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Updated: May 17, 2026

Global Level Quantification of Histone Post-Translational Modifications in a 3D Cell Culture Model of Hepatic Tissue
Published on: May 5, 2022
Modifying metabolically sensitive histone marks by inhibiting glutamine metabolism affects gene expression and alters
Natalie E Simpson1, Volodymyr P Tryndyak, Marta Pogribna
1Division of Biochemical Toxicology, National Center for Toxicological Research, Jefferson, AR, USA.
Abstract:
The interplay of metabolism and epigenetic regulatory mechanisms has become a focal point for a better understanding of cancer development and progression. In this study, we have acquired data supporting previous observations that demonstrate glutamine metabolism affects histone modifications in human breast cancer cell lines. Treatment of non-invasive epithelial (T-47D and MDA-MB-361) and invasive mesenchymal (MDA-MB-231 and Hs-578T) breast cancer cell lines with the glutaminase inhibitor, Compound 968, resulted in cytotoxicity in all cell lines, with the greatest effect being observed in MDA-MB-231 breast cancer cells. Compound 968-treatment induced significant downregulation of 20 critical cancer-related genes, the majority of which are anti-apoptotic and/or promote metastasis, including AKT, BCL2, BCL2L1, CCND1, CDKN3, ERBB2, ETS1, E2F1, JUN, KITLG, MYB, and MYC. Histone H3K4me3, a mark of transcriptional activation, was reduced at the promoters of all but one of these critical cancer genes. The decrease in histone H3K4me3 at global and gene-specific levels correlated with reduced expression of SETD1 and ASH2L, genes encoding the histone H3K4 methyltransferase complex. Further, the expression of other epigenetic regulatory genes, known to be downregulated during apoptosis (e.g., DNMT1, DNMT3B, SETD1 and SIRT1), was also downregulated by Compound 968. These changes in gene expression and histone modifications were accompanied by the activation of apoptosis, and decreased invasiveness and resistance of MDA-MB-231 cells to chemotherapeutic drug doxorubicin. The results of this study provide evidence to a link between cytotoxicity caused by inhibiting glutamine metabolism with alterations of the epigenome of breast cancer cells and suggest that modification of intracellular metabolism may enhance the efficiency of epigenetic therapy.
Insights
Inhibiting glutamine metabolism with Compound 968 reduces cancer cell survival and metastasis by altering epigenetic modifications, including histone H3K4me3 levels. This suggests metabolic interventions can enhance epigenetic cancer therapies.
Area of Science:
- Cancer Biology
- Epigenetics
- Metabolism
Background:
- Metabolism and epigenetics interplay in cancer development.
- Glutamine metabolism's role in histone modifications is under investigation.
- Breast cancer cell lines exhibit varying invasiveness.
Purpose of the Study:
- To investigate the effects of glutaminase inhibition on breast cancer cell lines.
- To determine the impact of glutamine metabolism on epigenetic regulation and gene expression.
- To explore the potential of metabolic interventions in enhancing cancer therapy.
Main Methods:
- Treatment of human breast cancer cell lines (T-47D, MDA-MB-361, MDA-MB-231, Hs-578T) with glutaminase inhibitor Compound 968.
- Analysis of cytotoxicity, gene expression (including cancer-related and epigenetic genes), and histone H3K4me3 modifications.
- Assessment of apoptosis, invasiveness, and drug resistance.
Main Results:
- Compound 968 induced cytotoxicity in all tested cell lines, most significantly in MDA-MB-231 cells.
- Treatment downregulated critical cancer-related genes (e.g., AKT, MYC) and key epigenetic regulators (SETD1, ASH2L, DNMT1).
- Decreased histone H3K4me3 levels correlated with reduced gene expression, increased apoptosis, and decreased invasiveness and doxorubicin resistance in MDA-MB-231 cells.
Conclusions:
- Inhibiting glutamine metabolism alters the epigenome of breast cancer cells, leading to cytotoxicity.
- Metabolic interventions can impact histone modifications and gene expression profiles.
- Targeting intracellular metabolism may improve the efficacy of epigenetic therapies for breast cancer.
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