<HashMap><database>BioModels</database><file_versions><headers><Content-Type>application/xml</Content-Type></headers><body><files><Xml>https://www.ebi.ac.uk/biomodels/model/download/MODEL1905220002?filename=data_S3_competition_model.xml</Xml></files><type>primary</type></body><statusCode>OK</statusCode><statusCodeValue>200</statusCodeValue></file_versions><scores/><additional><submitter>Ines Heiland</submitter><curationStatus>Non-curated</curationStatus><levelVersion>L3V1</levelVersion><full_dataset_link>https://www.ebi.ac.uk/biomodels/MODEL1905220002</full_dataset_link><isPrivate>false</isPrivate><repository>BioModels</repository><omics_type>Models</omics_type><modelFormat>SBML</modelFormat><tokenised_name>Heiland2019   Two compartment model of NAD biosynthesis and consumption</tokenised_name><publication_year>2019</publication_year><submissionId>MODEL1905220002</submissionId><publication_authors>Mathias Bockwoldt, Dorothée Houry, Marc Niere, Toni I. Gossmann, Ines Reinartz, Alexander Schug, Mathias Ziegler, Ines Heiland</publication_authors><first_author>Mathias Bockwoldt</first_author><publication>10.1073/pnas.1902346116,
                            Nicotinamide adenine dinucleotide (NAD) provides an important link between metabolism and signal transduction and has emerged as central hub between bioenergetics and all major cellular events. NAD-dependent signaling (e.g., by sirtuins and poly–adenosine diphosphate [ADP] ribose polymerases [PARPs]) consumes considerable amounts of NAD. To maintain physiological functions, NAD consumption and biosynthesis need to be carefully balanced. Using extensive phylogenetic analyses, mathematical modeling of NAD metabolism, and experimental verification, we show that the diversification of NAD-dependent signaling in vertebrates depended on 3 critical evolutionary events: 1) the transition of NAD biosynthesis to exclusive usage of nicotinamide phosphoribosyltransferase (NamPT); 2) the occurrence of nicotinamide N-methyltransferase (NNMT), which diverts nicotinamide (Nam) from recycling into NAD, preventing Nam accumulation and inhibition of NAD-dependent signaling reactions; and 3) structural adaptation of NamPT, providing an unusually high affinity toward Nam, necessary to maintain NAD levels. Our results reveal an unexpected coevolution and kinetic interplay between NNMT and NamPT that enables extensive NAD signaling. This has implications for therapeutic strategies of NAD supplementation and the use of NNMT or NamPT inhibitors in disease treatment.. null, null.
                            UiT Arctic University of Norway, Tromsø</publication><submitter_mail>ines.heiland@uit.no</submitter_mail><publication_doi>10.1073/pnas.1902346116</publication_doi><submitter_affiliation>Dept. of Arctic and Marine Biology, UiT The Arctic University of Norway, Tromsø Norway</submitter_affiliation><pubmed_abstract>Nicotinamide mononucleotide adenylyltransferase (NMNAT) is the central enzyme of the NAD biosynthetic pathway. Three human NMNAT isoforms have recently been identified, but isoform-specific functions are presently unknown, although a tissue-specific role has been suggested. Analyses of the subcellular localization confirmed NMNAT1 to be a nuclear protein, whereas NMNAT2 and -3 were localized to the Golgi complex and the mitochondria, respectively. This differential subcellular localization points to an organelle-specific, nonredundant function of each of the three proteins. Comparison of the kinetic properties showed that particularly NMNAT3 exhibits a high tolerance toward substrate modifications. Moreover, as opposed to preferred NAD+ synthesis by NMNAT1, the other two isoforms could also form NADH directly from the reduced nicotinamide mononucleotide, supporting a hitherto unknown pathway of NAD generation. A variety of physiological intermediates was tested and exerted only minor influence on the catalytic activities of the NMNATs. However, gallotannin was found to be a potent inhibitor, thereby compromising its use as a specific inhibitor of poly-ADP-ribose glycohydrolase. The presence of substrate-specific and independent nuclear, mitochondrial, and Golgi-specific NAD biosynthetic pathways is opposed to the assumption of a general cellular NAD pool. Their existence appears to be consistent with important compartment-specific functions rather than to reflect simple functional redundance.