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Published on: July 22, 2014
Uridine-sensitized screening identifies genes and metabolic regulators of nucleotide synthesis
Abigail Strefeler1, Zakery N Baker2, Sylvain Chollet1
1Department of Immunobiology, University of Lausanne, Epalinges, Switzerland.
Abstract:
Nucleotides are essential for nucleic acid synthesis, signaling, and metabolism, and can be synthesized de novo or through salvage. Rapidly proliferating cells require large amounts of nucleotides, making nucleotide metabolism a widely exploited target for cancer therapy. However, resistance frequently emerges, highlighting the need for a deeper understanding of nucleotide regulation. Here, we harness uridine salvage and CRISPR-Cas9 screening to reveal regulators of de novo pyrimidine synthesis. We identify several factors and report that pyrimidine synthesis can continue in the absence of coenzyme Q (CoQ), the canonical electron acceptor in de novo synthesis. We further investigate NUDT5 and report its conserved interaction with PPAT, the rate-limiting enzyme in purine synthesis. We show that in the absence of NUDT5, hyperactive purine synthesis siphons the phosphoribosyl pyrophosphate (PRPP) pool at the expense of pyrimidine synthesis, promoting resistance to chemotherapy. Intriguingly, the interaction between NUDT5 and PPAT appears to be disrupted by PRPP, highlighting intricate allosteric regulation. Our findings reveal a fundamental mechanism for maintaining nucleotide balance and position NUDT5 as a potential biomarker for predicting resistance to chemotherapy.
Insights
Researchers uncovered how cells balance nucleotide production, identifying NUDT5 as key to preventing purine synthesis from disrupting pyrimidine production, which can lead to chemotherapy resistance.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Biology
Background:
- Nucleotide synthesis is crucial for rapidly proliferating cells, making it a cancer therapy target.
- Emerging resistance necessitates a deeper understanding of nucleotide metabolism regulation.
Purpose of the Study:
- To identify novel regulators of de novo pyrimidine synthesis.
- To elucidate the role of NUDT5 in nucleotide balance and chemotherapy resistance.
Main Methods:
- CRISPR-Cas9 screening was employed to identify regulators of de novo pyrimidine synthesis.
- Biochemical assays were used to investigate the interaction between NUDT5 and PPAT.
Main Results:
- Several novel regulators of pyrimidine synthesis were identified.
- Pyrimidine synthesis can proceed without coenzyme Q (CoQ).
- NUDT5 interacts with PPAT, regulating phosphoribosyl pyrophosphate (PRPP) availability and impacting pyrimidine synthesis.
- Loss of NUDT5 leads to hyperactive purine synthesis, depleting PRPP and promoting chemotherapy resistance.
Conclusions:
- NUDT5 plays a critical role in maintaining nucleotide homeostasis by preventing purine synthesis from overpowering pyrimidine synthesis.
- The interaction between NUDT5 and PPAT is allosterically regulated by PRPP.
- NUDT5 is a potential biomarker for predicting chemotherapy resistance.
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