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H4K20me3-Mediated Repression of Inflammatory Genes Is a Characteristic and Targetable Vulnerability of Persister
Valentina Ramponi1, Laia Richart2, Marta Kovatcheva1,3
1Institute for Research in Biomedicine (IRB Barcelona), Barcelona Institute of Science and Technology (BIST), Barcelona, Spain.
Abstract:
Anticancer therapies can induce cellular senescence or drug-tolerant persistence, two types of proliferative arrest that differ in their stability. While senescence is highly stable, persister cells efficiently resume proliferation upon therapy termination, resulting in tumor relapse. Here, we used an ATP-competitive mTOR inhibitor to induce and characterize persistence in human cancer cells of various origins. Using this model and previously described models of senescence, we compared the same cancer cell lines under the two types of proliferative arrest. Persister and senescent cancer cells shared an expanded lysosomal compartment and hypersensitivity to BCL-XL inhibition. However, persister cells lacked other features of senescence, such as loss of lamin B1, senescence-associated β-galactosidase activity, upregulation of MHC-I, and an inflammatory and secretory phenotype (senescence-associated secretory phenotype or SASP). A genome-wide CRISPR/Cas9 screening for genes required for the survival of persister cells revealed that they are hypersensitive to the inhibition of one-carbon (1C) metabolism, which was validated by the pharmacologic inhibition of serine hydroxymethyltransferase, a key enzyme that feeds methyl groups from serine into 1C metabolism. Investigation into the relationship between 1C metabolism and the epigenetic regulation of transcription uncovered the presence of the repressive heterochromatic mark H4K20me3 at the promoters of SASP and IFN response genes in persister cells, whereas it was absent in senescent cells. Moreover, persister cells overexpressed the H4K20 methyltransferases KMT5B/C, and their downregulation unleashed inflammatory programs and compromised the survival of persister cells. In summary, this study identifies distinctive features and actionable vulnerabilities of persister cancer cells and provides mechanistic insight into their low inflammatory activity. Significance: Cell persistence and senescence are distinct states of proliferative arrest induced by cancer therapy, with persister cells being characterized by the silencing of inflammatory genes through the heterochromatic mark H4K20me3. See related commentary by Schmitt, p. 7.
Insights
Cancer therapies create distinct cell states: stable senescence and relapsing persistence. Persister cells, unlike senescent cells, silence inflammatory genes via H4K20me3, offering new therapeutic targets for cancer persistence.
Area of Science:
- Cancer biology
- Cellular senescence
- Drug resistance
Background:
- Anticancer therapies induce proliferative arrest states like senescence and drug-tolerant persistence.
- Senescence is stable, while persistence allows rapid proliferation post-therapy, leading to tumor relapse.
- Understanding the differences between these states is crucial for improving cancer treatment outcomes.
Purpose of the Study:
- To characterize drug-tolerant persister cancer cells induced by an mTOR inhibitor.
- To compare persister cells with senescent cells across various human cancer cell lines.
- To identify unique vulnerabilities and molecular mechanisms underlying cancer cell persistence.
Main Methods:
- Induction and characterization of persistence using an ATP-competitive mTOR inhibitor.
- Comparative analysis of persister and senescent cells, including assays for lamin B1, β-galactosidase, MHC-I, and SASP.
- Genome-wide CRISPR/Cas9 screening to identify genes essential for persister cell survival.
- Pharmacological inhibition of serine hydroxymethyltransferase and investigation of H4K20 methylation.
Main Results:
- Persister and senescent cells share expanded lysosomes and BCL-XL inhibition sensitivity but differ in senescence markers.
- Persister cells are hypersensitive to one-carbon metabolism inhibition, particularly targeting serine hydroxymethyltransferase.
- H4K20me3 represses SASP and IFN response genes in persister cells, mediated by KMT5B/C overexpression.
- Downregulation of KMT5B/C in persister cells activates inflammatory programs and reduces survival.
Conclusions:
- Cancer cell persistence is a distinct state from senescence, characterized by suppressed inflammatory gene expression.
- H4K20me3-mediated epigenetic silencing is a key feature of persister cells, differentiating them from senescent cells.
- Targeting one-carbon metabolism and understanding H4K20 methylation pathways represent actionable vulnerabilities for combating cancer cell persistence and relapse.
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