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The Fe-only nitrogenase from Rhodobacter capsulatus: identification of the cofactor, an unusual, high-nuclearity iron-sulfur cluster, by Fe K-edge EXAFS and 57Fe Mössbauer spectroscopy.

Samples of the dithionite-reduced FeFe protein (the dinitrogenase component of the Fe-only nitrogenase) from Rhodobacter capsulatus have been investigated by 57Fe Mössbauer spectroscopy and by Fe and Zn EXAFS as well as XANES spectroscopy. The analyses were performed on the basis of data known for the FeMo cofactor and the P cluster of Mo nitrogenases. The prominent Fourier transform peaks of the Fe K-edge spectrum are assigned to Fe-S and Fe-Fe interactions at distances of 2.29 A and 2.63 A, respectively. A significant contribution to the Fe EXAFS must be assigned to an Fe backscatterer shell at 3.68 A, which is an unprecedented feature of the trigonal prismatic arrangement of iron atoms found in the FeMo cofactor of nitrogenase MoFe protein crystal structures. Additional Fe...Fe interactions at 2.92 A and 4.05 A clearly indicate that the principal geometry of the P cluster is also conserved. Mössbauer spectra of 57Fe-enriched FeFe protein preparations were recorded at 77 K (20 mT) and 4.2 K (20 mT, 6.2 T), whereby the 4.2 K high-field spectrum clearly demonstrates that the cofactor of the Fe-only nitrogenase (FeFe cofactor) is diamagnetic in the dithionite-reduced ("as isolated") state. The evaluation of the 77 K spectrum is in agreement with the assumption that this cofactor contains eight Fe atoms. In the literature, several genetic and biochemical lines of evidence are presented pointing to a significant structural similarity of the FeFe, the FeMo and and the FeV cofactors. The data reported here provide the first spectroscopic evidence for a structural homology of the FeFe cofactor to the heterometal-containing cofactors, thus substantiating that the FeFe cofactor is the largest iron-sulfur cluster so far found in nature.

Ferredoxins↗

Electrochemical cells for voltammetry, coulometry, and protein activity assays of small-volume biological samples.

Cell designs, experimental protocols, and results for electrochemical investigation of small quantitites of biological materials under anaerobic conditions are reported. Three types of electrochemical experiments are considered: (i) cyclic voltammetry of 20- to 100-microliters samples; (ii) direct coulometry of 0.5- to 1.5-ml samples; and (iii) an electrochemically initiated protein activity assay which includes provision for analysis of gaseous reaction products and correlation with electron flux. The first two procedures are illustrated by measurement of the formal electrode potential (E0') and number of electrons transferred (n) in redox reactions of small quantities of biological and inorganic materials. The third procedure is illustrated by assaying the activity of the MoFe protein plus Fe protein complex from Azotobacter vinelandii nitrogenase for reduction of C2H2 to C2H4.

Acetylene↗

Nitrogenase XII. Mössbauer studies of the MoFe protein from Clostridium pasteurianum W5.

We have studied the molybdenum-protein (MoFe protein) from Clostridium pasteurianum with Mössbauer spectroscopy in the temperature range from 1.5 to 200 K in magnetic fields up to 55 kG. Except for some small differences in the hyperfine parameters the results for the C. pasteurianum protein are essentially the same as those published previously for the protein from Azotobacter vinelandii, i.e. (30 +/- 2) Fe atoms partition into two identical cofactor centers M (each center most likely containing six Fe atoms and one Mo atom), four P-clusters (each center containing four Fe atoms), and one iron environment labeled S (about two Fe atoms per holoenzyme). We have analyzed the spectra of the cofactor centers in three distinct oxidation states, Formula: (see test). The diamagnetic (electronic spin S = 0) state MOX is attained by oxidation of the native, EPR-active (S = 3/2) state MN. The reduced state MR is observed in steady state under nitrogen fixing conditions; high-field Mössbauer studies show that the cofactor centers are paramagnetic (integer electronic spin S greater than or equal to 1) in the state MR. We have evaluated the complex high-field spectra resulting from the P-clusters in the oxidized state POX. The analysis shows that one iron site is characterized by a positive hyperfine coupling constant A0 while the other three sites have A0 less than 0. A slightly modified set of parameters also fits the high-field data of the MoFe protein from A. vinelandii. Finally, we will present a discussion summarizing our principle results obtained to date for the proteins from A. vinelandii and C. pasteurianum.

