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SIRT1-dependent restoration of NAD+ homeostasis after increased extracellular NAD+ exposure

In the last several years, NAD+ supplementation has emerged as an innovative and safe therapeutic strategy for a wide spectrum of disorders, including diabetes and neuropathy. However, critical questions remain as to how NAD+ and its precursors are taken up by cells, as well as the effects of long-l...

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Autores principales: Buonvicino, Daniela, Ranieri, Giuseppe, Pittelli, Maria, Lapucci, Andrea, Bragliola, Stefania, Chiarugi, Alberto
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8233143/
https://www.ncbi.nlm.nih.gov/pubmed/34097876
http://dx.doi.org/10.1016/j.jbc.2021.100855
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author Buonvicino, Daniela
Ranieri, Giuseppe
Pittelli, Maria
Lapucci, Andrea
Bragliola, Stefania
Chiarugi, Alberto
author_facet Buonvicino, Daniela
Ranieri, Giuseppe
Pittelli, Maria
Lapucci, Andrea
Bragliola, Stefania
Chiarugi, Alberto
author_sort Buonvicino, Daniela
collection PubMed
description In the last several years, NAD+ supplementation has emerged as an innovative and safe therapeutic strategy for a wide spectrum of disorders, including diabetes and neuropathy. However, critical questions remain as to how NAD+ and its precursors are taken up by cells, as well as the effects of long-lasting intracellular NAD+ (iNAD+) increases. Here, we investigated the kinetics of iNAD+ levels in different cell types challenged with prolonged exposure to extracellular NAD+ (eNAD+). Surprisingly, we found that after the initial increase, iNAD+ contents decreased back to control levels (iNAD+ resetting). Focusing our attention on HeLa cells, we found that oxygen and ATP consumption occurred with similar temporal kinetics after eNAD+ exposure. Using [(3)H]NAD+ and [(14)C]NAD+, we determined that NAD+ resetting was not due to increased dinucleotide extrusion but rather due to reduced uptake of cleaved NAD+ products. Indeed, eNAD+ exposure reduced the expression of the ecto-5′-nucleotidase CD73, the nicotinamide adenine mononucleotide transporter solute carrier family 12 member 8, and the nicotinamide riboside kinase. Interestingly, silencing the NAD+-sensor enzyme sirtuin 1 prevented eNAD+-dependent transcriptional repression of ecto-5′-nucleotidase, solute carrier family 12 member 8, and nicotinamide riboside kinase, as well as iNAD+ resetting. Our findings provide the first evidence for a sirtuin 1–mediated homeostatic response aimed at maintaining physiological iNAD+ levels in conditions of excess eNAD+ availability. These data may be of relevance for therapies designed to support the NAD+ metabolome via extracellular supplementation of the dinucleotide or its precursors.
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spelling pubmed-82331432021-06-29 SIRT1-dependent restoration of NAD+ homeostasis after increased extracellular NAD+ exposure Buonvicino, Daniela Ranieri, Giuseppe Pittelli, Maria Lapucci, Andrea Bragliola, Stefania Chiarugi, Alberto J Biol Chem Research Article In the last several years, NAD+ supplementation has emerged as an innovative and safe therapeutic strategy for a wide spectrum of disorders, including diabetes and neuropathy. However, critical questions remain as to how NAD+ and its precursors are taken up by cells, as well as the effects of long-lasting intracellular NAD+ (iNAD+) increases. Here, we investigated the kinetics of iNAD+ levels in different cell types challenged with prolonged exposure to extracellular NAD+ (eNAD+). Surprisingly, we found that after the initial increase, iNAD+ contents decreased back to control levels (iNAD+ resetting). Focusing our attention on HeLa cells, we found that oxygen and ATP consumption occurred with similar temporal kinetics after eNAD+ exposure. Using [(3)H]NAD+ and [(14)C]NAD+, we determined that NAD+ resetting was not due to increased dinucleotide extrusion but rather due to reduced uptake of cleaved NAD+ products. Indeed, eNAD+ exposure reduced the expression of the ecto-5′-nucleotidase CD73, the nicotinamide adenine mononucleotide transporter solute carrier family 12 member 8, and the nicotinamide riboside kinase. Interestingly, silencing the NAD+-sensor enzyme sirtuin 1 prevented eNAD+-dependent transcriptional repression of ecto-5′-nucleotidase, solute carrier family 12 member 8, and nicotinamide riboside kinase, as well as iNAD+ resetting. Our findings provide the first evidence for a sirtuin 1–mediated homeostatic response aimed at maintaining physiological iNAD+ levels in conditions of excess eNAD+ availability. These data may be of relevance for therapies designed to support the NAD+ metabolome via extracellular supplementation of the dinucleotide or its precursors. American Society for Biochemistry and Molecular Biology 2021-06-11 /pmc/articles/PMC8233143/ /pubmed/34097876 http://dx.doi.org/10.1016/j.jbc.2021.100855 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Buonvicino, Daniela
Ranieri, Giuseppe
Pittelli, Maria
Lapucci, Andrea
Bragliola, Stefania
Chiarugi, Alberto
SIRT1-dependent restoration of NAD+ homeostasis after increased extracellular NAD+ exposure
title SIRT1-dependent restoration of NAD+ homeostasis after increased extracellular NAD+ exposure
title_full SIRT1-dependent restoration of NAD+ homeostasis after increased extracellular NAD+ exposure
title_fullStr SIRT1-dependent restoration of NAD+ homeostasis after increased extracellular NAD+ exposure
title_full_unstemmed SIRT1-dependent restoration of NAD+ homeostasis after increased extracellular NAD+ exposure
title_short SIRT1-dependent restoration of NAD+ homeostasis after increased extracellular NAD+ exposure
title_sort sirt1-dependent restoration of nad+ homeostasis after increased extracellular nad+ exposure
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8233143/
https://www.ncbi.nlm.nih.gov/pubmed/34097876
http://dx.doi.org/10.1016/j.jbc.2021.100855
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