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Published on: January 27, 2014
HAAO‑derived quinolinic acid fuels FDPS‑dependent AR signaling and sensitizes prostate cancer to combination therapy
Hongchang Zhang1,2, Tingting Feng3, Mengxue Lv3
1College of Life Sciences, University of Chinese Academy of Sciences, Beijing, China.
Abstract:
Emerging evidence highlights that metabolic reprogramming profoundly shapes the tumor microenvironment and immune evasion in prostate cancer. However, the functional role and mechanisms of tryptophan metabolism in prostate cancer progression remain unclear. Through single-cell transcriptomic analysis, we identified one tumor cell subtype characterized by high expression of 3-hydroxyanthranilate 3,4-dioxygenase (HAAO) and enhanced kynurenine pathway activity. This subpopulation leads to the accumulation of quinolinic acid (QA), a metabolic intermediate that could activate the mevalonate (MVA) pathway. Mechanistically, QA directly binds to and stabilizes farnesyl diphosphate synthase (FDPS), a key MVA pathway enzyme, thereby enhancing cholesterol biosynthesis and fueling androgen receptor (AR)-driven transcriptional programs. This HAAO/QA-FDPS axis establishes a metabolic crosstalk that links tryptophan catabolism to lipid metabolism, sustaining prostate tumor progression. Furthermore, an integrated prognostic model incorporating this pathway signatures outperforms other clinical variables alone, and HAAO-high tumors exhibit heightened sensitivity to combined inhibition of the kynurenine and AR pathways. Our study unveils a novel metabolic vulnerability in prostate cancer and provides a mechanistic rationale for targeting the HAAO/QA-FDPS axis for therapy.
Insights
Prostate cancer cells utilize tryptophan metabolism to fuel growth by activating the mevalonate pathway. Targeting this HAAO/QA-FDPS axis offers a new therapeutic strategy for prostate cancer.
Area of Science:
- Oncology
- Metabolic pathways
- Cancer immunology
Background:
- Metabolic reprogramming is crucial in prostate cancer progression and immune evasion.
- The role of tryptophan metabolism in prostate cancer remains largely unknown.
Purpose of the Study:
- To elucidate the functional role and mechanisms of tryptophan metabolism in prostate cancer.
- To identify novel therapeutic targets within these metabolic pathways.
Main Methods:
- Single-cell transcriptomic analysis to identify tumor cell subtypes.
- Investigated the interaction between quinolinic acid (QA) and the mevalonate (MVA) pathway enzyme farnesyl diphosphate synthase (FDPS).
Main Results:
- Identified a prostate cancer cell subtype with high 3-hydroxyanthranilate 3,4-dioxygenase (HAAO) and kynurenine pathway activity.
- This leads to quinolinic acid (QA) accumulation, activating the MVA pathway by stabilizing FDPS.
- This HAAO/QA-FDPS axis links tryptophan catabolism to lipid metabolism, promoting tumor progression and androgen receptor (AR) signaling.
Conclusions:
- Discovered a novel metabolic vulnerability in prostate cancer involving the HAAO/QA-FDPS axis.
- This pathway crosstalk supports tumor growth and suggests a potential therapeutic target.
- HAAO-high tumors show sensitivity to combined kynurenine and AR pathway inhibition, indicating a new treatment strategy.
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