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E Forest

Publications and source records attributed to E Forest.

At least 55 records · Page 3Linked to original sources

Complete amino acid sequence of the Aa6 subunit of the scorpion Androctonus australis hemocyanin determined by Edman degradation and mass spectrometry.

The primary structure of the hemocyanin Aa6 subunit from the scorpion Androctonus australis was resolved by using protein sequencing and mass spectrometry for analysis of the polypeptide chain and of fragments obtained by CNBr, trypsin, and chymotrypsin cleavage. Due to the high sensitivity of the methodologies used, only a small amount of material, less than 1 mg, was consumed. The complete sequence is composed of 626 amino acid residues and the protein is not glycosylated but probably phosphorylated at Ser374. Its molecular mass measured by mass spectrometry (71,890 +/- 7 Da) is about 30 Da higher than the mass calculated from the sequence data (71,860.1 Da). The origin of this difference is not clear but could result from minor molecular heterogeneities. Within the chelicerates, the Aa6 subunit of the arachnid A. australis shares 405 identical residues with chain e of another arachnid, Eurypelma californicum, and 399 with chain alpha of the merostom Tachypleus tridentatus. The degrees of identity between these three subunits, which are known to occupy the same location in the native hemocyanin oligomers, are significantly higher than those existing between the subunits a, d, and e of E. californicum. This favors the hypothesis that gene duplications, leading to separate chains in one species, have occurred before the divergence between arachnids and merostoms.

Amino Acid Sequence↗

Characterization of a 2[4Fe-4S] ferredoxin obtained by chemical insertion of the Fe-S clusters into the apoferredoxin II from Rhodobacter capsulatus.

The Rhodobacter capsulatus ferredoxin II (FdII) belongs to a family of 7Fe ferredoxins containing one [3Fe-4S] cluster and one [4Fe-4S] cluster. This protein, encoded by the fdxA gene, has been overproduced in Escherichia coli as a soluble apoferredoxin. The purified recombinant protein was subjected to reconstitution experiments by chemical incorporation of the Fe-S clusters under anaerobic conditions. A brown protein was obtained, the formation of which was dependent upon the complete unfolding of the polypeptide prior to incorporation of iron and sulfur atoms. The yield of the reconstituted product was higher when the reaction was carried out at slightly basic pH. The reconstituted ferredoxin was purified and shown to be distinct from the native [7Fe-8S] ferredoxin, based on several biochemical and spectroscopic criteria. In the oxidized state, EPR revealed the quasi-absence of [3Fe-4S] cluster. 1H-NMR spectroscopic analyses provided evidence that the protein was reconstituted as a 2[4Fe-4S] ferredoxin. This conclusion was further supported by the determination by electrospray mass spectrometry of the molecular mass of the reconstituted protein, which matched within 2 Da to the mass of the FdII polypeptide incremented of eight atoms each of iron and sulfur. Exposure of the reconstituted protein to air resulted in a fast and irreversible oxidative denaturation of the Fe-S clusters, without formation of [7Fe-8S] form. Unlike the natural 7Fe ferredoxin, the reconstituted ferredoxin appeared incompetent in an electron-transfer assay coupled to nitrogenase activity. The fact that the apoFdII was reconstituted as a highly unstable 8Fe ferredoxin instead of the 7Fe naturally occurring FdII is discussed in relation to the results obtained with other types of ferredoxins.

Chromatography, Ion Exchange↗

Observation of holoprotein molecular ions of several ferredoxins by electrospray-ionization-mass spectrometry.

Several ferredoxins containing [4Fe-4S] or [2Fe-2S] active sites have been analyzed by electrospray-ionization-mass spectrometry. For these acidic proteins, low pH conditions must be implemented in order to ensure strong signals in positive-ionization mode. Under such conditions the iron-sulfur active sites were lost in most cases. In contrast, the holoproteins were preserved under negative-ionization mode conditions: they were weakly but sufficiently ionized and information about their cofactor content could be obtained. The experimental conditions set up here should provide a useful basis for the detailed characterization of more complex iron-sulfur proteins.

Ferredoxins↗

Electrospray-ionization mass spectrometry of molecular variants of a [2Fe-2S] ferredoxin.

