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References

  • 1
    Bertin G & Averbeck D (2006) Cadmium: cellular effects, modifications of biomolecules, modulation of DNA repair and genotoxic consequences (a review). Biochimie 88, 15491559.
  • 2
    Filipič M, Fatur T & Vudrag M (2006) Molecular mechanisms of cadmium induced mutagenicity. Hum Exp Toxicol 25, 6777.
  • 3
    Navarro Silvera SA & Rohan TE (2007) Trace elements and cancer risk: a review of the epidemiologic evidence. Cancer Causes Control 18, 727.
  • 4
    Valko M, Rhodes CJ, Moncola J, Izakovic M & Mazura M (2006) Free radicals, metals and antioxidants in oxidative stress-induced cancer. Chem Biol Interact 160, 140.
  • 5
    Naučienė Z, Mildažienė V & Banienė R (2002) Interactions of cadmium and copper ions with complex I of the respiratory chain in rat liver mitochondria. Ekologija 2, 1821.
  • 6
    Ron EZ, Minz D, Finkelstein NP & Rosenberg E (1992) Interactions of bacteria with cadmium. Biodegradation 3, 161170.
  • 7
    Kwon SJ, Park JW & Kim K (1994) Inhibition of metal-catalyzed oxidation systems by a yeast protector protein in the presence of thiol. Biochem Mol Biol Int 32, 419427.
  • 8
    Zegers I, Martins JC, Willem R, Wyns L & Messens J (2001) Arsenate reductase from S. aureus plasmid pI258 is a phosphatase drafted for redox duty. Nat Struct Biol 8, 843847.
  • 9
    Hayashi S, Abe M, Kimoto M, Furukawa S & Nakazawa T (2000) The dsbA–dsbB disulfide bond formation system of Burkholderia cepacia is involved in the production of protease and alkaline phosphatase, motility, metal resistance, and multi-drug resistance. Microbiol Immunol 44, 4150.
  • 10
    Rosato V, Pucello N & Giuliano G (2002) Evidence for cysteine clustering in thermophilic proteomes. Trends Genet 18, 278281.
  • 11
    Maret W (2006) Zinc coordination environments in proteins as redox sensors and signal transducers. Antioxid Redox Signal 8, 14191441.
  • 12
    Masip L, Veeravalli K & Georgiou G (2006) The many faces of glutathione in bacteria. Antioxid Redox Signal 8, 753762.
  • 13
    Herbette S, Taconnat L, Hugouvieux V, Piette L, Magniette M-LM, Cuine S, Auroy P, Richaud P, Forestier C, Bourguignon J et al. (2006) Genome-wide transcriptome profiling of the early cadmium response of Arabidopsis roots and shoots. Biochimie 88, 17511765.
  • 14
    Seib KL, Wu H-J, Kidd SP, Apicella MA, Jennings MP & McEwan AG (2006) Defenses against oxidative stress in Neisseria gonorrhoeae: a system tailored for a challenging environment. Microbiol Mol Biol Rev 70, 344361.
  • 15
    John R, Ahmad P, Gadgil K & Sharma S (2007) Antioxidative response of Lemna polyrrhiza L. to cadmium stress. J Environ Biol 28, 583589.
  • 16
    Gillet S, Decottignies P, Chardonnet S & Le Maréchal P (2006) Cadmium response and redoxin targets in Chlamydomonas reinhardtii: a proteomic approach. Photosynth Res 89, 201211.
  • 17
    El-Rab SMFG, Shoreit AA-F & Fukumori Y (2006) Effects of cadmium stress on growth, morphology, and protein expression in Rhodobacter capsulatus B10. Biosci Biotechnol Biochem 70, 23942402.
  • 18
    Ferianc P, Farewell A & Nyström T (1998) The cadmium-stress stimulon of Escherichia coli K-12. Microbiology 144, 10451050.
  • 19
    Vido K, Spector D, Lagniel G, Lopez S, Toledano MB & Labarre J (2001) A proteome analysis of the cadmium response in Saccharomyces cerevisiae. J Biol Chem 276, 84698474.
  • 20
    Lee S-E, Yoo D-h, Son J & Cho K (2006) Proteomic evaluation of cadmium toxicity on the midge Chironomus riparius Meigen larvae. Proteomics 6, 945957.
  • 21
    Moore JE, Corcoran D, Dooley JSG, Fanning S, Lucey B, Matsuda M, McDowell DA, Mégraud F, Millar BC, O’Mahony R et al. (2005) Campylobacter. Vet Res 36, 351382.
  • 22
    Kazmi SU, Roberson BS & Stern NJ (1985) Cadmium chloride susceptibility, a characteristic of Campylobacter spp. J Clin Microbiol 21, 708710.
  • 23
    Stern NJ, Kazmi SU, Roberson BS, Ono K & Juven BJ (1988) Response of Campylobacter jejuni to combinations of ferrous sulphate and cadmium chloride. J Appl Bacteriol 64, 247255.
