The intricate orchestration of enzymatic activities involving nicotinamide adenine dinucleotide (NAD+) is essential for maintaining metabolic homeostasis and preserving genomic integrity. As a co-enzyme, NAD+ plays a key role in regulating metabolic pathways, such as glycolysis and Kreb’s cycle. ADP-ribosyltransferases (PARPs) and sirtuins rely on NAD+ to mediate post-translational modifications of target proteins. The activation of PARP1 in response to DNA breaks leads to rapid depletion of cellular NAD+ compromising cell viability. Therefore, the levels of NAD+ must be tightly regulated. Here we show that exogenous NAD+, but not its precursors, has a direct effect on mitochondrial activity. Short-term incubation with NAD+ boosts Kreb’s cycle and the electron transport chain and enhances pyrimidine biosynthesis. Extended incubation with NAD+ results in depletion of pyrimidines, accumulation of purines, activation of the replication stress response and cell cycle arrest. Moreover, a combination of NAD+ and 5-fluorouridine selectively kills cancer cells that rely on de novo pyrimidine synthesis. We propose an integrated model of how NAD+ regulates nucleotide metabolism, with relevance to healthspan, ageing and cancer therapy.

Munk, S., Merchut-Maya, J.m., Adelantado Rubio, A., Hall, A., Pappas, G., Milletti, G., et al. (2023). NAD+ regulates nucleotide metabolism and genomic DNA replication. NATURE CELL BIOLOGY, 25(12), 1774-1786 [10.1038/s41556-023-01280-z].

NAD+ regulates nucleotide metabolism and genomic DNA replication

Milletti, Giacomo
;
2023-12-01

Abstract

The intricate orchestration of enzymatic activities involving nicotinamide adenine dinucleotide (NAD+) is essential for maintaining metabolic homeostasis and preserving genomic integrity. As a co-enzyme, NAD+ plays a key role in regulating metabolic pathways, such as glycolysis and Kreb’s cycle. ADP-ribosyltransferases (PARPs) and sirtuins rely on NAD+ to mediate post-translational modifications of target proteins. The activation of PARP1 in response to DNA breaks leads to rapid depletion of cellular NAD+ compromising cell viability. Therefore, the levels of NAD+ must be tightly regulated. Here we show that exogenous NAD+, but not its precursors, has a direct effect on mitochondrial activity. Short-term incubation with NAD+ boosts Kreb’s cycle and the electron transport chain and enhances pyrimidine biosynthesis. Extended incubation with NAD+ results in depletion of pyrimidines, accumulation of purines, activation of the replication stress response and cell cycle arrest. Moreover, a combination of NAD+ and 5-fluorouridine selectively kills cancer cells that rely on de novo pyrimidine synthesis. We propose an integrated model of how NAD+ regulates nucleotide metabolism, with relevance to healthspan, ageing and cancer therapy.
dic-2023
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore BIOS-10/A - Biologia cellulare e applicata
English
Munk, S., Merchut-Maya, J.m., Adelantado Rubio, A., Hall, A., Pappas, G., Milletti, G., et al. (2023). NAD+ regulates nucleotide metabolism and genomic DNA replication. NATURE CELL BIOLOGY, 25(12), 1774-1786 [10.1038/s41556-023-01280-z].
Munk, Shn; Merchut-Maya, Jm; Adelantado Rubio, A; Hall, A; Pappas, G; Milletti, G; Lee, M; Johnsen, Lg; Guldberg, P; Bartek, J; Maya-Mendoza, A...espandi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/412608
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