Citations for
1NMNAT3
NMNAT3 is involved in the protective effect of SIRT3 in Ang II-induced cardiac hypertrophy.
Yue Z, Ma Y, You J, Li Z, Ding Y, He P, Lu X, Jiang J, Chen S, Liu P.
Exp Cell Res 347(2):261-73. doi: 10.1016/j.yexcr.2016.07.006. Epub 2016 Jul 14. 2016
2NMNAT3
Nmnat3 Is Dispensable in Mitochondrial NAD Level Maintenance In Vivo.
Yamamoto M, Hikosaka K, Mahmood A, Tobe K, Shojaku H, Inohara H, Nakagawa T.
PLoS One 11(1):e0147037. doi: 10.1371/journal.pone.0147037. eCollection 2016. 2016
3NMNAT3
Subcellular Distribution of NAD+ between Cytosol and Mitochondria Determines the Metabolic Profile of Human Cells.
VanLinden MR, Dölle C, Pettersen IK, Kulikova VA, Niere M, Agrimi G, Dyrstad SE, Palmieri F, Nikiforov AA, Tronstad KJ, Ziegler M.
J Biol Chem 290(46):27644-59. doi: 10.1074/jbc.M115.654129. Epub 2015 Oct 2. 2015
4NMNAT3
Insight into molecular and functional properties of NMNAT3 reveals new hints of NAD homeostasis within human mitochondria.
Felici R, Lapucci A, Ramazzotti M, Chiarugi A.
PLoS One 8(10):e76938. doi: 10.1371/journal.pone.0076938. eCollection 2013. Erratum in: PLoS One. 2013;8(12). doi:10.1371/annotation/f5e6 2013
5NMNAT3
Insight into molecular and functional properties of NMNAT3 reveals new hints of NAD homeostasis within human mitochondria.
Felici R, Lapucci A, Ramazzotti M, Chiarugi A.
PLoS One 8(10):e76938. doi: 10.1371/journal.pone.0076938. eCollection 2013. Erratum in: PLoS One. 2013;8(12). doi:10.1371/annotation/f5e6 2013
6NMNAT3
Axonal protection by Nmnat3 overexpression with involvement of autophagy in optic nerve degeneration.
Kitaoka Y, Munemasa Y, Kojima K, Hirano A, Ueno S, Takagi H.
Cell Death Dis 4:e860. doi: 10.1038/cddis.2013.391. 2013
7NMNAT1, NMNAT2, NMNAT3
Unique expression pattern of human nicotinamide mononucleotide adenylyltransferase isozymes in red blood cells.
Di Stefano M, Galassi L, Magni G.
Blood Cells Mol Dis 45(1):33-9. doi: 10.1016/j.bcmd.2010.04.003. Epub 2010 May 10. 2010
8NMNAT1, NMNAT2, NMNAT3
Nicotinamide mononucleotide adenylyltransferase expression in mitochondrial matrix delays Wallerian degeneration.
Yahata N, Yuasa S, Araki T.
J Neurosci 29(19):6276-84. doi: 10.1523/JNEUROSCI.4304-08.2009. 2009
9NMNAT1, NMNAT3
Initial-rate kinetics of human NMN-adenylyltransferases: substrate and metal ion specificity, inhibition by products and multisubstrate analogues, and isozyme contributions to NAD+ biosynthesis.
Sorci L, Cimadamore F, Scotti S, Petrelli R, Cappellacci L, Franchetti P, Orsomando G, Magni G.
Biochemistry 46(16):4912-22. Epub 2007 Apr 3. 2007
10NMNAT3
Initial-rate kinetics of human NMN-adenylyltransferases: substrate and metal ion specificity, inhibition by products and multisubstrate analogues, and isozyme contributions to NAD+ biosynthesis.
Sorci L, Cimadamore F, Scotti S, Petrelli R, Cappellacci L, Franchetti P, Orsomando G, Magni G.
Biochemistry 46(16):4912-22. Epub 2007 Apr 3. 2007
11NMNAT3
Subcellular compartmentation and differential catalytic properties of the three human nicotinamide mononucleotide adenylyltransferase isoforms.
Berger F, Lau C, Dahlmann M, Ziegler M.
J Biol Chem 280(43):36334-41. Epub 2005 Aug 23. 2005
12NMNAT1, NMNAT2, NMNAT3
Subcellular compartmentation and differential catalytic properties of the three human nicotinamide mononucleotide adenylyltransferase isoforms.
Berger F, Lau C, Dahlmann M, Ziegler M.
J Biol Chem 280(43):36334-41. Epub 2005 Aug 23. 2005
13NMNAT1, NMNAT3, NMNATP
Structural Characterization of a Human Cytosolic NMN/NaMN Adenylyltransferase and Implication in Human NAD Biosynthesis.
Zhang X, Kurnasov OV, Karthikeyan S, Grishin NV, Osterman AL, Zhang H.
J Biol Chem 278(15):13503-11. Epub 2003 Feb 06. 2003