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Immunostaining for DNA Modifications: Computational Analysis of Confocal Images
Published on: September 7, 2017
Methyltransferases mediate cell memory of a genotoxic insult
R E Rugo1, J T Mutamba, K N Mohan
1Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Abstract:
Characterization of the direct effects of DNA-damaging agents shows how DNA lesions lead to specific mutations. Yet, serum from Hiroshima survivors, Chernobyl liquidators and radiotherapy patients can induce a clastogenic effect on naive cells, showing indirect induction of genomic instability that persists years after exposure. Such indirect effects are not restricted to ionizing radiation, as chemical genotoxins also induce heritable and transmissible genomic instability phenotypes. Although such indirect induction of genomic instability is well described, the underlying mechanism has remained enigmatic. Here, we show that mouse embryonic stem cells exposed to γ-radiation bear the effects of the insult for weeks. Specifically, conditioned media from the progeny of exposed cells can induce DNA damage and homologous recombination in naive cells. Notably, cells exposed to conditioned media also elicit a genome-destabilizing effect on their neighbouring cells, thus demonstrating transmission of genomic instability. Moreover, we show that the underlying basis for the memory of an insult is completely dependent on two of the major DNA cytosine methyltransferases, Dnmt1 and Dnmt3a. Targeted disruption of these genes in exposed cells completely eliminates transmission of genomic instability. Furthermore, transient inactivation of Dnmt1, using a tet-suppressible allele, clears the memory of the insult, thus protecting neighbouring cells from indirect induction of genomic instability. We have thus demonstrated that a single exposure can lead to long-term, genome-destabilizing effects that spread from cell to cell, and we provide a specific molecular mechanism for these persistent bystander effects. Collectively, our results impact the current understanding of risks from toxin exposures and suggest modes of intervention for suppressing genomic instability in people exposed to carcinogenic genotoxins.
Insights
Genomic instability can spread between cells long after exposure to DNA-damaging agents. This persistent effect is mediated by DNA cytosine methyltransferases (Dnmt1 and Dnmt3a), offering potential intervention targets.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- DNA-damaging agents can cause direct mutations.
- Exposures to radiation and toxins can induce indirect, persistent genomic instability in cells.
- The mechanisms behind this transmissible genomic instability are not fully understood.
Purpose of the Study:
- To investigate the long-term, cell-to-cell transmission of genomic instability after DNA damage.
- To elucidate the molecular mechanisms underlying this persistent, indirect genomic instability.
- To identify potential targets for intervention against toxin-induced genomic instability.
Main Methods:
- Exposing mouse embryonic stem cells to gamma radiation.
- Analyzing conditioned media from exposed cells for genotoxic effects on naive cells.
- Investigating the role of DNA cytosine methyltransferases (Dnmt1 and Dnmt3a) in transmitting genomic instability.
- Utilizing targeted gene disruption and transient inactivation of Dnmt1.
Main Results:
- Conditioned media from irradiated cells induced DNA damage and homologous recombination in naive cells.
- Genomic instability was transmitted from exposed cells to neighboring naive cells.
- The transmission of genomic instability was dependent on Dnmt1 and Dnmt3a.
- Transient inactivation of Dnmt1 eliminated the memory of the insult and protected neighboring cells.
Conclusions:
- A single exposure to DNA-damaging agents can induce long-lasting, transmissible genomic instability.
- DNA cytosine methyltransferases (Dnmt1 and Dnmt3a) are critical mediators of this persistent bystander effect.
- These findings provide a molecular mechanism for indirect genomic instability and suggest intervention strategies.
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