An integrated network analysis reveals that nitric oxide reductase prevents metabolic cycling of nitric oxide by Pseudomonas aeruginosa

被引:17
作者
Robinson, Jonathan L. [1 ,4 ]
Jaslove, Jacob M. [2 ,3 ]
Murawski, Allison M. [2 ,3 ]
Fazen, Christopher H. [1 ,5 ]
Brynildsen, Mark P. [1 ,2 ]
机构
[1] Princeton Univ, Dept Chem & Biol Engn, Princeton, NJ 08544 USA
[2] Princeton Univ, Dept Mol Biol, Princeton, NJ 08544 USA
[3] Rutgers Robert Wood Johnson Med Sch, Piscataway, NJ 08854 USA
[4] Chalmers Univ Technol, Dept Biol & Biol Engn, SE-41296 Gothenburg, Sweden
[5] Coll New Jersey, Dept Chem, Ewing, NJ 08628 USA
基金
美国国家科学基金会;
关键词
Metabolic cycle; Kinetic model; Oscillations; NO reductase; Fhp; Denitrification; CYSTIC-FIBROSIS; NITRATE REDUCTASE; ESCHERICHIA-COLI; TRANSCRIPTIONAL REGULATION; ANTIBIOTIC-RESISTANCE; BACTERIAL HEMOGLOBINS; NITROSATIVE STRESS; BIOFILM FORMATION; ANAEROBIC GROWTH; MODEL SELECTION;
D O I
10.1016/j.ymben.2017.03.006
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Nitric oxide (NO) is a chemical weapon within the arsenal of immune cells, but is also generated endogenously by different bacteria. Pseudomonas aeruginosa are pathogens that contain an NO-generating nitrite (NO2 ) reductase (NirS), and NO has been shown to influence their virulence. Interestingly, P. aeruginosa also contain NO dioxygenase (Fhp) and nitrate (NO3 (-)) reductases, which together with NirS provide the potential for NO to be metabolically cycled (NO -> NO3 (-)-> NO2 (-)-> NO). Deeper understanding of NO metabolism in P. aeruginosa will increase knowledge of its pathogenesis, and computational models have proven to be useful tools for the quantitative dissection of NO biochemical networks. Here we developed such a model for P. aeruginosa and confirmed its predictive accuracy with measurements of NO, O-2, NO2 (-), and NO3 (-) in mutant cultures devoid of Fhp or NorCB (NO reductase) activity. Using the model, we assessed whether NO was metabolically cycled in aerobic P. aeruginosa cultures. Calculated fluxes indicated a bottleneck at NO3 (-), which was relieved upon O-2 depletion. As cell growth depleted dissolved O-2 levels, NO3 (-) was converted to NO2 (-) at near-stoichiometric levels, whereas NO2 (-) consumption did not coincide with NO or NO3 (-) accumulation. Assimilatory NO2 reductase (NirBD) or NorCB activity could have prevented NO cycling, and experiments with Delta nirB,Delta nirS, and Delta norC showed that NorCB was responsible for loss of flux from the cycle. Collectively, this work provides a computational tool to analyze NO metabolism in P. aeruginosa, and establishes that P. aeruginosa use NorCB to prevent metabolic cycling of NO.
引用
收藏
页码:67 / 81
页数:15
相关论文
共 50 条
  • [41] Is nitrate reductase a major player in the plant NO (nitric oxide) game?
    Meyer, C
    Lea, US
    Provan, F
    Kaiser, WM
    Lillo, C
    [J]. PHOTOSYNTHESIS RESEARCH, 2005, 83 (02) : 181 - 189
  • [42] Bacterial nitric oxide reductase: a mechanism revisited by an ONIOM (DFT:MM) study
    Attia, Amr A. A.
    Silaghi-Dumitrescu, Radu
    [J]. JOURNAL OF MOLECULAR MODELING, 2015, 21 (05)
  • [43] Nitric Oxide Stress Resistance in Porphyromonas gingivalis Is Mediated by a Putative Hydroxylamine Reductase
    Boutrin, Marie-Claire
    Wang, Charles
    Aruni, Wilson
    Li, Xiaojin
    Fletcher, Hansel M.
    [J]. JOURNAL OF BACTERIOLOGY, 2012, 194 (06) : 1582 - 1592
  • [44] Nitric oxide as a developmental and metabolic signal in filamentous fungi
    Zhao, Yanxia
    Lim, Jieyin
    Xu, Jianyang
    Yu, Jae-Hyuk
    Zheng, Weifa
    [J]. MOLECULAR MICROBIOLOGY, 2020, 113 (05) : 872 - 882
  • [45] Oxidation of nitric oxide by a new heterotrophic Pseudomonas sp.
    Koschorreck, M
    Moore, E
    Conrad, R
    [J]. ARCHIVES OF MICROBIOLOGY, 1996, 166 (01) : 23 - 31
  • [46] PTP1B negatively regulates nitric oxide-mediated Pseudomonas aeruginosa killing by neutrophils
    Yue, Lei
    Yan, Min
    Tremblay, Michel L.
    Lin, Tong-Jun
    Li, Hua
    Yang, Ting
    Song, Xia
    Xie, Tianhong
    Xie, Zhongping
    [J]. PLOS ONE, 2019, 14 (09):
  • [47] METABOLISM OF NITRIC-OXIDE IN DENITRIFYING PSEUDOMONAS-AERUGINOSA AND NITRATE-RESPIRING BACILLUS-CEREUS
    KALKOWSKI, I
    CONRAD, R
    [J]. FEMS MICROBIOLOGY LETTERS, 1991, 82 (01) : 107 - 111
  • [48] Analysis of multiple haloarchaeal genomes suggests that the quinone-dependent respiratory nitric oxide reductase is an important source of nitrous oxide in hypersaline environments
    Torregrosa-Crespo, Javier
    Gonzalez-Torres, Pedro
    Bautista, Vanesa
    Esclapez, Julia M.
    Pire, Carmen
    Camacho, Monica
    Jose Bonete, Maria
    Richardson, David J.
    Watmough, Nicholas J.
    Maria Martinez-Espinosa, Rosa
    [J]. ENVIRONMENTAL MICROBIOLOGY REPORTS, 2017, 9 (06): : 788 - 796
  • [49] Nitric Reductase-Dependent Nitric Oxide Production Is Involved in Cold Acclimation and Freezing Tolerance in Arabidopsis
    Zhao, Min-Gui
    Chen, Lei
    Zhang, Li-Li
    Zhang, Wen-Hao
    [J]. PLANT PHYSIOLOGY, 2009, 151 (02) : 755 - 767
  • [50] Functional interactions between nitrite reductase and nitric oxide reductase from Paracoccus denitrificans
    Albertsson, Ingrid
    Sjoholm, Johannes
    ter Beek, Josy
    Watmough, Nicholas J.
    Widengren, Jerker
    Adelroth, Pia
    [J]. SCIENTIFIC REPORTS, 2019, 9 (1)