Literature DB >> 16452403

Oxygen reactivity of PutA from Helicobacter species and proline-linked oxidative stress.

Navasona Krishnan1, Donald F Becker.   

Abstract

Proline is converted to glutamate in two successive steps by the proline utilization A (PutA) flavoenzyme in gram-negative bacteria. PutA contains a proline dehydrogenase domain that catalyzes the flavin adenine dinucleotide (FAD)-dependent oxidation of proline to delta1-pyrroline-5-carboxylate (P5C) and a P5C dehydrogenase domain that catalyzes the NAD+-dependent oxidation of P5C to glutamate. Here, we characterize PutA from Helicobacter hepaticus (PutA(Hh)) and Helicobacter pylori (PutA(Hp)) to provide new insights into proline metabolism in these gastrointestinal pathogens. Both PutA(Hh) and PutA(Hp) lack DNA binding activity, in contrast to PutA from Escherichia coli (PutA(Ec)), which both regulates and catalyzes proline utilization. PutA(Hh) and PutA(Hp) display catalytic activities similar to that of PutA(Ec) but have higher oxygen reactivity. PutA(Hh) and PutA(Hp) exhibit 100-fold-higher turnover numbers (approximately 30 min(-1)) than PutA(Ec) (<0. 3 min(-1)) using oxygen as an electron acceptor during catalytic turnover with proline. Consistent with increased oxygen reactivity, PutA(Hh) forms a reversible FAD-sulfite adduct. The significance of increased oxygen reactivity in PutA(Hh) and PutA(Hp) was probed by oxidative stress studies in E. coli. Expression of PutA(Ec) and PutA from Bradyrhizobium japonicum, which exhibit low oxygen reactivity, does not diminish stress survival rates of E. coli cell cultures. In contrast, PutA(Hp) and PutA(Hh) expression dramatically reduces E. coli cell survival and is correlated with relatively lower proline levels and increased hydrogen peroxide formation. The discovery of reduced oxygen species formation by PutA suggests that proline catabolism may influence redox homeostasis in the ecological niches of these Helicobacter species.

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Year:  2006        PMID: 16452403      PMCID: PMC1367249          DOI: 10.1128/JB.188.4.1227-1235.2006

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  67 in total

1.  Regulation of flavin dehydrogenase compartmentalization: requirements for PutA-membrane association in Salmonella typhimurium.

Authors:  M W Surber; S Maloy
Journal:  Biochim Biophys Acta       Date:  1999-09-21

2.  Regulation of proline utilization in Salmonella typhimurium: a membrane-associated dehydrogenase binds DNA in vitro.

Authors:  P Ostrovsky de Spicer; K O'Brien; S Maloy
Journal:  J Bacteriol       Date:  1991-01       Impact factor: 3.490

3.  The reactivity of chicken liver xanthine dehydrogenase with molecular oxygen.

Authors:  T Nishino; T Nishino; L M Schopfer; V Massey
Journal:  J Biol Chem       Date:  1989-02-15       Impact factor: 5.157

4.  Proline catabolism by Pseudomonas putida: cloning, characterization, and expression of the put genes in the presence of root exudates.

Authors:  S Vílchez; L Molina; C Ramos; J L Ramos
Journal:  J Bacteriol       Date:  2000-01       Impact factor: 3.490

5.  Proline metabolism in N2-fixing root nodules: energy transfer and regulation of purine synthesis.

Authors:  D H Kohl; K R Schubert; M B Carter; C H Hagedorn; G Shearer
Journal:  Proc Natl Acad Sci U S A       Date:  1988-04       Impact factor: 11.205

Review 6.  The chemical and biological versatility of riboflavin.

Authors:  V Massey
Journal:  Biochem Soc Trans       Date:  2000       Impact factor: 5.407

7.  An NADPH quinone reductase of Helicobacter pylori plays an important role in oxidative stress resistance and host colonization.

Authors:  Ge Wang; Robert J Maier
Journal:  Infect Immun       Date:  2004-03       Impact factor: 3.441

8.  Gene dosage effect of L-proline biosynthetic enzymes on L-proline accumulation and freeze tolerance in Saccharomyces cerevisiae.