</pubmed_abstract><pubmed_abstract>Nicotinamide 1-beta-D-riboside (Nir), the cationic, reducible moiety of the coenzyme NAD+, has been confirmed as an unusual substrate for purified purine-nucleoside phosphorylase (PNP) from a mammalian source (calf spleen). It is also a substrate of the enzyme from Escherichia coli. The Km values at pH 7, 1.48 mM and 0.62 mM, respectively, were 1-2 orders of magnitude higher than for the natural substrate inosine, but the Vmax values were comparable, 96% and 35% that for Ino. The pseudo first-order rate constants, Vmax/Km, were 1.1% and 2.5% for the calf spleen and E. coli enzymes. The aglycon, nicotinamide, was neither a substrate nor an inhibitor of PNP. Nir was a weak inhibitor of inosine phosphorolysis catalyzed by both enzymes, with Ki values close to the Km for its phosphorolysis, consistent with simple competitive inhibition; this was further confirmed by Dixon plots. Phosphorolysis of the fluorescent positively charged substrate 7-methylguanosine was also inhibited in a competitive manner by both Ino and Nir. Phosphorolysis of Nir by both enzymes was inhibited competitively by several specific inhibitors of calf spleen and E. coli PNP, with Ki values similar to those for inhibition of other natural substrates. The pH dependence of the kinetic constants for the phosphorolysis of Nir and of a variety of other substrates, was extensively investigated, particularly in the alkaline pH range, where Nir exhibited abnormally high substrate activity relative to the reduced reaction rates of both enzymes towards other anionic or neutral substrates. The overall results are discussed in relation to present concepts regarding binding and phosphorolysis of substrates by PNP based on crystallographic data of enzyme-inhibitor complexes, and current studies on enzymatic and nonenzymatic mechanisms of the cleavage of the Nir glycosidic bond.</pubmed_abstract><pubmed_abstract>The recently identified nicotinamide riboside kinases (Nrks) constitute a distinct pathway of nicotinamide adenine dinucleotide (NAD) biosynthesis. Here we present the combination of an established optical adenosine triphosphatase (ATPase) test, the pyruvate kinase/lactate dehydrogenase system, with the Nrk-catalyzed reaction to determine kinetic properties of these enzymes, in particular affinities for ATP. The assay allows variation of both nucleoside and phosphate donor substrates, thereby providing major advantages for the characterization of these enzymes. We confirm previously established kinetic parameters and identify differences in substrate selectivity between the two human Nrk isoforms. The proposed assay is inexpensive and may be applied for high-throughput screening.</pubmed_abstract><pubmed_abstract>Nicotinamidases catalyze the hydrolysis of nicotinamide to nicotinic acid and ammonia. Nicotinamidases are absent in mammals but function in NAD(+) salvage in many bacteria, yeast, plants, protozoa, and metazoans. We have performed structural and kinetic investigations of the nicotinamidase from Saccharomyces cerevisiae (Pnc1). Steady-state product inhibitor analysis revealed an irreversible reaction in which ammonia is the first product released, followed by nicotinic acid. A series of nicotinamide analogues acting as inhibitors or substrates were examined, revealing that the nicotinamide carbonyl oxygen and ring nitrogen are critical for binding and reactivity. X-ray structural analysis revealed a covalent adduct between nicotinaldehyde and Cys167 of Pnc1 and coordination of the nicotinamide ring nitrogen to the active-site zinc ion. Using this structure as a guide, the function of several residues was probed via mutagenesis and primary (15)N and (13)C kinetic isotope effects (KIEs) on V/K for amide bond hydrolysis. The KIE values of almost all variants were increased, indicating that C-N bond cleavage is at least partially rate limiting; however, a decreased KIE for D51N was indicative of a stronger commitment to catalysis. In addition, KIE values using slower alternate substrates indicated that C-N bond cleavage is at least partially rate limiting with nicotinamide to highly rate limiting with thionicotinamide. A detailed mechanism involving nucleophilic attack of Cys167, followed by elimination of ammonia and then hydrolysis to liberate nicotinic acid, is discussed. These results will aid in the design of mechanism-based inhibitors to target pathogens that rely on nicotinamidase activity.