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Methods in Molecular Biology (Clifton, N.J.)|October 14, 2014
NAD⁺ content and its role in mitochondriaWei Li, Anthony A SauveCurrent Protocols in Nucleic Acid Chemistry|December 25, 2017
Synthesis of β-Nicotinamide Riboside Using an Efficient Two-Step MethodologyNing Zhang, Anthony A SauveProgress in Molecular Biology and Translational Science|February 8, 2018
Regulatory Effects of NAD+ Metabolic Pathways on Sirtuin ActivityNing Zhang, Anthony A SauveThe AAPS Journal|January 20, 2007
NAD metabolism and sirtuins: metabolic regulation of protein deacetylation in stress and toxicityTianle Yang, Anthony A SauveMechanisms of Ageing and Development|March 24, 2010
Vitamin B3, the nicotinamide adenine dinucleotides and agingPing Xu, Anthony A SauveBiochemistry|August 6, 2003
Sir2 regulation by nicotinamide results from switching between base exchange and deacetylation chemistryAnthony A Sauve, Vern L SchrammJournal of the American Chemical Society|April 25, 2002
Synthesis of trithiolanes and tetrathianes from thiiranes catalyzed by ruthenium salen nitrosyl complexesAnthony A Sauve, John T GrovesCurrent Opinion in Chemical Biology|October 30, 2012
Sirtuins: NAD(+)-dependent deacetylase mechanism and regulationAnthony A Sauve, Dou Yeon YounBiochemistry|June 26, 2002
Mechanism-based inhibitors of CD38: a mammalian cyclic ADP-ribose synthetaseAnthony A Sauve, Vern L SchrammCurrent Medicinal Chemistry|April 14, 2004
SIR2: the biochemical mechanism of NAD(+)-dependent protein deacetylation and ADP-ribosyl enzyme intermediatesAnthony A Sauve, Vern L SchrammPageof 7