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Updated: Jul 7, 2025

Assays for Validating Histone Acetyltransferase Inhibitors
Published on: August 6, 2020
The Methyltransferases METTL7A and METTL7B Confer Resistance to Thiol-Based Histone Deacetylase Inhibitors
Robert W Robey1, Christina M Fitzsimmons1, Wilfried M Guiblet1
1Laboratory of Cell Biology, Center for Cancer Research, National Cancer Institute, NIH, Bethesda, Maryland.
Abstract:
Histone deacetylase inhibitors (HDACi) are part of a growing class of epigenetic therapies used for the treatment of cancer. Although HDACis are effective in the treatment of T-cell lymphomas, treatment of solid tumors with this class of drugs has not been successful. Overexpression of the multidrug resistance protein P-glycoprotein (P-gp), encoded by ABCB1, is known to confer resistance to the HDACi romidepsin in vitro, yet increased ABCB1 expression has not been associated with resistance in patients, suggesting that other mechanisms of resistance arise in the clinic. To identify alternative mechanisms of resistance to romidepsin, we selected MCF-7 breast cancer cells with romidepsin in the presence of the P-gp inhibitor verapamil to reduce the likelihood of P-gp-mediated resistance. The resulting cell line, MCF-7 DpVp300, does not express P-gp and was found to be selectively resistant to romidepsin but not to other HDACis such as belinostat, panobinostat, or vorinostat. RNA-sequencing analysis revealed upregulation of the mRNA coding for the putative methyltransferase, METTL7A, whose paralog, METTL7B, was previously shown to methylate thiol groups on hydrogen sulfide and captopril. As romidepsin has a thiol as the zinc-binding moiety, we hypothesized that METTL7A could inactivate romidepsin and other thiol-based HDACis via methylation of the thiol group. We demonstrate that expression of METTL7A or METTL7B confers resistance to thiol-based HDACis and that both enzymes are capable of methylating thiol-containing HDACis. We thus propose that METTL7A and METTL7B confer resistance to thiol-based HDACis by methylating and inactivating the zinc-binding thiol.
Insights
Histone deacetylase inhibitors (HDACi) can cause cancer resistance. Researchers found METTL7A and METTL7B enzymes can inactivate thiol-based HDACi drugs by methylation, offering new insights into cancer treatment resistance.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Histone deacetylase inhibitors (HDACi) are epigenetic cancer therapies.
- While effective for T-cell lymphomas, HDACi efficacy is limited in solid tumors.
- P-glycoprotein (P-gp) confers in vitro resistance to romidepsin, but clinical resistance mechanisms remain unclear.
Purpose of the Study:
- To identify alternative mechanisms of resistance to the HDACi romidepsin.
- To investigate the role of METTL7A and METTL7B in conferring resistance to thiol-based HDACi.
Main Methods:
- Developed a romidepsin-resistant cell line (MCF-7 DpVp300) lacking P-gp expression.
- Utilized RNA-sequencing to identify differentially expressed genes.
- Performed enzymatic assays to confirm methylation activity of METTL7A/METTL7B on thiol-containing HDACi.
Main Results:
- MCF-7 DpVp300 cells showed selective resistance to romidepsin, not other HDACis.
- Upregulation of METTL7A mRNA was observed in resistant cells.
- METTL7A and METTL7B were shown to methylate and inactivate thiol-based HDACi, conferring resistance.
Conclusions:
- METTL7A and METTL7B are novel mechanisms of resistance to thiol-based HDACi in cancer.
- Enzymatic inactivation via methylation of the zinc-binding thiol group is a key resistance pathway.
- Understanding these mechanisms may guide development of more effective cancer therapies.
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