</pubmed_abstract><pubmed_abstract>Nicotinamide methyltransferase (EC 2.1.1.1) has been purified over 1300-fold from porcine liver. The enzyme is electrophoretically homogeneous, exhibiting a relative molecular mass of 27,000. In addition to acting on nicotinamide and close structural analogs such as thionicotinamide and 3-acetylpyridine, the enzyme actively accommodates poor analogs such as quinoline, isoquinoline, and 1,2,3,4-tetrahydroisoquinoline as methyl group acceptors. The enzyme may thus have the function of detoxicating numerous alkaloids in vivo. In some cases, the action of the enzyme might paradoxically increase the toxicities of substrates, but the hepatotoxic antibiotic pyrazinamide, which we considered as potentially such an enzyme-activated electrophile, did not function detectably as a substrate for the isolated enzyme.</pubmed_abstract><pubmed_abstract>Human nicotinamide phosphoribosyltransferase (NAMPT, EC 2.4.2.12) catalyzes the reversible synthesis of nicotinamide mononucleotide (NMN) and inorganic pyrophosphate (PP i) from nicotinamide (NAM) and alpha- d-5-phosphoribosyl-1-pyrophosphate (PRPP). NAMPT, by capturing the energy provided by its facultative ATPase activity, allows the production of NMN at product:substrate ratios thermodynamically forbidden in the absence of ATP. With ATP hydrolysis coupled to NMN synthesis, the catalytic efficiency of the system is improved 1100-fold, substrate affinity dramatically increases ( K m (NAM) from 855 to 5 nM), and the K eq shifts -2.1 kcal/mol toward NMN formation. ADP-ATP isotopic exchange experiments support the formation of a high-energy phosphorylated intermediate (phospho-H247) as the mechanism for altered catalytic efficiency during ATP hydrolysis. NAMPT captures only a small portion of the energy generated by ATP hydrolysis to shift the dynamic chemical equilibrium. Although the weak energetic coupling of ATP hydrolysis appears to be a nonoptimized enzymatic function, closer analysis of this remarkable protein reveals an enzyme designed to capture NAM with high efficiency at the expense of ATP hydrolysis. NMN is a rate-limiting precursor for recycling to the essential regulatory cofactor, nicotinamide adenine dinucleotide (NAD (+)). NMN synthesis by NAMPT is powerfully inhibited by both NAD (+) ( K i = 0.14 muM) and NADH ( K i = 0.22 muM), an apparent regulatory feedback mechanism.</pubmed_abstract><pubmed_abstract>NAD is essential for cellular metabolism and has a key role in various signaling pathways in human cells. To ensure proper control of vital reactions, NAD must be permanently resynthesized. Nicotinamide and nicotinic acid as well as nicotinamide riboside (NR) and nicotinic acid riboside (NAR) are the major precursors for NAD biosynthesis in humans. In this study, we explored whether the ribosides NR and NAR can be generated in human cells. We demonstrate that purified, recombinant human cytosolic 5'-nucleotidases (5'-NTs) CN-II and CN-III, but not CN-IA, can dephosphorylate the mononucleotides nicotinamide mononucleotide and nicotinic acid mononucleotide (NAMN) and thus catalyze NR and NAR formation in vitro. Similar to their counterpart from yeast, Sdt1, the human 5'-NTs require high (millimolar) concentrations of nicotinamide mononucleotide or NAMN for efficient catalysis. Overexpression of FLAG-tagged CN-II and CN-III in HEK293 and HepG2 cells resulted in the formation and release of NAR. However, NAR accumulation in the culture medium of these cells was only detectable under conditions that led to increased NAMN production from nicotinic acid. The amount of NAR released from cells engineered for increased NAMN production was sufficient to maintain viability of surrounding cells unable to use any other NAD precursor. Moreover, we found that untransfected HeLa cells produce and release sufficient amounts of NAR and NR under normal culture conditions. Collectively, our results indicate that cytosolic 5'-NTs participate in the conversion of NAD precursors and establish NR and NAR as integral constituents of human NAD metabolism. In addition, they point to the possibility that different cell types might facilitate each other's NAD supply by providing alternative precursors.