NAD+ Homeostasis and NAD+-Consuming Enzymes: Implications for Vascular Health
Pathways of NAD+ biosynthesis and major NAD+-consuming enzymes. The Preiss–Handler pathway is highlighted in green; the de novo biosynthesis pathway is in blue; the NAD+ salvage pathway is in yellow.
"> Figure 2Impact of NAD+ homeostasis and major NAD+-consuming enzymes on vascular health.
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Abstract
Nicotinamide adenine dinucleotide (NAD+) is a ubiquitous metabolite that takes part in many key redox reactions. NAD+ biosynthesis and NAD+-consuming enzymes have been attracting markedly increasing interest since they have been demonstrated to be involved in several crucial biological pathways, impacting genes transcription, cellular signaling, and cell cycle regulation V体育官网入口. As a consequence, many pathological conditions are associated with an impairment of intracellular NAD+ levels, directly or indirectly, which include cardiovascular diseases, obesity, neurodegenerative diseases, cancer, and aging. In this review, we describe the general pathways involved in the NAD+ biosynthesis starting from the different precursors, analyzing the actual state-of-art of the administration of NAD+ precursors or blocking NAD+-dependent enzymes as strategies to increase the intracellular NAD+ levels or to counteract the decline in NAD+ levels associated with ageing. Subsequently, we focus on the disease-related and age-related alterations of NAD+ homeostasis and NAD+-dependent enzymes in endothelium and the consequent vascular dysfunction, which significantly contributes to a wide group of pathological disorders. Keywords: nicotinamide adenine dinucleotide; NAD+; endothelium; vascular health; SIRT1; PARP1; NNMT .1. Introduction
2. NAD+ Biosynthesis (V体育安卓版)
3. NAD+ Use: Redox Reactions and NAD+-Dependent Enzymes
4. NAD+ and Vascular Function
5. NAD+-Dependent Enzymes and Vascular Function: SIRT1
6. NAD+-Dependent Enzymes and Vascular Function: PARPs
7. Enzymes of NAD+ Homeostasis: Nicotinamide N-methyltransferase (NNMT)
8. Conclusions
"VSports" Author Contributions
Funding (V体育平台登录)
Conflicts of Interest
Abbreviations
References
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Campagna, R.; Vignini, A. NAD+ Homeostasis and NAD+-Consuming Enzymes: Implications for Vascular Health. Antioxidants 2023, 12, 376. https://doi.org/10.3390/antiox12020376
Campagna R, Vignini A. NAD+ Homeostasis and NAD+-Consuming Enzymes: Implications for Vascular Health. Antioxidants. 2023; 12(2):376. https://doi.org/10.3390/antiox12020376
Chicago/Turabian StyleCampagna, Roberto, and Arianna Vignini. 2023. "NAD+ Homeostasis and NAD+-Consuming Enzymes: Implications for Vascular Health" Antioxidants 12, no. 2: 376. https://doi.org/10.3390/antiox12020376
APA StyleCampagna, R., & Vignini, A. (2023). NAD+ Homeostasis and NAD+-Consuming Enzymes: Implications for Vascular Health. Antioxidants, 12(2), 376. https://doi.org/10.3390/antiox12020376