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Updated: Feb 10, 2026

Studying Triple Negative Breast Cancer Using Orthotopic Breast Cancer Model
Published on: March 20, 2020
AADAT-Driven Metabolic Control of Malate and CoQ10 Shapes Immune Evasion in Triple-Negative Breast Cancer
Megha Chatterjee1, Franklin Gu1,2, Susmita Samanta1
1Department of Molecular and Cell Biology, Baylor College of Medicine, Houston, TX 77030, USA.
Abstract:
Compared to other subtypes of breast cancer, triple-negative breast cancers (TNBC) have fewer treatment options and exhibit a worse prognosis. Through integrated transcriptomic, metabolomic, immunohistochemical, spatial, and clinical analyses, we identify the mitochondrial enzyme, α-aminoadipate aminotransferase (AADAT) as a previously unrecognized metabolic immune checkpoint in TNBC. AADAT mRNA and protein were significantly upregulated in human TNBC, and high AADAT expression was associated with reduced intra-tumoral CD8+ T-cell density and inferior survival. Genetic silencing of AADAT in orthotopic murine TNBC models curtailed primary tumor growth and distant metastasis in a CD8+ T-cell-dependent manner, enhanced effector T-cell activation, and sensitized tumors to dual PD-1/CTLA-4 blockade. Mechanistically, unbiased metabolomics showed increased malate levels after AADAT knockdown. Additionally, 4-hydroxyphenylpyruvate, an essential precursor for coenzyme Q10(CoQ10) biosynthesis, decreased following AADAT knockdown, suggesting an impaired mitochondrial electron transport chain. CoQ10 supplementation restored metabolic balance and reversed malate accumulation caused by AADAT knockdown, indicating that AADAT helps maintain CoQ10-supported redox homeostasis, thereby preventing malate buildup and export. Notably, malate addition directly boosted CD8+ T-cell oxidative metabolism, increased the NAD+/NADH ratio and reactive oxygen species, and augmented TNF-α and IFN-γ production. In vivo, malate supplementation in drinking water phenocopied AADAT knockdown, restored the response to paclitaxel plus anti-PD-1 therapy in multiple independent syngeneic TNBC models with de novo or acquired resistance to immunotherapy, reduced tumor burden, and prolonged survival. In patient cohorts, higher spatially clustered intra-tumoral malate is associated with co-localization of functional CD8+ T cells, decreased exhausted T-cell neighborhoods, and superior post-chemotherapy outcomes. These data position AADAT as a central metabolic orchestrator of immune escape in TNBC and nominate oral malate as a readily translatable adjuvant to reverse chemo-immunotherapy resistance in TNBC.
Insights
Triple-negative breast cancer (TNBC) has limited treatments. Researchers found the enzyme α-aminoadipate aminotransferase (AADAT) drives immune evasion in TNBC. Targeting AADAT or using oral malate may improve immunotherapy response.
Area of Science:
- Oncology
- Immunology
- Metabolic pathways
Background:
- Triple-negative breast cancer (TNBC) presents significant therapeutic challenges due to limited treatment options and poor prognosis.
- Identifying novel targets is crucial for improving outcomes in TNBC patients.
Purpose of the Study:
- To identify novel metabolic targets that regulate immune evasion in TNBC.
- To investigate the role of α-aminoadipate aminotransferase (AADAT) as a metabolic immune checkpoint in TNBC.
- To explore the therapeutic potential of targeting AADAT or its downstream metabolites in TNBC.
Main Methods:
- Integrated analyses including transcriptomics, metabolomics, immunohistochemistry, and spatial profiling.
- Genetic silencing of AADAT in murine TNBC models.
- Assessment of T-cell responses, tumor growth, and metastasis.
- Metabolomic profiling to identify downstream effects of AADAT modulation.
- Evaluation of CoQ10 supplementation and malate administration in vitro and in vivo.
- Analysis of patient cohorts correlating AADAT expression and intra-tumoral malate with clinical outcomes.
Main Results:
- AADAT is upregulated in human TNBC, correlating with reduced CD8+ T-cell infiltration and worse survival.
- AADAT silencing in mice reduced tumor growth and metastasis via CD8+ T-cells and sensitized tumors to PD-1/CTLA-4 blockade.
- AADAT knockdown increased intra-tumoral malate and decreased CoQ10 biosynthesis, impairing mitochondrial function.
- Malate supplementation enhanced CD8+ T-cell metabolism and cytokine production, phenocopying AADAT knockdown effects.
- Oral malate administration restored response to chemo-immunotherapy in resistant TNBC models.
- High intra-tumoral malate in patients correlated with functional CD8+ T-cells and better post-chemotherapy outcomes.
Conclusions:
- AADAT acts as a metabolic immune checkpoint in TNBC, promoting immune evasion through malate accumulation.
- Targeting AADAT or supplementing with oral malate can reinvigorate anti-tumor immunity.
- Oral malate represents a promising, translatable adjuvant therapy to overcome chemo-immunotherapy resistance in TNBC.
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