</pubmed_abstract><pubmed_abstract>Initial-rate and product inhibition studies revealed distinctive ordered ternary complex kinetic mechanisms, substrate specificities, and metal ion preferences for the three isozymes of human nicotinamide mononucleotide adenylyl-transferase (NMNAT, EC 2.7.7.1). ATP binds before NMN with nuclear isozyme NMNAT1 and Golgi apparatus NMNAT2, but the opposite order is observed with the mitochondrial isozyme NMNAT3. Only the latter utilizes ITP efficiently in place of ATP, and while NMNH conversion to NADH by NMNAT1 and NMNAT3 occurs at similar rates, conversion by NMNAT2 is much slower. These isozymes can also be discriminated by their action on tiazofurin monophosphate (TrMP), a metabolite of the antineoplastic prodrug tiazofurin. Our finding that TrMP is only a substrate with NMNAT1 and NMNAT3 reveals for the first time an organelle selectivity in the metabolism of this important drug. In search of additional ways to discriminate these isozymes, we synthesized and tested the P1-(nicotinamide/nicotinate-riboside-5')-Pn-(adenosine-5') dinucleotides Np3AD, Np4AD, and Nap4AD. In addition to being highly effective inhibitors, these multisubstrate geometric inhibitors gave inhibition patterns that are consistent with the aforementioned isozyme differences in substrate binding order. Distinctive differences in their substrate specificity and metal ion selectivity also permitted us to quantify individual isozyme contributions to NAD+ formation in human cell extracts.</pubmed_abstract><pubmed_abstract>Nicotinamide N-methyltransferase (NNMT) catalyzes the N-methylation of nicotinamide and other pyridines. Human liver NNMT activity has a bimodal frequency distribution, an observation which raises the possibility that this enzyme activity might be regulated by a genetic polymorphism, a polymorphism that could have functional implications for individual differences in drug and xenobiotic toxicity. As a first step toward testing that hypothesis, we set out to clone and express a cDNA for human liver NNMT. Human liver NNMT was partially purified, photoaffinity-labeled, subjected to limited proteolysis, and partial amino acid sequence information was obtained. The polymerase chain reaction was then used to amplify a 550-nucleotide sequence with human liver cDNA as template and primers designed on the basis of the NNMT amino acid sequence. The 5'- and 3'-ends of a human liver NNMT cDNA were obtained by use of the rapid amplification of cDNA ends. The combined use of these approaches resulted in the isolation of a human liver NNMT cDNA that was 969 nucleotides in length, with a 792-nucleotide open reading frame that encoded a 264-amino acid protein with a calculated molecular mass of 29.6 kDa. The human liver NNMT cDNA was transcribed in vitro and translated with a reticulocyte lysate system to yield a protein with a molecular mass of approximately 29 kDa that comigrated during SDS-polyacrylamide gel electrophoresis with photoaffinity-labeled human liver NNMT. The NNMT cDNA was also subcloned into the eukaryotic expression vector p91023(B). COS-1 cells transfected with this construct expressed a high level of NNMT enzymatic activity, and the biochemical properties of this activity were similar to those of human liver NNMT. Human liver NNMT and transfected COS-1 cell NNMT had apparent Km values for the two cosubstrates for the reaction, nicotinamide and S-adenosyl-L-methionine, of 0.43 and 0.38 mM and of 1.8 and 2.2 microM, respectively. IC50 values for the inhibition of NNMT by N1-methylnicotinamide were 60 and 30 microns for human liver and COS-1 cell-expressed NNMT, respectively. Cloning of a cDNA for human liver NNMT will help make it possible to test the hypothesis that inheritance may play a role in the regulation of individual differences in human liver NNMT activity.