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Published on: January 1, 2018
Emerging roles of H3K9me3, SETDB1 and SETDB2 in therapy-induced cellular reprogramming
Joachim Torrano1, Abdullah Al Emran1,2, Heinz Hammerlindl1
1The University of Queensland Diamantina Institute, University of Queensland, Brisbane, QLD, Australia.
Background:
A multitude of recent studies has observed common epigenetic changes develop in tumour cells of multiple lineages following exposure to stresses such as hypoxia, chemotherapeutics, immunotherapy or targeted therapies. A significant increase in the transcriptionally repressive mark trimethylated H3K9 (H3K9me3) is becoming associated with treatment-resistant phenotypes suggesting upstream mechanisms may be a good target for therapy. We have reported that the increase in H3K9me3 is derived from the methyltransferases SETDB1 and SETDB2 following treatment in melanoma, lung, breast and colorectal cancer cell lines, as well as melanoma patient data. Other groups have observed a number of characteristics such as epigenetic remodelling, increased interferon signalling, cell cycle inhibition and apoptotic resistance that have also been reported by us suggesting these independent studies are investigating similar or identical phenomena.
Main Body:
Firstly, this review introduces reports of therapy-induced reprogramming in cancer populations with highly similar slow-cycling phenotypes that suggest a role for both IFN signalling and epigenetic remodelling in the acquisition of drug tolerance. We then describe plausible connections between the type 1 IFN pathway, slow-cycling phenotypes and these epigenetic mechanisms before reviewing recent evidence on the roles of SETDB1 and SETDB2, alongside their product H3K9me3, in treatment-induced reprogramming and promotion of drug resistance. The potential mechanisms for the activation of SETDB1 and SETDB2 and how they might arise in treatment is also discussed mechanistically, with a focus on their putative induction by inflammatory signalling. Moreover, we theorise their timely role in attenuating inflammation after their activation in order to promote a more resilient phenotype through homeostatic coordination of H3K9me3. We also examine the relatively uncharacterized functions of SETDB2 with some comparison to the more well-known qualities of SETDB1. Finally, an emerging overall mechanism for the epigenetic maintenance of this transient phenotype is outlined by summarising the collective literature herein.
Conclusion:
A number of converging phenotypes outline a stress-responsive mechanism for SETDB1 and SETDB2 activation and subsequent increased survival, providing novel insights into epigenetic biology. A clearer understanding of how SETDB1/2-mediated transcriptional reprogramming can subvert treatment responses will be invaluable in improving length and efficacy of modern therapies.
Insights
Cancer cells develop drug resistance through epigenetic changes involving SETDB1 and SETDB2, which increase H3K9me3. Understanding this mechanism can improve cancer therapies.
Area of Science:
- Epigenetics
- Cancer Biology
- Molecular Oncology
Background:
- Epigenetic modifications, including increased H3K9me3, are observed in various cancer types following stress treatments.
- This repressive mark is linked to treatment-resistant phenotypes, suggesting targeting upstream mechanisms could be therapeutic.
- SETDB1 and SETDB2 methyltransferases are identified as key drivers of H3K9me3 increase in response to therapy.
Purpose of the Study:
- To review therapy-induced epigenetic reprogramming in cancer.
- To explore the connection between type 1 IFN signaling, slow-cycling phenotypes, and epigenetic mechanisms.
- To discuss the roles of SETDB1 and SETDB2 in treatment resistance and their potential activation pathways.
Main Methods:
- Literature review of studies on epigenetic changes in cancer therapy response.
- Analysis of the roles of SETDB1, SETDB2, and H3K9me3 in treatment-induced reprogramming.
- Mechanistic discussion of SETDB1/2 activation, potentially via inflammatory signaling.
Main Results:
- Converging evidence suggests a stress-responsive mechanism involving SETDB1 and SETDB2 activation.
- Increased H3K9me3 by SETDB1/2 contributes to drug tolerance and promotes resistant phenotypes.
- These enzymes may play a role in attenuating inflammation to foster a resilient cellular state.
Conclusions:
- A stress-responsive epigenetic mechanism involving SETDB1/2 activation and H3K9me3 is identified.
- Understanding SETDB1/2-mediated reprogramming is crucial for enhancing modern cancer therapy efficacy.
- This research offers insights into epigenetic biology and potential therapeutic targets for overcoming treatment resistance.
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