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Rationalization of properties of nitrate reductases in Rhodopseudomonas capsulata

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Abstract

  1. 1.

    The properties of nitrate reductase activities have been compared in several strains of Rhodopseudomonas capsulata grown phototrophically in the presence of nitrate as sole nitrogen source.

  2. 2.

    Strains AD2 and BK5 resemble the spontaneous mutant N22DNAR+ (described by McEwan et al. 1982 FEBS Lett. 150, 277\2-280) in that reduction of nitrate was inhibited by either illumination or oxygen but not by NH +4 , and that electron flow to nitrate under dark anaerobic conditions generated a cytoplasmic membrane potential (as judged by an electrochromic shift in the absorbance spectrum of endogenous carotenoid pigments). In contrast disappearance of nitrate from suspensions of strains N22 and St. Louis was dependent upon illumination and was inhibited by NH +4 . Membrane potentials were not generated by addition of nitrate in the dark to N22, St. Louis or strain Kbl.

  3. 3.

    Nitrate reductase was shown to be located in the periplasmic space of both strain AD2 and mutant N22DNAR+. The nitrate reductase activity in cells of AD2 and N22DNAR+ was relatively insensitive to azide, with 0.5mM azide required for 50% inhibition. The nitrate reductase of strain BK5 was more strongly associated with the cytoplasmic membrane and no conclusion could be reached about whether it was located on the periplasmic or cytoplasmic surface. In BK5 cells nitrate reductase activity was sensitive to low concentrations of azide (50% inhibition with 2 \gmM azide). It is proposed that functionally the nitrate reductase activity in strains AD2, BK5 and N22DNAR+ has identical roles. These roles are suggested to include:

  4. (i)

    The first step in the assimilation of nitrate.

  5. (ii).

    Provision of an alternative electron acceptor to oxygen for generating a membrane potential.

  6. (iii).

    A mechanism for disposing of excess reducing equivalents in the maintenance of balanced growth.

    This type of nitrate reductase, especially in AD2 and N22DNAR+, appears to resemble that described in a denitrifying strain of Rps. sphaeroides, but to differ markedly from its membrane-bound counterpart in other bacteria including the denitrifying Paracoccus denitrificans and Escherichia coli.

  7. 4.

    In other strains of Rps. capsulata including St. Louis, N22 and Kbl, only an assimilatory nitrate reductase, whose activity in intact cells is relatively sensitive to azide, is present in anaerobic, phototrophic cultures grown with nitrate as nitrogen source. As this reductase cannot be detected after breakage of cells, no conclusion can be made as to its location in the cell.

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Abbreviations

S-13 2′:

5-dichloro-3-t-butyl-4′-nitrososalicylanilide

FCCP:

carbonyl cyanide p-trifluoromethoxyphenylhydrazone

Δψ:

cytoplasmic membrane potential

References

  • Alef K, Kleiner D (1982) Regulatory aspects of inorganic nitrogen metabolism in the Rhodospirillaceae. Arch Microbiol 133: 239–341

    Google Scholar 

  • Alef K, Klemme JH (1977) Characterization of a soluble NADH-independent nitrate reductase from the photosynthetic bacterium Rhodopseudomonas capsulata. Z. Naturforsch 32c: 954–956

    Google Scholar 

  • Castillo F, Caballero FJ, Cardenas J (1981) Nitrate photo-assimilation by the phototrophic bacterium Rhodopseudomonas capsulata E1F1. Z Naturforsch 36c:1025–1029

    Google Scholar 

  • Clark AJ, Cotton NPJ, Jackson JB (1983) The influence of the ionic conductance on the relation between electron transport and proton-motive force in intact cells of Rhodopseudomonas capsulata. Eur J Biochem 130:575–580

    Google Scholar 

  • Ingledew WJ, Cox JC, Halling PJ (1977) A proposed mechanism for energy conservation during Fe2+ oxidation by Thiobacillus ferro-oxidans: chemiosmotic coupling to net H+ influx. FEBS Lett 2:193–197

    Google Scholar 

  • Jackson MA, Jackson JB, Ferguson SJ (1981) Direct observation with an electrode of uncoupler-sensitive assimilatory nitrate uptake by Rhodopseudomonas capsulata. FEBS Lett 136:275–278