Clostridium↗

Purification and spectroscopic characteristics in N-methylformamide of the Azotobacter vinelandii Fe-Mo cofactor.

The iron-molybdenum cofactor from Azotobacter vinelandii can be removed from significant amounts of extraneous iron and other contaminants using anaerobic gel filtration. Electronic absorption spectra of the so-purified FeMoco along with analysis of the so-called 'easily complexed' iron are suggestive that FeMoco occupies at least two different states in N-methylformamide solution. Batch-related differences in spectral characteristics of independently isolated FeMoco samples are demonstrated. Non-cofactor iron, found in unpurified FeMoco, may affect the interpretation of ligand binding and other experiments probing FeMoco structure and reactivity. Oxidized FeMoco is shown to be clearly discernable from the semi-reduced species by means of electronic spectroscopy, and this method now forms a convenient analytical tool for study of the chemistry and electronic structure of FeMoco.

Azotobacter↗

Mössbauer spectroscopy applied to the oxidized and semi-reduced states of the iron-molybdenum cofactor of nitrogenase.

Mössbauer parameters at 125K for both the oxidized and semi-reduced states of FeMoco isolated from the MoFe protein of Azotobacter vinelandii nitrogenase of delta/Fe = 0.32 and 0.37 mm/s and delta Eq = 0.84 and 0.71 mm/s, respectively, are reported. FeMoco(ox) fits the Debye model perfectly from 4.2-125K and has a S = 0 ground state. FeMoco(ox) apparently contains 10-20% FeMoco(s-r) and vice versa, possibly as a result of the spontaneous oxidation phenomenon. Quantitation of the spectra indicates a Fe:Mo ratio of 5 +/- 1:1 and the similar quadrupole splittings and isomer shifts suggest a similar environment for all iron atoms.

Azotobacter↗

Structural homologies between the amino acid sequence of Clostridium pasteurianum MoFe protein and the DNA sequences of nifD and K genes of phylogenetically diverse bacteria.

The complete amino acid sequence of the larger (alpha-) subunit and about 70% of the total sequence of the smaller (beta-) subunit of the MoFe protein from Clostridium pasteurianum was determined by analyses of peptides derived from BrCN cleavage and by digestions with trypsin, staphylococcal protease and lysylendo-peptidase of the separated subunits. The alpha-subunit has 529 amino acid residues, giving an Mr value of 58 774. This is the first complete sequence for the alpha-subunit of an isolated MoFe protein. In comparing the sequences of both subunits to those from other sources, 5 out of 9 cysteines in the alpha-subunit and 3 out of 6 in the beta-subunit are invariant, thus suggesting a function as ligands to FeS and MoFeS clusters in the MoFe protein. All of these cysteines are located in the amino terminal halves of both subunits.

Amino Acid Sequence↗

Identification of possible adenine nucleotide-binding sites in nitrogenase Fe- and MoFe-proteins by amino acid sequence comparison.

Published amino acid sequences for nitrogenase component polypeptides were compared with those of other proteins which also bind adenine nucleotides. Three sequences which might contribute to an adenine nucleotide-binding domain were found for the Fe-protein component of nitrogenase. The beta-subunit of the MoFe-protein (nifK gene product) contains a sequence which is similar to other proteins which exhibit ATPase activity. No similarities were observed for the alpha-subunit of this component. The findings are discussed in relation to the experimental data on adenine nucleotide binding and the proposed role of ATP in the enzyme mechanism.

Adenine Nucleotides↗

Comparison of redox and EPR properties of the molybdenum iron proteins of Clostridium pasteurianum and Azotobacter vinelandii nitrogenases.

