Research

Science (New York, N.Y.)

Approved and reviewable research records from Science (New York, N.Y.).

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NAD+

Placental nicotinamide adenine dinucleotide modulates the timing of labor.

Erin J Ciampa, Luana M Machado, Kathy J Lee, Amanda J Clark, Kyle Q Vu, Nawal A Khan, Sarah Kispert, Samantha Armstrong, Yunping Li, Ginger L Milne, Ashley Solmonson, S Ananth Karumanchi, Samir M Parikh · 2026

Source abstract

Labor is mediated proximately by prostaglandin signaling within gestational tissues and must be tightly regulated for birth to occur after appropriate fetal development. Metabolic changes accompanying gestational aging have been postulated as a determinant of birth timing, but specific nutrients, sensors, and messengers remain obscure. We report that placental nicotinamide adenine dinucleotide (NAD + ) dynamically tunes gestational length. Depletion of placental NAD + in mice provoked labor onset, mediated by the role of NAD + as a cofactor for 15-hydroxy prostaglandin dehydrogenase, an enzyme responsible for suppressing prostaglandin accumulation. Augmentation of placental NAD + prolonged gestation at baseline and in a model of preterm labor. These findings suggest a central role for metabolic exhaustion in provoking labor and reveal potential therapeutic avenues for preterm labor and the optimization of labor induction.

Open source record

NAD+

NAD⁺ in aging, metabolism, and neurodegeneration.

Eric Verdin · 2016

Source abstract

Nicotinamide adenine dinucleotide (NAD(+)) is a coenzyme found in all living cells. It serves both as a critical coenzyme for enzymes that fuel reduction-oxidation reactions, carrying electrons from one reaction to another, and as a cosubstrate for other enzymes such as the sirtuins and poly(adenosine diphosphate-ribose) polymerases. Cellular NAD(+) concentrations change during aging, and modulation of NAD(+) usage or production can prolong both health span and life span. Here we review factors that regulate NAD(+) and discuss how supplementation with NAD(+) precursors may represent a new therapeutic opportunity for aging and its associated disorders, particularly neurodegenerative diseases.

Open source record

NAD+

Biosensor reveals multiple sources for mitochondrial NAD⁺.

Xiaolu A Cambronne, Melissa L Stewart, DongHo Kim, Amber M Jones-Brunette, Rory K Morgan, David L Farrens, Michael S Cohen, Richard H Goodman · 2016

Source abstract

Nicotinamide adenine dinucleotide (NAD(+)) is an essential substrate for sirtuins and poly(adenosine diphosphate-ribose) polymerases (PARPs), which are NAD(+)-consuming enzymes localized in the nucleus, cytosol, and mitochondria. Fluctuations in NAD(+) concentrations within these subcellular compartments are thought to regulate the activity of NAD(+)-consuming enzymes; however, the challenge in measuring compartmentalized NAD(+) in cells has precluded direct evidence for this type of regulation. We describe the development of a genetically encoded fluorescent biosensor for directly monitoring free NAD(+) concentrations in subcellular compartments. We found that the concentrations of free NAD(+) in the nucleus, cytoplasm, and mitochondria approximate the Michaelis constants for sirtuins and PARPs in their respective compartments. Systematic depletion of enzymes that catalyze the final step of NAD(+) biosynthesis revealed cell-specific mechanisms for maintaining mitochondrial NAD(+) concentrations.

Open source record