    Google Scholar 

  • Kerber NL, Ciai A, Garcia AF (1982) Semiaerobic induction of a nitrate reductase activity in growing cultures of Rhodopseudomonas capsulata E1F1 containing NH +4 ions as nitrogen source. Arch Microbiol 132:294–296

    Google Scholar 

  • Klemme JH (1979) Occurrence of assimilatory nitrate reduction in phototrophic bacteria of the genera Rhodospirillum and Rhodopseudomonas. Microbiologica 2:415–420

    Google Scholar 

  • Klemme J-H, Czichos J, Wesch R (1981) Enzymatic mechanism and regulation of Nitrate reduction in Rhodopseudomonas capsulata. In: Bothe H, Trebst A (eds) The biology of inorganic nitrogen and sulphur. Springer, Berlin Heidelberg New York, pp 225–232

    Google Scholar 

  • Markwell JP, Lascelles J (1978) Membrane bound, pyridine nucleotide-independent L-lactate dehydrogenase of Rhodopseudomonas sphaeroides. J Bacteriol 133:593–600

    Google Scholar 

  • McEwan AG, George CL, Ferguson SJ, Jackson JB (1982) A nitrate reductase activity in Rhodopseudomonas capsulata linked to electron transfer and generation of a membrane potential. FEBS Lett 150:277–280

    Google Scholar 

  • McEwan AG, Cotton NPJ, Ferguson SJ, Jackson JB (1983a) The inhibition of nitrate reduction by light in Rhodopseudomonas capsulata is mediated by the membrane potential, but inhibition by oxygen is not. In: Sybesma C (ed) Proc. of the Sixth Int. Cong. on Photosynthesis. Brussels (in press)

  • McEwan AG, Ferguson SJ, Jackson JB (1983b) Electron flow to dimethylsulphoxide or trimethylamine-N-oxide generates a membrane potential in Rhodopseudomonas capsulata. Arch Microbiol 136:300–305

    Google Scholar 

  • Nicholas DJD, Nason A (1957) Determination of nitrate and nitrite. In: Colowick SP, Kaplan NO (eds) Methods in enzymology, vol 3. Academic Press, New York, pp 981–984

    Google Scholar 

  • Nicholay K, Lolkema J, Hellingwerf KJ, Kaptein R, Konings WN (1979) Quantitative agreement between the values for the light-induced pH in Rhodopseudomonas sphaeroides measured with automated flow dialysis and 31PNMR. FEBS Lett 123: 319–323

    Google Scholar 

  • Satoh T, Hashino Y, Kitamura (1976) Rhodopseudomonas sphaeroides forma sp. denitrificans, a denitrifying strain as a subspecies of Rhodopseudomonas sphaeroides. Arch Microbiol 108:265–269

    Google Scholar 

  • Sawada E, Satoh T (1980) Periplasmic location of dissimilatory nitrate and nitrite reductases in a denitrifying phototrophic bacterium, Rhodopseudomonas sphaeroides forma sp. denitrificans. Plant and Cell Physiol 21:205–210

    Google Scholar 

  • Urata K, Shimada K, Satoh T (1983) Proton translocation associated with denitrification in a photodenitrifier, Rhodopseudomonas sphaeroides forma. sp, denitrificans. Plant and Cell Physiol 24:501–508

    Google Scholar 

  • Wesch R, Klemme JH (1980) Catalytic and molecular differences between assimilatory nitrate reductases isolated from two strains of Rhodopseudomonas capsulata. FEBS Lett 8:37–41

    Google Scholar 

  • Zannoni D, Marrs BL (1981) Redox chain and energy transduction in chromatophores form Rhodopseudomonas capsulata cells grown anaerobically in the dark on glucose and dimethylsulphoxide. Biochim Biophys Acta 637:96–106

    Google Scholar 

  • Zannoni D, Jasper P, Marrs B (1978) Light-induced oxygen reduction as a probe of electron transport between respiratory and photosynthetic components in membranes of Rhodopseudomonas capsulata. Arch Biochem Biophys 191:625–631

    Google Scholar 

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McEwan, A.G., Jackson, J.B. & Ferguson, S.J. Rationalization of properties of nitrate reductases in Rhodopseudomonas capsulata . Arch. Microbiol. 137, 344–349 (1984). https://doi.org/10.1007/BF00410732

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  • DOI: https://doi.org/10.1007/BF00410732

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