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1.
Nat Metab ; 5(2): 277-293, 2023 02.
Article in English | MEDLINE | ID: mdl-36747088

ABSTRACT

Metabolism is a fundamental cellular process that is coordinated with cell cycle progression. Despite this association, a mechanistic understanding of cell cycle phase-dependent metabolic pathway regulation remains elusive. Here we report the mechanism by which human de novo pyrimidine biosynthesis is allosterically regulated during the cell cycle. Combining traditional synchronization methods and metabolomics, we characterize metabolites by their accumulation pattern during cell cycle phases and identify cell cycle phase-dependent regulation of carbamoyl-phosphate synthetase 2, aspartate transcarbamylase and dihydroorotase (CAD), the first, rate-limiting enzyme in de novo pyrimidine biosynthesis. Through systematic mutational scanning and structural modelling, we find allostery as a major regulatory mechanism that controls the activity change of CAD during the cell cycle. Specifically, we report evidence of two Animalia-specific loops in the CAD allosteric domain that involve sensing and binding of uridine 5'-triphosphate, a CAD allosteric inhibitor. Based on homology with a mitochondrial carbamoyl-phosphate synthetase homologue, we identify a critical role for a signal transmission loop in regulating the formation of a substrate channel, thereby controlling CAD activity.


Subject(s)
Carbamoyl-Phosphate Synthase (Glutamine-Hydrolyzing) , Pyrimidines , Humans , Allosteric Regulation , Carbamoyl-Phosphate Synthase (Glutamine-Hydrolyzing)/chemistry , Carbamoyl-Phosphate Synthase (Glutamine-Hydrolyzing)/metabolism , Cell Cycle , Pyrimidines/pharmacology , Phosphates
2.
Mol Cell ; 80(4): 682-698.e7, 2020 11 19.
Article in English | MEDLINE | ID: mdl-33152268

ABSTRACT

Knowledge of fundamental differences between breast cancer subtypes has driven therapeutic advances; however, basal-like breast cancer (BLBC) remains clinically intractable. Because BLBC exhibits alterations in DNA repair enzymes and cell-cycle checkpoints, elucidation of factors enabling the genomic instability present in this subtype has the potential to reveal novel anti-cancer strategies. Here, we demonstrate that BLBC is especially sensitive to suppression of iron-sulfur cluster (ISC) biosynthesis and identify DNA polymerase epsilon (POLE) as an ISC-containing protein that underlies this phenotype. In BLBC cells, POLE suppression leads to replication fork stalling, DNA damage, and a senescence-like state or cell death. In contrast, luminal breast cancer and non-transformed mammary cells maintain viability upon POLE suppression but become dependent upon an ATR/CHK1/CDC25A/CDK2 DNA damage response axis. We find that CDK1/2 targets exhibit hyperphosphorylation selectively in BLBC tumors, indicating that CDK2 hyperactivity is a genome integrity vulnerability exploitable by targeting POLE.


Subject(s)
Breast Neoplasms/pathology , Carcinoma, Basal Cell/pathology , Cyclin-Dependent Kinase 2/metabolism , DNA Polymerase II/metabolism , Genomic Instability , Poly-ADP-Ribose Binding Proteins/metabolism , Animals , Apoptosis , Breast Neoplasms/genetics , Breast Neoplasms/metabolism , Carcinoma, Basal Cell/genetics , Carcinoma, Basal Cell/metabolism , Cell Cycle , Cell Proliferation , Cyclin-Dependent Kinase 2/genetics , DNA Damage , DNA Polymerase II/genetics , Female , Humans , Mice , Mice, Inbred NOD , Phosphorylation , Poly-ADP-Ribose Binding Proteins/genetics , Signal Transduction , Tumor Cells, Cultured
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