  • 24
    Leal RS (1965) Effects of alkali-metal ions on phospholipid and triglyceride synthesis in rat liver slices. J Lipid Res 6, 8083.
  • 25
    Pennanen T, Frostegard Å, Fritze H & Baath E (1996) Phospholipid fatty acid composition and heavy metal tolerance of soil microbial communities along two heavy metal-polluted gradients in coniferous forests. Appl Environ Microbiol 62, 420428.
  • 26
    Strydom C, Robinson C, Pretorius E, Whitcutt JM, Marx J & Bornman MS (2006) The effect of selected metals on the central metabolic pathways in biology: a review. Water SA 32, 543554.
  • 27
    Lu SC (2000) S-Adenosylmethionine. Int J Biochem Cell Biol 32, 391395.
  • 28
    Ueland PM (1982) Pharmacological and biochemical aspects of S-adenosylhomocysteine and S-adenosylhomocysteine hydrolase. Pharmacol Rev 34, 223253.
  • 29
    Bochner BR, Lee PC, Wilson SW, Cutler CW & Ames BN (1984) AppppA and related adenylylated nucleotides are synthesized as a consequence of oxidation stress. Cell 37, 225232.
  • 30
    Pálfi Z, Surányi G & Borbély G (1991) Alterations in the accumulation of adenylylated nucleotides in heavy-metal-ion-stressed and heat-stressed Synechococcus sp. strain PCC 6301, a cyanobacterium, in light and dark. Biochem J 276, 487491.
  • 31
    Pietrowska-Borek M, Stuible H-P, Kombrink E & Guranowski A (2003) 4-Coumarate:coenzyme A ligase has the catalytic capacity to synthesize and reuse various (di)adenosine polyphosphates. Plant Physiol 131, 14011410.
  • 32
    Michel C, Giudici-Orticoni M-T, Baymann F & Bruschi M (2003) Bioremediation of chromate by sulfate-reducing bacteria, cytochromes c3 and hydrogenases. Water Air Soil Pollut 3, 161169.
  • 33
    Pitson SM, Mendz GL, Srinivasan S & Hazell SL (1999) The tricarboxylic acid cycle of Helicobacter pylori. Eur J Biochem 260, 258267.
  • 34
    Gasque L, Bernès S, Ferrari R & Mendoza-Díaz G (2002) Cadmium complexation by aspartate. NMR studies and crystal structure of polymeric Cd(AspH)NO3. Polyhedron 21, 935941.
  • 35
    Rollin-Genetet F, Berthomieu C, Davin A-H & Quemeneur E (2004) Escherichia coli thioredoxin inhibition by cadmium: two mutually exclusive binding sites involving Cys32 and Asp26. Eur J Biochem 271, 12991309.
  • 36
    Chiang PN, Wang MK, Chiu CY & Chou SY (2006) Effects of cadmium amendments on low-molecular-weight organic acid exudates in rhizosphere soils of tobacco and sunflower. Environ Toxicol 21, 479488.
  • 37
    Filella M, Town RM & Bugarin MG (1999) Cadmium succinate and cadmium malate stability constants revisited. J Chem Eng Data 44, 10091019.
  • 38
    Jócsák I, Végvári G & Droppa M (2005) Heavy metal detoxication by organic acids in barley seedlings. Proceedings of the Eighth Hungarian Congress on Plant Physiology and the Sixth Hungarian Conference on Photosynthesis, 2005 49, 99101.
  • 39
    Ueno D, Ma JF, Iwashita T, Zhao F-J & McGrath SP (2005) Identification of the form of Cd in the leaves of a superior Cd-accumulating ecotype of Thlaspi caerulescens using 113Cd-NMR. Planta 221, 928936.
  • 40
    Chassagnole C, Quentin E, Fell DA, de Atauri P & Mazat JP (2003) Dynamic simulation of pollutant effects on the threonine pathway in Escherichia coli. C R Biol 326, 501508.
  • 41
    Wang A & Crowley DE (2005) Global gene expression responses to cadmium toxicity in Escherichia coli. J Bacteriol 187, 32593266.
  • 42
    Yuvaniyama P, Agar JN, Cash VL, Johnson MK & Dean DR (2000) NifS-directed assembly of a transient [2Fe–2S] cluster within the NifU protein. Proc Natl Acad Sci USA 97, 599604.
  • 43
    Van Bogelen RA, Kelley PM & Neidhart FC (1987) Differential induction of heat shock, SOS, and oxidation stress regulons and accumulation of nucleotides in Escherichia coli. J Bacteriol 169, 2632.
  • 44
    Silvestre F, Dierick JF, Dumont V, Dieu M, Raes M & Devos P (2006) Differential protein expression profiles in anterior gills of Eriocheir sinensis during acclimation to cadmium. Aquat Toxicol 76, 4658.
  • 45
    Lacerda CM, Choe LH & Reardon KF (2007) Metaproteomic analysis of a bacterial community response to cadmium exposure. J Proteome Res 6, 11451152.
  • 46
    Hu P, Brodie EL, Suzuki Y, McAdams HH & Andersen GL (2005) Whole-genome transcriptional analysis of heavy metal stresses in Caulobacter crescentus. J Bacteriol 187, 84378449.
