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Updated: May 31, 2026

Systems Biology of Metabolic Regulation by Estrogen Receptor Signaling in Breast Cancer
Published on: March 17, 2016
Functional genomics reveal that the serine synthesis pathway is essential in breast cancer
Richard Possemato1, Kevin M Marks, Yoav D Shaul
1Whitehead Institute for Biomedical Research, Nine Cambridge Center, Cambridge, Massachusetts 02142, USA.
Abstract:
Cancer cells adapt their metabolic processes to drive macromolecular biosynthesis for rapid cell growth and proliferation. RNA interference (RNAi)-based loss-of-function screening has proven powerful for the identification of new and interesting cancer targets, and recent studies have used this technology in vivo to identify novel tumour suppressor genes. Here we developed a method for identifying novel cancer targets via negative-selection RNAi screening using a human breast cancer xenograft model at an orthotopic site in the mouse. Using this method, we screened a set of metabolic genes associated with aggressive breast cancer and stemness to identify those required for in vivo tumorigenesis. Among the genes identified, phosphoglycerate dehydrogenase (PHGDH) is in a genomic region of recurrent copy number gain in breast cancer and PHGDH protein levels are elevated in 70% of oestrogen receptor (ER)-negative breast cancers. PHGDH catalyses the first step in the serine biosynthesis pathway, and breast cancer cells with high PHGDH expression have increased serine synthesis flux. Suppression of PHGDH in cell lines with elevated PHGDH expression, but not in those without, causes a strong decrease in cell proliferation and a reduction in serine synthesis. We find that PHGDH suppression does not affect intracellular serine levels, but causes a drop in the levels of α-ketoglutarate, another output of the pathway and a tricarboxylic acid (TCA) cycle intermediate. In cells with high PHGDH expression, the serine synthesis pathway contributes approximately 50% of the total anaplerotic flux of glutamine into the TCA cycle. These results reveal that certain breast cancers are dependent upon increased serine pathway flux caused by PHGDH overexpression and demonstrate the utility of in vivo negative-selection RNAi screens for finding potential anticancer targets.
Insights
Researchers identified phosphoglycerate dehydrogenase (PHGDH) as a key metabolic target in aggressive breast cancer. Suppressing PHGDH halts tumor growth by disrupting the serine synthesis pathway and glutamine metabolism in vivo.
Area of Science:
- Oncology
- Metabolic pathways
- Gene function
Background:
- Cancer cells reprogram metabolism for growth and proliferation.
- RNA interference (RNAi) screening is a powerful tool for identifying cancer targets.
- In vivo screening models are crucial for understanding tumorigenesis.
Purpose of the Study:
- To develop and apply a negative-selection RNAi screening method for identifying novel cancer targets.
- To identify metabolic genes essential for in vivo breast cancer growth.
- To investigate the role of phosphoglycerate dehydrogenase (PHGDH) in breast cancer.
Main Methods:
- Developed an in vivo negative-selection RNAi screening method using a human breast cancer xenograft model.
- Screened metabolic genes associated with aggressive breast cancer and stemness.
- Utilized RNA interference to suppress PHGDH expression in breast cancer cell lines.
Main Results:
- Identified phosphoglycerate dehydrogenase (PHGDH) as a critical gene for in vivo tumorigenesis.
- PHGDH is overexpressed in ER-negative breast cancers and drives serine biosynthesis.
- PHGDH suppression reduced cell proliferation and serine synthesis, impacting TCA cycle anaplerosis.
- PHGDH suppression decreased alpha-ketoglutarate levels, a TCA cycle intermediate.
Conclusions:
- Certain breast cancers depend on PHGDH-driven serine synthesis pathway flux for growth.
- PHGDH is a potential therapeutic target for aggressive breast cancers.
- In vivo negative-selection RNAi screens are effective for discovering anticancer targets.
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