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Targeting Glutamine Metabolism in Breast Cancer with Aminooxyacetate
Preethi Korangath1, Wei Wen Teo1, Helen Sadik1
1Department of Oncology, Johns Hopkins University School of Medicine, Baltimore, Maryland.
Purpose:
Glutamine addiction in c-MYC-overexpressing breast cancer is targeted by the aminotransferase inhibitor, aminooxyacetate (AOA). However, the mechanism of ensuing cell death remains unresolved.
Experimental Design:
A correlation between glutamine dependence for growth and c-MYC expression was studied in breast cancer cell lines. The cytotoxic effects of AOA, its correlation with high c-MYC expression, and effects on enzymes in the glutaminolytic pathway were investigated. AOA-induced cell death was assessed by measuring changes in metabolite levels by magnetic resonance spectroscopy (MRS), the effects of amino acid depletion on nucleotide synthesis by cell-cycle and bromodeoxyuridine (BrdUrd) uptake analysis, and activation of the endoplasmic reticulum (ER) stress-mediated pathway. Antitumor effects of AOA with or without common chemotherapies were determined in breast cancer xenografts in immunodeficient mice and in a transgenic MMTV-rTtA-TetO-myc mouse mammary tumor model.
Results:
We established a direct correlation between c-MYC overexpression, suppression of glutaminolysis, and AOA sensitivity in most breast cancer cells. MRS, cell-cycle analysis, and BrdUrd uptake measurements indicated depletion of aspartic acid and alanine leading to cell-cycle arrest at S-phase by AOA. Activation of components of the ER stress-mediated pathway, initiated through GRP78, led to apoptotic cell death. AOA inhibited growth of SUM159, SUM149, and MCF-7 xenografts and c-myc-overexpressing transgenic mouse mammary tumors. In MDA-MB-231, AOA was effective only in combination with chemotherapy.
Conclusions:
AOA mediates its cytotoxic effects largely through the stress response pathway. The preclinical data of AOA's effectiveness provide a strong rationale for further clinical development, particularly for c-MYC-overexpressing breast cancers.
Insights
Aminooxyacetate (AOA) targets glutamine addiction in c-MYC-overexpressing breast cancer by inducing cell death via the endoplasmic reticulum stress pathway. Preclinical data support AOA
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Glutamine addiction is a hallmark of c-MYC-overexpressing breast cancer.
- Aminooxyacetate (AOA), an aminotransferase inhibitor, targets this metabolic vulnerability.
- The precise mechanism of AOA-induced cell death in this context requires elucidation.
Purpose of the Study:
- To investigate the correlation between c-MYC expression and glutamine dependence in breast cancer.
- To determine the cytotoxic mechanisms of AOA, focusing on metabolic and stress-response pathways.
- To evaluate the preclinical efficacy of AOA in breast cancer models.
Main Methods:
- Correlation analysis of c-MYC expression and glutamine dependence.
- Assessment of AOA's cytotoxic effects using magnetic resonance spectroscopy (MRS) and cell-cycle analysis.
- Investigation of endoplasmic reticulum (ER) stress pathway activation.
- In vivo studies using breast cancer xenografts and a transgenic mouse model.
Main Results:
- A direct correlation was found between c-MYC overexpression, suppressed glutaminolysis, and AOA sensitivity.
- AOA induced S-phase cell-cycle arrest due to aspartic acid and alanine depletion.
- AOA triggered apoptotic cell death via ER stress pathway activation (GRP78).
- AOA demonstrated antitumor effects in xenografts and transgenic models, with combination therapy needed for some models.
Conclusions:
- AOA exerts cytotoxic effects primarily through the ER stress response pathway.
- Preclinical data strongly support the further clinical development of AOA for c-MYC-overexpressing breast cancers.
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