bioRxiv Science⌕ Search

Biology subjects

Nejati, R.

Publications and source records attributed to Nejati, R..

3 recordsLinked to original sources

Tyrosine phosphorylation and dimerization cooperatively activate NAMPT to enable NAD+ synthesis in cancer

Nicotinamide phosphoribosyltransferase (NAMPT), the rate-limiting enzyme in the NAD salvage pathway, is frequently upregulated in cancer, yet mechanisms regulating its catalytic activity remain undefined. We identify NAMPT as a direct substrate of multiple proto-oncogenic tyrosine kinases, including ALK, insulin receptor, IGF1R, and PDGFRA. Phosphoproteomics identified NAMPT Y188 as the major phosphorylation site, including the oncogenic fusion kinase NPM1::ALK. NAMPT interacted with NPM1::ALK in the cytoplasm, nucleus, and mitochondria, while Y188 phosphorylation enhanced catalytic activity, NMN/NAD biosynthesis, and downstream metabolism. Conversely, the Y188F mutant reduced enzymatic activity, proliferation, and clonogenicity, whereas disrupting dimerization similarly impaired phosphorylation and function. Interactome analyses showed phosphorylation and dimerization cooperatively remodel NAMPT-associated networks, enriching phosphorylated dimers for metabolic/redox regulators and monomeric NAMPT for ribosome biogenesis. NAMPT inhibition suppressed the growth of both ALK inhibitor-sensitive and -resistant lymphoma cells and enhanced the efficacy of ALK inhibition, revealing kinase-dependent NAMPT activation as a metabolic vulnerability in oncogene-driven cancers.

cancer biology↗

Mitochondrial ACSS1 Links Acetate Metabolism to Pyrimidine Biosynthesis in Nutrient-Stressed B-Cell Lymphomas

Acetate serves as an alternative carbon source in nutrient-limited tumors, yet its role in supporting nucleotide biosynthesis remains poorly understood. Here, we identify the mitochondrial enzyme ACSS1 as a key metabolic driver in mantle cell lymphoma (MCL), diffuse large B-cell lymphoma (DLBCL), and chronic lymphocytic leukemia (CLL). ACSS1 is frequently overexpressed and catalyzes the conversion of acetate to mitochondrial acetyl-CoA, sustaining oxidative metabolism and biosynthesis under nutrient stress. Genetic silencing of ACSS1 impairs mitochondrial respiration and disrupts acetate incorporation into acetyl-CoA, TCA cycle intermediates, glutamate, and aspartate, while markedly reducing 13C-acetate labeling of dihydroorotate and orotate, intermediates in de novo pyrimidine synthesis. Untargeted metabolomics reveal enrichment of pyrimidine biosynthesis pathways in ACSS1-high cells. Notably, acetate or uridine supplementation rescues the growth of ACSS1-deficient cells, confirming a functional link between acetate metabolism and nucleotide synthesis. Importantly, in vivo studies using luciferase-labeled JeKo-1 and Maver mantle cell lymphoma xenografts demonstrate that ACSS1 knockdown significantly suppresses tumor growth. NSG mice injected with ACSS1-silenced cells exhibit a marked reduction in tumor burden, as measured by bioluminescence imaging and total photon flux, with significant differences observed at days 14 and 21 post-injection. These findings establish that ACSS1 is required not only for metabolic adaptation in vitro but also for lymphoma progression in vivo. Collectively, our results uncover an ACSS1-dependent mitochondrial acetate-pyrimidine axis that sustains lymphoma growth and represents a previously unrecognized therapeutic vulnerability. Statement of SignificanceThis study identifies ACSS1 as a critical metabolic vulnerability in mantle cell lymphoma (MCL), linking mitochondrial acetate metabolism to de novo pyrimidine biosynthesis and tumor progression. We demonstrate that ACSS1 is frequently overexpressed in MCL and is essential for converting acetate into mitochondrial acetyl-CoA, thereby sustaining TCA cycle activity, nucleotide production, and cell survival under nutrient stress. Loss of ACSS1 disrupts this acetate-pyrimidine axis, impairing oxidative metabolism and reducing lymphoma cell viability in vitro. Importantly, ACSS1 silencing significantly suppresses tumor growth in vivo, establishing its requirement for lymphoma progression. The ability of acetate or uridine supplementation to rescue ACSS1-deficient cells further highlights the functional coupling between mitochondrial acetate utilization and nucleotide synthesis. Together, these findings reveal a previously unrecognized mechanism of metabolic adaptation in aggressive lymphomas and offer ACSS1-mediated acetate metabolism as a promising therapeutic target.

cancer biology↗

Mitochondrial ACSS1 regulates the oncometabolite 2-hydroxyglutarate and De Novo Pyrimidine biosynthesis under nutrient-deprived conditions in lymphoma

The mitochondrial Acetyl-CoA synthetase short-chain family member 1 (ACSS1) converts acetate, an energy source in nutrient-deprived conditions, to mitochondrial acetyl-CoA. However, the specific mechanism behind this process remains unknown. Here, we show that ACSS1 is overexpressed in patients with mantle cell lymphoma (MCL), diffuse large B cell lymphoma (DLBCL), chronic lymphocytic leukemia (CLL), and Ibrutinib (IBR)-resistant cell lines. The mitochondrial stress test showed reduced oxygen consumption in ACSS1 knockdown (KD) cell lines. 13C-acetate stable isotope tracing revealed that ACSS1 knockdown (KD) in MCL cell lines attenuates the flux of mitochondrial acetate to acetyl-CoA, acetylcarnitine, and TCA cycle intermediates, including glutamine and aspartate, which are precursors for de novo pyrimidine synthesis. Consistently, there was a decrease in the labeling of glutamate, aspartate, dihydroorotate, and orotate pools in KD cell lines. Pathway analysis revealed the enrichment of de novo pyrimidine synthesis metabolites and depleting ACSS1 impaired cell growth and potential vulnerability of IBR-resistant MCL cells. Further, we discovered that acetate is used to synthesize 2-hydroxyglutarate in an ACSS1-dependent manner, and it is involved in histone methylation. These results highlight a metabolic phenotype in MCL cells, showing their ability to metabolize acetate in nutrient-deprived conditions and provide new insights into the role of ACSS1 in cancer metabolism. SignificanceThe enzyme ACSS1 catalyzes the conversion of acetate, an energy source in nutrient-deprived conditions, to mitochondrial acetyl-CoA. Our results show that ACSS1 may affect cancer metabolism, particularly in MCL. Studies using MCL cell lines showed that reducing ACSS1 activity affects acetate utilization for various metabolic pathways and influences the production of oncometabolite D-2-hydroxyglutarate. Additionally, reducing ACSS1 activity affects the expression of cyclin D1 and inhibits cell growth, highlighting the potential significance of ACSS1 in cancer metabolism.

cancer biology↗