing GFP(+) BM cells showed long-term, serial, multilineage BM reconstitution, fulfilling the functional definition of hematopoietic stem cells. Together, these data provide direct evidence that mTert-GFP expression marks progenitor cells in blood and small intestine, validating these mice as a useful tool for the prospective identification, isolation, and functional characterization of progenitor/stem cells from multiple tissues.
Insights
Telomerase expression, a marker for stemness, was investigated using mouse telomerase reverse transcriptase (mTert)-GFP mice. This study identifies mTert-GFP as a reliable biomarker for identifying stem and progenitor cells in multiple tissues.
Area of Science:
- Stem cell biology
- Regenerative medicine
- Molecular biology
Background:
- Universal stem cell markers remain elusive, hindering regenerative medicine.
- Telomerase expression prevents cellular senescence, a trait common to many stem cells.
- Telomerase is known to be expressed in hematopoietic stem cells.
Purpose of the Study:
- To investigate if telomerase expression can serve as a universal biomarker for stem cells.
- To generate and validate mouse telomerase reverse transcriptase (mTert)-GFP transgenic mice for marking stem cells.
- To assess mTert-GFP expression in various tissues, including testis, bone marrow, and intestine.
Main Methods:
- Generated mTert-GFP transgenic mice using a two-step embryonic stem cell-based strategy.
- Screened stably transfected clones before blastocyst injection for optimal GFP expression.
- Analyzed GFP expression in adult mice tissues (testis, bone marrow, intestine).
- Assessed the functional capacity of GFP-positive bone marrow cells for long-term reconstitution.
Main Results:
- GFP expression was observed in differentiating male germ cells, enriched in bone marrow hematopoietic stem cells, and specifically marked intestinal crypt cells.
- Bone marrow cells expressing GFP demonstrated long-term, serial, multilineage reconstitution capacity.
- mTert-GFP expression successfully marked progenitor cells in blood and the small intestine.
Conclusions:
- mTert-GFP expression serves as a reliable biomarker for identifying stem and progenitor cells in multiple tissues.
- These transgenic mice are a valuable tool for prospective identification, isolation, and functional characterization of stem cells.
- The findings advance the potential of telomerase as a universal marker for stemness in regenerative medicine.

