The balance between NAD+ biosynthesis and consumption in ageing

被引:37
作者
Stromland, Oyvind [1 ]
Diab, Joseph [1 ]
Ferrario, Eugenio [1 ]
Sverkeli, Lars J. [1 ,2 ]
Ziegler, Mathias [1 ]
机构
[1] Univ Bergen, Dept Biomed, N-5009 Bergen, Norway
[2] Univ Bergen, Dept Biol Sci, N-5020 Bergen, Norway
关键词
NAD metabolism; Ageing; PARP; Sirtuins; NAD biosynthesis; EXTENDS LIFE-SPAN; NICOTINAMIDE MONONUCLEOTIDE; SIR2; FAMILY; POLY(ADP-RIBOSE) POLYMERASES; INCREASED EXPRESSION; CELLULAR FUNCTIONS; CIRCADIAN CONTROL; ADP-RIBOSYLATION; CD38; INHIBITION; SKELETAL-MUSCLE;
D O I
10.1016/j.mad.2021.111569
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Nicotinamide adenine dinucleotide (NAD(+)) is a vital coenzyme in redox reactions. NAD(+) is also important in cellular signalling as it is consumed by PARPs, SARM1, sirtuins and CD38. Cellular NAD(+) levels regulate several essential processes including DNA repair, immune cell function, senescence, and chromatin remodelling. Maintenance of these cellular processes is important for healthy ageing and lifespan. Interestingly, the levels of NAD(+) decline during ageing in several organisms, including humans. Declining NAD+ levels have been linked to several age-related diseases including various metabolic diseases and cognitive decline. Decreasing tissue NAD+ concentrations have been ascribed to an imbalance between biosynthesis and consumption of the dinucleotide, resulting from, for instance, reduced levels of the rate limiting enzyme NAMPT along with an increased activation state of the NAD(+)-consuming enzymes PARPs and CD38. The progression of some age-related diseases can be halted or reversed by therapeutic augmentation of NAD(+) levels. NAD(+) metabolism has therefore emerged as a potential target to ameliorate age-related diseases. The present review explores how ageing affects NAD(+) metabolism and current approaches to reverse the age-dependent decline of NAD(+).
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页数:8
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共 145 条
[1]   The phosphate makes a difference: cellular functions of NADP [J].
Agledal, Line ;
Niere, Marc ;
Ziegler, Mathias .
REDOX REPORT, 2010, 15 (01) :2-10
[2]   An open-label, non-randomized study of the pharmacokinetics of the nutritional supplement nicotinamide riboside (NR) and its effects on blood NAD plus levels in healthy volunteers [J].
Airhart, Sophia E. ;
Shireman, Laura M. ;
Risler, Linda J. ;
Anderson, Gail D. ;
Gowda, G. A. Nagana ;
Raftery, Daniel ;
Tian, Rong ;
Shen, Danny D. ;
O'Brien, Kevin D. .
PLOS ONE, 2017, 12 (12)
[3]   SIRT1 Controls the Transcription of the Peroxisome Proliferator-activated Receptor-γ Co-activator-1α (PGC-1α) Gene in Skeletal Muscle through the PGC-1α Autoregulatory Loop and Interaction with MyoD [J].
Amat, Ramon ;
Planavila, Anna ;
Chen, Shen Liang ;
Iglesias, Roser ;
Giralt, Marta ;
Villarroya, Francesc .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2009, 284 (33) :21872-21880
[4]   The PARP superfamily [J].
Amé, JC ;
Spenlehauer, C ;
de Murcia, G .
BIOESSAYS, 2004, 26 (08) :882-893
[5]   SIRT4 Is a Lysine Deacylase that Controls Leucine Metabolism and Insulin Secretion [J].
Anderson, Kristin A. ;
Huynh, Frank K. ;
Fisher-Wellman, Kelsey ;
Stuart, J. Darren ;
Peterson, Brett S. ;
Douros, Jonathan D. ;
Wagner, Gregory R. ;
Thompson, J. Will ;
Madsen, Andreas S. ;
Green, Michelle F. ;
Sivley, R. Michael ;
Ilkayeva, Olga R. ;
Stevens, Robert D. ;
Backos, Donald S. ;
Capra, John A. ;
Olsen, Christian A. ;
Campbell, Jonathan E. ;
Muoio, Deborah M. ;
Grimsrud, Paul A. ;
Hirschey, Matthew D. .
CELL METABOLISM, 2017, 25 (04) :838-+
[6]   Poly(ADP-ribose) polymerase-dependent energy depletion occurs through inhibition of glycolysis [J].
Andrabi, Shaida A. ;
Umanah, George K. E. ;
Chang, Calvin ;
Stevens, Daniel A. ;
Karuppagounder, Senthilkumar S. ;
Gagne, Jean-Philippe ;
Poirier, Guy G. ;
Dawson, Valina L. ;
Dawson, Ted M. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (28) :10209-10214
[7]   SIRT1 regulates circadian clock gene expression through PER2 deacetylation [J].
Asher, Gad ;
Gatfield, David ;
Stratmann, Markus ;
Reinke, Hans ;
Dibner, Charna ;
Kreppel, Florian ;
Mostoslavsky, Raul ;
Alt, Frederick W. ;
Schibler, Ueli .
CELL, 2008, 134 (02) :317-328
[8]   Mechanism of sirtuin inhibition by nicotinamide:: Altering the NAD+ cosubstrate specificity of a Sir2 enzyme [J].
Avalos, JL ;
Bever, KM ;
Wolberger, C .
MOLECULAR CELL, 2005, 17 (06) :855-868
[9]   Poly(ADP-ribose) polymerases in double-strand break repair: Focus on PARP1, PARP2 and PARP3 [J].
Beck, Carole ;
Robert, Isabelle ;
Reina-San-Martin, Bernardo ;
Schreiber, Valerie ;
Dantzer, Francoise .
EXPERIMENTAL CELL RESEARCH, 2014, 329 (01) :18-25
[10]   Nicotinamide riboside promotes Sir2 silencing and extends lifespan via Nrk and Urh1/Pnp1/Meu1 pathways to NAD+ [J].
Belenky, Peter ;
Racette, Frances G. ;
Bogan, Katrina L. ;
McClure, Julie M. ;
Smith, Jeffrey S. ;
Brenner, Charles .
CELL, 2007, 129 (03) :473-484