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  5. Nitric oxide required for transition to slower hepatic protein synthesis rates during long-term caloric restriction

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Article
en
2026

Nitric oxide required for transition to slower hepatic protein synthesis rates during long-term caloric restriction

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en
2026
Vol 136 (1)
Vol. 136
DOI: 10.1172/jci189798

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Marc Hellerstein
Marc Hellerstein

University of California, Berkeley

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Hector H. Palacios
Edward Cao
Adelaide Cahill
+2 more

Abstract

Calorie restriction (CR) extends maximal lifespan and maintains cellular homeostasis in various animal models. We have previously shown that CR induces a global reduction of protein fractional synthesis rates (FSRs) across the hepatic proteome in mice, but the timing and regulatory mechanisms remain unclear. Nitric oxide (NO), a bioactive molecule upregulated during CR, is a potential regulator of protein synthesis. To explore the role of NO in hepatic proteome fluxes during CR, we used in vivo deuterium labeling from heavy water and liquid chromatography/mass spectrometry-based (LC/MS-based) flux proteomics in WT and NO-deficient (NO-) mice. We observed a transition to reduced global protein FSRs that occurred rapidly between days 25 and 30 of CR. NO deficiency, whether genetic or pharmacological, disrupted the slowing of proteome-wide fluxes and the beneficial effects on body composition and physiology. Administering the NO donor molsidomine restored the reduction in hepatic FSRs in NO- mice. Furthermore, inhibiting NO pharmacologically, whether starting on day 1, day 14, or day 24 of CR, mitigated the reduction in hepatic protein FSRs at day 32, highlighting NO's critical role during the transition period. These results underscore the importance of NO in CR-induced changes in proteostasis and suggest NO as a potential CR-mimetic target, while offering a specific time window for identifying other signals and testing therapeutic interventions.

How to cite this publication

Hector H. Palacios, Edward Cao, Adelaide Cahill, Hussein Mohamad, Marc Hellerstein (2026). Nitric oxide required for transition to slower hepatic protein synthesis rates during long-term caloric restriction. , 136(1), DOI: https://doi.org/10.1172/jci189798.

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Publication Details

Type

Article

Year

2026

Authors

5

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1172/jci189798

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