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Published on: September 26, 2015
Transcription factor NKX2-1 drives serine and glycine synthesis addiction in cancer
Elien Heylen1,2, Paulien Verstraete1,2, Linde Van Aerschot1,2
1Laboratory for Disease Mechanisms in Cancer, Department of Oncology, KU Leuven, Leuven, Belgium.
Background:
One-third of cancers activate endogenous synthesis of serine/glycine, and can become addicted to this pathway to sustain proliferation and survival. Mechanisms driving this metabolic rewiring remain largely unknown.
Methods:
NKX2-1 overexpressing and NKX2-1 knockdown/knockout T-cell leukaemia and lung cancer cell line models were established to study metabolic rewiring using ChIP-qPCR, immunoblotting, mass spectrometry, and proliferation and invasion assays. Findings and therapeutic relevance were validated in mouse models and confirmed in patient datasets.
Results:
Exploring T-cell leukaemia, lung cancer and neuroendocrine prostate cancer patient datasets highlighted the transcription factor NKX2-1 as putative driver of serine/glycine metabolism. We demonstrate that transcription factor NKX2-1 binds and transcriptionally upregulates serine/glycine synthesis enzyme genes, enabling NKX2-1 expressing cells to proliferate and invade in serine/glycine-depleted conditions. NKX2-1 driven serine/glycine synthesis generates nucleotides and redox molecules, and is associated with an altered cellular lipidome and methylome. Accordingly, NKX2-1 tumour-bearing mice display enhanced tumour aggressiveness associated with systemic metabolic rewiring. Therapeutically, NKX2-1-expressing cancer cells are more sensitive to serine/glycine conversion inhibition by repurposed anti-depressant sertraline, and to etoposide chemotherapy.
Conclusion:
Collectively, we identify NKX2-1 as a novel transcriptional regulator of serine/glycine synthesis addiction across cancers, revealing a therapeutic vulnerability of NKX2-1-driven cancers. Transcription factor NKX2-1 fuels cancer cell proliferation and survival by hyperactivating serine/glycine synthesis, highlighting this pathway as a novel therapeutic target in NKX2-1-positive cancers.
Insights
The transcription factor NKX2-1 drives cancer growth by boosting serine/glycine synthesis. Inhibiting this pathway offers a new therapeutic target for NKX2-1-positive cancers.
Area of Science:
- Oncology
- Cancer Metabolism
- Molecular Biology
Background:
- Approximately one-third of cancers rely on endogenous serine/glycine synthesis for proliferation and survival.
- The precise mechanisms behind this metabolic rewiring are not fully understood.
Purpose of the Study:
- To investigate the role of the transcription factor NKX2-1 in regulating serine/glycine metabolism in cancer.
- To identify potential therapeutic strategies targeting NKX2-1-driven metabolic dependencies.
Main Methods:
- Utilized NKX2-1 overexpressing and knockdown/knockout cell line models (T-cell leukemia, lung cancer).
- Employed ChIP-qPCR, immunoblotting, mass spectrometry, and proliferation/invasion assays.
- Validated findings in mouse models and human patient datasets.
Main Results:
- Identified NKX2-1 as a key regulator that upregulates serine/glycine synthesis enzymes.
- NKX2-1 enables cancer cell proliferation and invasion even in serine/glycine-depleted conditions.
- NKX2-1 expression correlates with altered lipidome, methylome, and increased tumor aggressiveness; sensitive to sertraline and etoposide.
Conclusions:
- NKX2-1 is a novel transcriptional regulator of serine/glycine synthesis addiction in cancers.
- Targeting NKX2-1-driven serine/glycine synthesis presents a therapeutic vulnerability in NKX2-1-positive cancers.
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