  • 47
    Jones PR & Desiot PJ (1978) The less familiar reactions of organocadmium reagents. Chem Rev 78, 491516.
  • 48
    Shi W, Yang Z, Geng Y, Wolinsky LE & Lovett MA (1998) Chemotaxis in Borrelia burgdorferi. J Bacteriol 180, 231235.
  • 49
    Maurer LM, Yohannes E, Bondurant SS, Radmacher M & Slonczewski JL (2005) pH regulates genes for flagellar motility, catabolism, and oxidative stress in Escherichia coli K-12. J Bacteriol 187, 304319.
  • 50
    Butler SM & Camilli A (2005) Going against the grain: chemotaxis and infection in Vibrio cholerae. Nat Rev Microbiol 3, 611620.
  • 51
    Parkhill J, Wren BW, Mungall K, Ketley JM, Churcher C, Basham D, Chillingworth T, Davies RM, Feltwell T, Holroyd S et al. (2000) The genome sequence of the food-borne pathogen Campylobacter jejuni reveals hypervariable sequences. Nature 403, 665668.
  • 52
    von Mering C, Jensen LJ, Kuhn M, Chaffron S, Doerks T, Kruger B, Snel B & Bork P (2007) STRING 7 – recent developments in the integration and prediction of protein interactions. Nucleic Acids Res 35, D358D362.
  • 53
    Muller JP, Vedel M, Monnot MJ, Touzet N & Wegnez M (1991) Molecular cloning and expression of ferritin mRNA in heavy metal-poisoned Xenopus laevis cells. DNA Cell Biol 10, 571579.
  • 54
    Wai SN, Nakayama K, Umene K, Moriya T & Amako K (1996) Construction of a ferritin-deficient mutant of Campylobacter jejuni: contribution of ferritin to iron storage and protection against oxidative stress. Mol Microbiol 20, 11271134.
  • 55
    Ishikawa T, Mizunoe Y, Kawabata S, Takade A, Harada M, Wai SN & Yoshida S (2003) The iron-binding protein Dps confers hydrogen peroxide stress resistance to Campylobacter jejuni. J Bacteriol 185, 10101017.
  • 56
    Chauhan S, Titus DE & O’Brian MR (1997) Metals control activity and expression of the heme biosynthesis enzyme delta-aminolevulinic acid dehydratase in Bradyrhizobium japonicum. J Bacteriol 179, 55165520.
  • 57
    Grosse C, Grass G, Anton A, Franke S, Santos AN, Lawley B, Brown NL & Nies DH (1999) Transcriptional organization of the czc heavy-metal homeostasis determinant from Alcaligenes eutrophus. J Bacteriol 181, 23852393.
  • 58
    Perron K, Caille O, Rossier C, Van Delden C, Dumas JL & Kohler T (2004) CzcR–CzcS, a two-component system involved in heavy metal and carbapenem resistance in Pseudomonas aeruginosa. J Biol Chem 279, 87618768.
  • 59
    Henehan CJ, Pountney DL, Zerbe O & Vasak M (1993) Identification of cysteine ligands in metalloproteins using optical and NMR spectroscopy: cadmium-substituted rubredoxin as a model [Cd(CysS)(4)](2-) center. Protein Sci 2, 17561764.
  • 60
    Adams TK, Saydam N, Steiner F, Schaffner W & Freedman JH (2002) Activation of gene expression by metal-responsive signal transduction pathways. Environ Health Perspect 110, 813817.
  • 61
    Scott K, Diggle MA & Clarke SC (2003) TypA is a virulence regulator and is present in many pathogenic bacteria. Br J Biomed Sci 60, 168170.
  • 62
    Lin Y-F, Wu M-S, Chang C-C, Lin S-W, Lin J-T, Sun Y-J, Chen D-S & Chow L-P (2006) Comparative immunoproteomics of identification and characterization of virulence factors from Helicobacter pylori related to gastric cancer. Mol Cell Proteomics 5, 14841496.
  • 63
    Kaakoush NO, Sterzenbach T, Miller WG, Suerbaum S & Mendz GL (2007) Identification of disulfide reductases in Campylobacterales: a bioinformatics investigation. Antonie Van Leeuwenhoek 92, 429441.
  • 64
    Kaakoush NO, Miller WG, De Reuse H & Mendz GL (2007) Oxygen requirement and tolerance of Campylobacter jejuni. Res Microbiol 158, 644650.
  • 65
    Fox EM, Raftery M, Goodchild A & Mendz GL (2007) Campylobacter jejuni response to ox-bile stress. FEMS Immunol Med Microbiol 49, 165172.
  • 66
    Kaakoush NO & Mendz GL (2005) Helicobacter pylori disulphide reductases: role in metronidazole reduction. FEMS Immunol Med Microbiol 44, 137142.
  • 67
    Schulz AR (1994) Enzyme Kinetics, from Diastase to Multienzyme Systems. Cambridge University Press, New York, NY.