Literature DB >> 7021549

The pyridine nucleotide cycle. Studies in Escherichia coli and the human cell line D98/AH2.

D Hillyard, M Rechsteiner, P Manlapaz-Ramos, J S Imperial, L J Cruz, B M Olivera.   

Abstract

Different metabolic steps comprise the pyridine nucleotide cycles in Escherichia coli and in the human cell line HeLa D98/AH2. An analysis of the 32P-labeling patterns in vivo reveals that in E. coli, pyrophosphate bond cleavage of intracellular NAD predominates, while in the human cell line, cleavage of the nicotinamide ribose bond predominates. In E. coli, intracellular NAD is processed differently from extracellular NAD. Conversion of intracellular NAD to nicotinic acid mononucleotide (NaMN) can be demonstrated in intact cells. We have also assayed and purified an enzyme, NMN deamidase, which converts NMN to NaMN. These data suggest that in E. coli, the predominant intracellular pyridine nucleotide cycle operative under our experimental conditions is: NAD leads to NMN leads to NaMN leads to NaAD leads to NAD Thus, a metabolic event requiring pyrophosphate bond cleavage of NAD, such as DNA ligation, initiates most NAD turnover. In the human cell line, the data are consistent with the following NAD turnover cycle: (formula, see text) Whereas in E. coli, ADP-ribosylation does not make a quantitatively important contribution, we suggest that in HeLa cells, ADP-ribosylation events initiate NAD turnover.

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Year:  1981        PMID: 7021549

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  17 in total

1.  The Poly(ADP-ribose) polymerase PARP-1 is required for oxidative stress-induced TRPM2 activation in lymphocytes.

Authors:  Ben Buelow; Yumei Song; Andrew M Scharenberg
Journal:  J Biol Chem       Date:  2008-07-03       Impact factor: 5.157

Review 2.  Poly(ADP-ribosyl)ation reactions in the regulation of nuclear functions.

Authors:  D D'Amours; S Desnoyers; I D'Silva; G G Poirier
Journal:  Biochem J       Date:  1999-09-01       Impact factor: 3.857

3.  Isolation of NAD cycle mutants defective in nicotinamide mononucleotide deamidase in Salmonella typhimurium.

Authors:  W Cheng; J Roth
Journal:  J Bacteriol       Date:  1995-12       Impact factor: 3.490

4.  Identification of Isn1 and Sdt1 as glucose- and vitamin-regulated nicotinamide mononucleotide and nicotinic acid mononucleotide [corrected] 5'-nucleotidases responsible for production of nicotinamide riboside and nicotinic acid riboside.

Authors:  Katrina L Bogan; Charles Evans; Peter Belenky; Peng Song; Charles F Burant; Robert Kennedy; Charles Brenner
Journal:  J Biol Chem       Date:  2009-10-21       Impact factor: 5.157

Review 5.  3T3-L1 preadipocyte differentiation and poly(ADP-ribose) synthetase.

Authors:  P H Pekala; J Moss
Journal:  Mol Cell Biochem       Date:  1983       Impact factor: 3.396

6.  Biosynthesis and recycling of nicotinamide cofactors in mycobacterium tuberculosis. An essential role for NAD in nonreplicating bacilli.

Authors:  Helena I M Boshoff; Xia Xu; Kapil Tahlan; Cynthia S Dowd; Kevin Pethe; Luis R Camacho; Tae-Ho Park; Chang-Soo Yun; Dirk Schnappinger; Sabine Ehrt; Kerstin J Williams; Clifton E Barry
Journal:  J Biol Chem       Date:  2008-05-19       Impact factor: 5.157

7.  Permeability of Rickettsia prowazekii to NAD.

Authors:  W H Atkinson; H H Winkler
Journal:  J Bacteriol       Date:  1989-02       Impact factor: 3.490

8.  Structural gene for NAD synthetase in Salmonella typhimurium.

Authors:  K T Hughes; B M Olivera; J R Roth
Journal:  J Bacteriol       Date:  1988-05       Impact factor: 3.490

9.  Nucleoside salvage pathway for NAD biosynthesis in Salmonella typhimurium.

Authors:  G Liu; J Foster; P Manlapaz-Ramos; B M Olivera
Journal:  J Bacteriol       Date:  1982-12       Impact factor: 3.490

10.  Activity of the nicotinamide mononucleotide transport system is regulated in Salmonella typhimurium.

Authors:  N Zhu; B M Olivera; J R Roth
Journal:  J Bacteriol       Date:  1991-02       Impact factor: 3.490

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