Both heterologous crosses of the Clostridium pasteurianum and Azotobacter vinelandii nitrogenase components are completely inactive, although the reasons for this incompatibility are not known. We have compared a number of properties of the MoFe proteins from these organisms (Cp1 and Av1, respectively) in an attempt to find differences that could explain this lack of functional activity. Optical and CD spectroscopic titrations are similar for both Av1 and Cp1, but EPR titrations are significantly different, suggesting different chemical reactivity patterns and/or magnetic interaction behavior. Similarly, reduction measurements on the six-electron-oxidized state of Cp1 and Av1 at controlled potentials indicate a difference in both the relative reduction sequence of the redox centers and the numerical values for their measured midpoint potentials. EPR measurements as a function of temperature also demonstrate that the relaxation behavior of the S = 3/2 MoFe centers associated with the proteins differ markedly. The Cp1 EPR signal only begins to undergo broadening above 65 K, whereas the Av1 signal is severely broadened above 25 K. These variations in the EPR properties for the two proteins are not likely to be due to differences in the stoichiometry and/or geometry of the MoFe cluster units themselves since similar EPR studies of the isolated cofactors showed them to be essentially identical. Thus, the different EPR behavior of the two proteins seems to arise either from protein constraints imposed on identical cofactors, and/or from magnetic interactions due to neighboring metal clusters.

Azotobacter↗

Purification, composition, charge, and molecular weight of the FeMo cofactor from Azotobacter vinelandii nitrogenase.

A procedure has been developed for purifying NMF and NMF/DMF solutions of the FeMo cofactor (FeMoco) derived from the molybdenum iron protein of nitrogenase. This procedure consists of anaerobic chromatography of FeMoco solutions on two consecutive anaerobic molecular sizing columns followed by electrophoretic migration through a third sizing column. FeMoco prepared by this procedure is homogeneous as evidenced by chromatographic, electrophoretic, and compositional criteria. The minimal elemental composition was found to be MoFe6S6 using chemical colorimetric, inductively coupled plasma (ICP), and proton induced x-ray emission (PIXE) analytical procedures. Molecular weight measurements of NMF and DMF solutions of FeMoco using calibrated columns containing various molecular sizing matrices gave values of 1395 +/- 130 daltons for the molecular weight of FeMoco. The measured MW of FeMoco is about twice the value expected from the minimal stoichiometry, suggesting that FeMoco may exist as Mo2Fe12S12 in NMF and DMF solutions. The charge of FeMoco in its EPR silent state was determined to be 2- per Mo by passing NMF solutions of FeMoco containing excess salts of Na+, K+, Rb+, and Mg2+ through long columns equilibrated with pure NMF and then measuring the M/Mo ratio of the emerging FeMoco. Decomposition of purified FeMoco by acid or O2-exposure followed by exhaustive methylation or silanation of the resulting mixture failed to yield any methylated or silanated homocitric acid as measured by tandem gas chromatography-mass spectrometry (GC-MS) analysis. The GC-MS procedure applied to standard homocitric acid samples and various controls readily detects methylated homocitric acid at the sub-nanomole level. We conclude that the minimum molecular formula for active oxidized (EPR silent) FeMoco in NMF and in NMF-DMF mixtures is [Mo2Fe12S12]4-, but that other small organic anions such as NMF- may be present.

Azotobacter vinelandii↗

Evidence on the role(s) of ATP in the mechanism of nitrogenase, from proton NMR relaxation studies on metal and nucleotide binding to the molybdenum-iron protein.

Interactions between the molybdenum-iron protein (Kp1) of nitrogenase (reduced ferredoxin:dinitrogen oxidoreductase (ATP-hydrolysing,) EC 1.18.2.1) from Klebsiella pneumoniae and the divalent ions, Mn2+, Mg2+, Ca2+ and Ba2+, have been studied by monitoring the water proton NMR relaxation enhancement caused by the paramagnetism of Mn2+. We observed several binding sites for Mn2+, equivalent within experimental error (Kd = 209 +/- 23 microM), increasing in number from 1.0 to 2.9 per molecule in direct proportion to the specific activity of the protein. Metal binding sites on the MoFe protein are therefore essential to the enzymic function of nitrogenase. A maximum of four such sites is inferred for the fully active protein molecule. All manganese sites can alternatively bind the diamagnetic ions studied, the binding being one order-of-magnitude weaker (Kd = 2.2 +/- 0.3 mM for Mg2+; 1.6 +/- 0.2 mM for Ca2+; 3.4 +/- 0.3 mM for Ba2+), ATP and ADP form ternary complexes via Mn2+ with Kpl. The above data and other evidence on MgATP binding are discussed in terms of the site of hydrolysis of ATP during turnover and its possible bridging role between the two protein components of the enzyme.

Adenosine Triphosphate↗

The in-vivo identification of the MoFe protein (FeMo cofactor) of nitrogenase in Klebsiella pneumoniae and of the Mo-storage protein in Azotobacter vinelandii via the nuclear quadrupole interaction of 99Mo(beta-)99Tc.

