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September 26, 2025Cells3 citationsOpen Access

NAD+ Homeostasis and Autophagy: Integrated Control Through Nutrient Signaling in Yeast and Mammals

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MMMatilda McDanielLLL. LeeSLSu-Ju Lin

Key Points

  • NAD+ homeostasis is essential for proper cellular function and is linked to various diseases.
  • Autophagy plays a crucial role in maintaining the NAD+ pool and cellular metabolism.
  • Nutrient-sensing pathways influence the regulation of NAD+ and autophagy mechanisms.
  • Sirtuins, dependent on NAD+, are significant in these pathways, highlighting potential therapeutic targets.

Abstract

Nicotinamide adenine dinucleotide (NAD+) is an essential metabolite facilitating redox and biochemical reactions in many cellular processes. Maintaining NAD+ homeostasis is critical for proper cellular function, and abnormalities in NAD+ metabolism have been associated with various human diseases. However, the mechanisms underlying its regulation and interconnection with nutrient-sensing pathways remain incompletely understood. Recent studies show that autophagy, a conserved catabolic pathway essential for cellular homeostasis, plays an important role in maintaining the NAD+ pool. NAD+ may also impact autophagy through its regulation of cellular metabolism and sirtuins, a family of NAD+-dependent deacetylases. Given the complexity of these pathways, their mechanistic interconnection is not fully understood. Here, we discuss studies examining the interactions of NAD+ metabolism, autophagy, and nutrient-sensing pathways, with a focus on the budding yeast Saccharomyces cerevisiae and connections to mammalian systems. We also discuss the role of sirtuins in these pathways and the impacts of NAD+ precursor supplementation. This review provides insights into how nutrient-sensing pathways may mediate the co-regulation of NAD+, autophagy, and cellular homeostasis. The studies discussed provide the basis for the development of future research directions that may inform potential therapeutic targets for human disorders associated with the dysregulation of NAD+ metabolism and autophagy.

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Cite This Study

McDaniel et al. (2025) studied this question.

synapsesocial.com/papers/68d6c682b1249cec298b2835https://doi.org/10.3390/cells14191495
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Autophagy–NAD+ axis: emerging insights into neuronal homeostasis and neurodegenerative diseases2025
  2. 2Targeting NAD Homeostasis: Compartmentalization, Quantification, and Modulation2026 · 1 citations
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  4. 4The Secret Life of NAD+: An Old Metabolite Controlling New Metabolic Signaling Pathways2010 · 897 citations
  5. 5NAD+ restores proteostasis through splicing-dependent autophagy2025