Authors:  Yukiyasu Terao; Shigeru Nakamori; Hiroshi Takagi
Journal:  Appl Environ Microbiol       Date:  2003-11       Impact factor: 4.792

9.  L-Serine, D- and L-proline and alanine as respiratory substrates of Helicobacter pylori: correlation between in vitro and in vivo amino acid levels.

Authors:  Kumiko Nagata; Yoko Nagata; Tadashi Sato; Masayuki A Fujino; Kazuhiko Nakajima; Toshihide Tamura
Journal:  Microbiology       Date:  2003-08       Impact factor: 2.777

10.  Osmoprotection of Escherichia coli by peptone is mediated by the uptake and accumulation of free proline but not of proline-containing peptides.

Authors:  M R Amezaga; I R Booth
Journal:  Appl Environ Microbiol       Date:  1999-12       Impact factor: 4.792

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  28 in total

1.  Proline dehydrogenase is a positive regulator of cell death in different kingdoms.

Authors:  Nicolás M Cecchini; Mariela I Monteoliva; María E Alvarez
Journal:  Plant Signal Behav       Date:  2011-08-01

2.  Structure and characterization of a class 3B proline utilization A: Ligand-induced dimerization and importance of the C-terminal domain for catalysis.

Authors:  David A Korasick; Thameesha T Gamage; Shelbi Christgen; Kyle M Stiers; Lesa J Beamer; Michael T Henzl; Donald F Becker; John J Tanner
Journal:  J Biol Chem       Date:  2017-04-18       Impact factor: 5.157

3.  Proline utilization system is required for infection by the pathogenic α-proteobacterium Brucella abortus.

Authors:  Mitchell T Caudill; James A Budnick; Lauren M Sheehan; Christian R Lehman; Endang Purwantini; Biswarup Mukhopadhyay; Clayton C Caswell
Journal:  Microbiology (Reading)       Date:  2017-07-21       Impact factor: 2.777

4.  Proline metabolism increases katG expression and oxidative stress resistance in Escherichia coli.

Authors:  Lu Zhang; James R Alfano; Donald F Becker
Journal:  J Bacteriol       Date:  2014-11-10       Impact factor: 3.490

5.  Characterization of a Helicobacter hepaticus putA mutant strain in host colonization and oxidative stress.

Authors:  Navasona Krishnan; Alan R Doster; Gerald E Duhamel; Donald F Becker
Journal:  Infect Immun       Date:  2008-05-05       Impact factor: 3.441

6.  A two-component regulatory system integrates redox state and population density sensing in Pseudomonas putida.

Authors:  Regina Fernández-Piñar; Juan Luis Ramos; José Juan Rodríguez-Herva; Manuel Espinosa-Urgel
Journal:  J Bacteriol       Date:  2008-09-26       Impact factor: 3.490

7.  Structural basis of the transcriptional regulation of the proline utilization regulon by multifunctional PutA.

Authors:  Yuzhen Zhou; John D Larson; Christopher A Bottoms; Emilia C Arturo; Michael T Henzl; Jermaine L Jenkins; Jay C Nix; Donald F Becker; John J Tanner
Journal:  J Mol Biol       Date:  2008-06-07       Impact factor: 5.469

8.  Solution structure of the Pseudomonas putida protein PpPutA45 and its DNA complex.

Authors:  Steven Halouska; Yuzhen Zhou; Donald F Becker; Robert Powers
Journal:  Proteins       Date:  2009-04

Review 9.  The ferric uptake regulator of Helicobacter pylori: a critical player in the battle for iron and colonization of the stomach.

Authors:  Oscar Q Pich; D Scott Merrell
Journal:  Future Microbiol       Date:  2013-06       Impact factor: 3.165

10.  Proline modulates the intracellular redox environment and protects mammalian cells against oxidative stress.

Authors:  Navasona Krishnan; Martin B Dickman; Donald F Becker
Journal:  Free Radic Biol Med       Date:  2007-11-12       Impact factor: 7.376

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