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Updated: Dec 31, 2025

Identifying DNA Mutations in Purified Hematopoietic Stem/Progenitor Cells
Published on: February 24, 2014
Stem Cell DNA Damage and Genome Mutation in the Context of Aging and Cancer Initiation
Lara Al Zouabi1,2, Allison J Bardin1,2
1Institut Curie, PSL Research University, CNRS UMR 3215, INSERM U934, Stem Cells and Tissue Homeostasis Group, 75248 Paris, France.
Abstract:
Adult stem cells fuel tissue homeostasis and regeneration through their unique ability to self-renew and differentiate into specialized cells. Thus, their DNA provides instructions that impact the tissue as a whole. Since DNA is not an inert molecule, but rather dynamic, interacting with a myriad of chemical and physical factors, it encounters damage from both endogenous and exogenous sources. Damage to DNA introduces deviations from its normal intact structure and, if left unrepaired, may result in a genetic mutation. In turn, mutant genomes of stem and progenitor cells are inherited in cells of the lineage, thus eroding the genetic information that maintains homeostasis of the somatic cell population. Errors arising in stem and progenitor cells will have a substantially larger impact on the tissue in which they reside than errors occurring in postmitotic differentiated cells. Therefore, maintaining the integrity of genomic DNA within our stem cells is essential to protect the instructions necessary for rebuilding healthy tissues during homeostatic renewal. In this review, we will first discuss DNA damage arising in stem cells and cell- and tissue-intrinsic mechanisms that protect against harmful effects of this damage. Secondly, we will examine how erroneous DNA repair and persistent DNA damage in stem and progenitor cells impact stem cells and tissues in the context of cancer initiation and aging. Finally, we will discuss the use of invertebrate and vertebrate model systems to address unanswered questions on the role that DNA damage and mutation may play in aging and precancerous conditions.
Insights
Adult stem cells maintain tissue health, but their DNA can be damaged. Unrepaired DNA damage in stem cells can lead to mutations, impacting tissue regeneration and potentially causing aging and cancer.
Area of Science:
- Genetics
- Cell Biology
- Regenerative Medicine
Background:
- Adult stem cells are crucial for tissue homeostasis and regeneration.
- DNA within stem cells is vulnerable to damage from internal and external factors.
- Unrepaired DNA damage can lead to mutations, affecting tissue function and potentially leading to disease.
Purpose of the Study:
- To review DNA damage in adult stem cells.
- To discuss protective mechanisms against DNA damage.
- To examine the role of DNA damage and repair in cancer and aging.
Main Methods:
- Review of existing literature on DNA damage in stem cells.
- Discussion of cellular and tissue-intrinsic protective mechanisms.
- Examination of model systems (invertebrate and vertebrate) to study DNA damage effects.
Main Results:
- DNA damage in stem cells can lead to inherited mutations affecting tissue homeostasis.
- Errors in DNA repair and persistent damage are linked to cancer initiation and aging.
- Model systems provide insights into the impact of DNA damage on aging and precancerous conditions.
Conclusions:
- Maintaining genomic integrity in adult stem cells is vital for healthy tissue renewal.
- Dysfunctional DNA repair and accumulated damage in stem cells contribute to aging and cancer.
- Further research using model systems is needed to fully understand these processes.
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