The expression of the MoFe protein of nitrogenase in Klebsiella pneumoniae was identified in vivo via the nuclear quadrupole interaction (NQI) of 99Mo(beta-)99Tc using perturbed angular correlations of gamma-rays. The NQI parameters were: omega approx. 360 Mrad/s and eta approx. 1. In addition, the NQI of the 'Mo-storage protein' in Azotobacter vinelandii cells which had been grown in the presence of NH4+ (13 mM), i.e. under conditions of strict repression of nitrogenase synthesis, was determined: omega approx. 190 Mrad/s, eta approx. 0.25. Under these conditions, the characteristic signal of the MoFe protein (FeMo cofactor) was absent.

Azotobacter vinelandii↗

The nitrogenase proteins of Rhizobium meliloti: purification and properties of the MoFe and Fe components.

The alfalfa-Rhizobium meliloti symbiosis contributes a major portion of biologically fixed nitrogen to temperate zone forage crop production. Highly-purified molybdenum-iron (MoFe) and iron (Fe) nitrogenase components were obtained for the first time from extracts of R. meliloti bacteroids. Intact bacteroid cells were isolated anaerobically from 100 g quantities of alfalfa nodules following storage in liquid nitrogen. Centrifuged bacteroid extracts showed a marked reduction in specific activity when assayed at protein concentrations less than 1 mg/ml. Both nitrogenase proteins were resolved and purified to homogeneity as determined spectroscopically and by SDS-PAGE. The purified MoFe protein differed in several respects from previously characterized nitrogenase proteins. Saturation of the acetylene-reducing and proton-reducing activities of the R. meliloti MoFe protein required higher relative concentrations of Fe protein than nitrogenase proteins purified from free living diazotrophs. Electron allocation to dinitrogen reduction was sustained at component ratios similar to those present in bacteroid extracts, suggesting that while the observed saturation effects were not detrimental to physiological function in the symbiotic system, overall activity could be enhanced by higher levels of iron protein. Analyses of the MoFe protein gave 22 Fe, 22 labile sulfide and 1.7 Mo atoms per molecular unit of 215 kDa. Dithionite-reduced MoFe protein contained a spin 3/2 iron centre but had a lower visible absorbance at 360 nm than the equivalent Azotobacter chroococcum component. Amino-acid composition indicated a notably lesser tryptophan content, and cysteine content greater than that of the equivalent tetrameric protein of free living diazotrophs. Ratios of acidic and basic residues were similar to other MoFe proteins. Calculation of hydrophobicity and discriminant parameters gave values midway between those expected for soluble cytoplasmic proteins and peripheral membrane associated proteins. ADP was tightly bound by the dithionite-free MoFe protein containing reduced iron-molybdenum cofactor. The R. meliloti iron protein was found to be a 64 kDa homodimer containing a single 4Fe-4S metal centre.

Amino Acids↗

Complete nucleotide sequence of the Azotobacter vinelandii nitrogenase structural gene cluster.

DNA fragments coding for the structural genes for Azotobacter vinelandii nitrogenase have been isolated and sequenced. These genes, nifH, nifD and nifK, code for the iron (Fe) protein and the alpha and beta subunits of the molybdenum-iron (MoFe) protein, respectively. They are arranged in the order: promoter:nifH:nifD:nifK. There are 129 nucleotides separating nifH and nifD and 101 nucleotides separating nifD and nifK. The amino acid (aa) sequences deduced from the nucleotide sequences are discussed in relation to the prosthetic group-binding regions of the nifHDK-encoded polypeptides.

Amino Acid Sequence↗

Sequence and structural analysis of the alpha- and beta-dinitrogenase subunits of Thiobacillus ferrooxidans.

The structural genes (nifD and nifK) for the alpha and beta subunits of the molybdenum-iron (MoFe) protein of the Thiobacillus ferrooxidans dinitrogenase have been sequenced. The Mr values deduced from the nucleotide sequences are 54,919 and 57,901 for the alpha and beta subunits, respectively. The amino acid sequences of both subunits were quantitatively compared with the equivalent subunits from other bacteria. Distinct areas of amino acid homology were found between the alpha and beta subunits of T. ferrooxidans.

Amino Acid Sequence↗