</pubmed_abstract><pubmed_title>Application of a coupled enzyme assay to characterize nicotinamide riboside kinases.</pubmed_title><pubmed_title>Structural and kinetic isotope effect studies of nicotinamidase (Pnc1) from Saccharomyces cerevisiae.</pubmed_title><pubmed_title>Human liver nicotinamide N-methyltransferase. cDNA cloning, expression, and biochemical characterization.</pubmed_title><pubmed_title>Nicotinamide riboside, an unusual, non-typical, substrate of purified purine-nucleoside phosphorylases.</pubmed_title><pubmed_title>Subcellular compartmentation and differential catalytic properties of the three human nicotinamide mononucleotide adenylyltransferase isoforms.</pubmed_title><pubmed_title>Generation, Release, and Uptake of the NAD Precursor Nicotinic Acid Riboside by Human Cells.</pubmed_title><pubmed_title>Purification and properties of yeast nicotinamide adenine dinucleotide synthetase.</pubmed_title><pubmed_title>Weak coupling of ATP hydrolysis to the chemical equilibrium of human nicotinamide phosphoribosyltransferase.</pubmed_title><pubmed_title>Initial-rate kinetics of human NMN-adenylyltransferases: substrate and metal ion specificity, inhibition by products and multisubstrate analogues, and isozyme contributions to NAD+ biosynthesis.</pubmed_title><pubmed_title>Substrate specificity of nicotinamide methyltransferase isolated from porcine liver.</pubmed_title><pubmed_authors>Wielgus-Kutrowska B B, Kulikowska E E, Wierzchowski J J, Bzowska A A, Shugar D D</pubmed_authors><pubmed_authors>Dölle Christian C, Ziegler Mathias M</pubmed_authors><pubmed_authors>Aksoy S S, Szumlanski C L CL, Weinshilboum R M RM</pubmed_authors><pubmed_authors>Yi C K CK, Dietrich L S LS</pubmed_authors><pubmed_authors>Berger Felicitas F, Lau Corinna C, Dahlmann Mathias M, Ziegler Mathias M</pubmed_authors><pubmed_authors>Smith Brian C BC, Anderson Mark A MA, Hoadley Kelly A KA, Keck James L JL, Cleland W Wallace WW, Denu John M JM</pubmed_authors><pubmed_authors>Sorci Leonardo L, Cimadamore Flavio F, Scotti Stefania S, Petrelli Riccardo R, Cappellacci Loredana L, Franchetti Palmarisa P, Orsomando Giuseppe G, Magni Giulio G</pubmed_authors><pubmed_authors>Burgos Emmanuel S ES, Schramm Vern L VL</pubmed_authors><pubmed_authors>Alston T A TA, Abeles R H RH</pubmed_authors><pubmed_authors>Kulikova Veronika V, Shabalin Konstantin K, Nerinovski Kirill K, Dölle Christian C, Niere Marc M, Yakimov Alexander A, Redpath Philip P, Khodorkovskiy Mikhail M, Migaud Marie E ME, Ziegler Mathias M, Nikiforov Andrey A</pubmed_authors></additional><is_claimable>false</is_claimable><name>Heiland2019 - Two compartment model of NAD biosynthesis and consumption</name><description>The model is based on MODEL1905220001 but has two compartments that have different composition of the biosynthetic enzymes NADA and NamPT. One compartment contains in addition NNMT, the other one does not. Both compartments are competing for a common Nam source.</description><dates><last_modification>2019-07-25</last_modification><publication>2019-08-01</publication><submission>2019-05-22</submission></dates><accession>MODEL1905220002</accession><cross_references><ec-code>2.4.2.11</ec-code><ec-code>2.7.7.18</ec-code><ec-code>2.7.7.1</ec-code><ec-code>6.3.5.1</ec-code><ec-code>3.1.3.5</ec-code><ec-code>2.1.1.1</ec-code><ec-code>3.5.1.-</ec-code><ec-code>3.5.1.19</ec-code><ec-code>2.4.2.12</ec-code><ec-code>2.7.1.173</ec-code><ec-code>2.4.2.1</ec-code><pubmed>18823127</pubmed><pubmed>17402747</pubmed><pubmed>16118205</pubmed><pubmed>4340699</pubmed><pubmed>26385918</pubmed><pubmed>9030766</pubmed><pubmed>8182091</pubmed><pubmed>2963591</pubmed><pubmed>22229411</pubmed><pubmed>19027704</pubmed><brenda>441255</brenda><doi>10.1073/pnas.1902346116</doi><doi>10.1016/S0163-7258(00)00097-8</doi><doi>10.1021/bi049592e</doi></cross_references></HashMap>