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Published on: August 21, 2013
Reduced Mcm2 expression results in severe stem/progenitor cell deficiency and cancer
Steven C Pruitt1, Kimberly J Bailey, Amy Freeland
1Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Elm and Carlton Streets, Buffalo, New York 14263, USA. steven.pruitt@roswellpark.org
Abstract:
Mcm2 is a component of the DNA replication licensing complex that marks DNA replication origins during G1 of the cell cycle for use in the subsequent S-phase. It is expressed in stem/progenitor cells in a variety of regenerative tissues in mammals. Here, we have used the Mcm2 gene to develop a transgenic mouse in which somatic stem/progenitor cells can be genetically modified in the adult. In these mice, a tamoxifen-inducible form of Cre recombinase is integrated 3' to the Mcm2 coding sequence and expressed via an internal ribosome entry site (IRES). Heterozygous Mcm2(IRES-CreERT2/wild-type (wt)) mice are phenotypically indistinguishable from wild-type at least through 1 year of age. In bigenic Mcm2(IRES-CreERT2/wt); Z/EG reporter mice, tamoxifen-dependent enhanced green fluorescence protein expression is inducible in a wide variety of somatic stem cells and their progeny. However, in Mcm2(IRES-CreERT2/IRES-CreERT2) homozygous embryos or mouse embryonic fibroblasts, Mcm2 is reduced to approximately one-third of wild-type levels. Despite the fact that these mice develop normally and are asymptomatic as young adults, life span is greatly reduced, with most surviving to only approximately 10-12 weeks of age. They demonstrate severe deficiencies in the proliferative cell compartments of a variety of tissues, including the subventricular zone of the brain, muscle, and intestinal crypts. However, the immediate cause of death in most of these animals is cancer, where the majority develop lymphomas. These studies directly demonstrate that deficiencies in the function of the core DNA replication machinery that are compatible with development and survival nonetheless result in a chronic phenotype leading to stem cell deficiency in multiple tissues and cancer. Disclosure of potential conflicts of interest is found at the end of this article.
Insights
Mcm2 deficiency in mice impairs somatic stem cells, leading to reduced lifespan and cancer. This highlights the critical role of DNA replication in maintaining tissue function and preventing disease.
Area of Science:
- Molecular Biology
- Genetics
- Developmental Biology
Background:
- Mcm2 protein is essential for DNA replication licensing in eukaryotic cells.
- Somatic stem cells are crucial for tissue regeneration and repair.
- Understanding stem cell function requires tools to genetically manipulate these cells.
Purpose of the Study:
- To develop a transgenic mouse model for genetic manipulation of somatic stem cells.
- To investigate the role of Mcm2 in stem cell function and organismal health.
- To explore the consequences of impaired DNA replication machinery in vivo.
Main Methods:
- Generation of Mcm2(IRES-CreERT2) transgenic mice.
- Tamoxifen-inducible Cre-lox system for genetic modification.
- Analysis of Mcm2 expression, stem cell proliferation, lifespan, and tumor development.
Main Results:
- Mcm2(IRES-CreERT2) mice allow tamoxifen-inducible genetic modification of somatic stem cells.
- Homozygous Mcm2 deficiency in mice leads to reduced lifespan (10-12 weeks) and severe stem cell defects.
- These mice exhibit deficiencies in brain, muscle, and intestinal stem cell compartments and develop lymphomas.
Conclusions:
- Mcm2 is critical for maintaining somatic stem cell function and preventing cancer.
- Partial deficiencies in DNA replication machinery can be compatible with development but lead to chronic disease.
- This study provides a valuable tool for studying stem cell biology and DNA replication.
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