The [2Fe-2S] ferredoxin from Clostridium pasteurianum is a homodimeric protein of which each subunit contains one [2Fe-2S] cluster. In previous investigations, the five cysteine residues in positions 11, 14, 24, 56 and 60 had been mutated into serine or alanine. The wild type ferredoxin and several of its molecular variants have now been analyzed by electrospray-ionization mass spectrometry. In the negative-ion detection mode, depending on the infusion solvent used, molecular peaks attributable to the apoprotein, to the monomeric holoprotein, and to the dimeric holoprotein were detected in all cases. The data confirmed the presence of the expected mutations, showed that all of these proteins contain one [2Fe-2S] cluster per subunit, and indicated that the dimeric structure of these ferredoxins could be retained in the conditions of the electrospray ionization. This investigation establishes the power of electrospray-ionization mass spectrometry for the analysis of oligomeric proteins containing labile metal clusters.

Alanine↗

Processing and hydrolytic mechanism of the cgkA-encoded kappa-carrageenase of Alteromonas carrageenovora.

The cgkA gene of Alteromonas carrageenovora encodes a kappa-carrageenase with a predicted mass of 44212 Da, much larger than the 35 kDa estimated from SDS/PAGE of the protein purified from culture supernatants. Immunoblotting experiments showed the presence of a protein of 44 +/- 2 kDa in both native and recombinant bacterial intracellular extracts, suggesting that the kappa-carrageenase is produced as a preproprotein which undergoes proteolytic processing twice during secretion. To determine the exact site of C-terminal cleavage, the precise mass of the purified extracellular kappa-carrageenase was measured by electrospray-ionization/mass spectrometry and found to be 31,741 +/- 3 Da. The mature kappa-carrageenase of A. carrageenovora thus appears to be composed of 275 amino acids, from residue Ala26 to residue Asn301 of the cgkA gene product. To assess the molecular mechanism of this member of family 16 of glycosyl hydrolases, hydrolysis of neocarrahexaitol by the kappa-carrageenase was monitored by gel filtration chromatography and 13C-NMR. Results show that neocarrabiitol and beta-neocarratetraose are initially formed, demonstrating that the enzyme operates with a molecular mechanism retaining the anomeric configuration. Consistent with this result, the enzyme was also shown to be able to catalyze transglycosylation.

Bacterial Proteins↗

Solution structure of glyceraldehyde-3-phosphate dehydrogenase from Haloarcula vallismortis.

The subunit molecular mass of glyceraldehyde-3-phosphate dehydrogenase from the extreme halophile Haloarcula vallismortis (hGAPDH) was determined by mass spectrometry to be 35990 +/- 80 daltons, similar to other GAPDHs. Complementary density, sedimentation and light scattering experiments showed the protein to be a tetramer that binds 0.18 +/- 0.10 gram of water and 0.07 +/- 0.02 gram of KCl per gram of protein, in multimolar KCl solutions. At low salt (below 1 M), the tetramer dissociated into unfolded monomers. This is the third halophilic protein for which solvent interactions were measured. The extent of these interactions depends on the protein, but all form an invariant particle, in multimolar NaCl or KCl solutions, that binds a high proportion of salt when compared to non-halophilic proteins.

Journal Article↗

Effects of the Tyr64 substitution on the stability of cytochrome c553, a low oxidoreduction-potential cytochrome from Desulfovibrio vulgaris Hildenborough.

Cytochrome c553 from sulfate-reducing bacteria is a low-oxidoreduction-potential cytochrome. The primary and tertiary structures show notable differences when compared to mitochondrial cytochromes. Tyr64 replacement in cytochrome c553 provides evidence that this residue is not directly involved in the potential modulation but is mostly implicated in the hydrogen-bond network around the heme. While the different variants obtained did not induce drastic structural modifications, they did affect the stability of the protein. This decrease of stability in acidic and alkaline environments was observed by variations in the optical spectra and by mass spectrometry. In addition, the mobility of aromatic side-chain was found to be increased in the mutant proteins as monitored by two-dimensional NMR spectroscopy.

Base Sequence↗

The low molecular weight protein which co-purifies with alpha-latrotoxin is structurally related to crustacean hyperglycemic hormones.

LMWP is the low molecular weight protein which copurifies with alpha-latrotoxin, the main neurotoxin from the black widow venom. It contains 70 residues and three disulfides. We found that its primary structure, including its 6 half-cystines, can be aligned with the amino acid sequences of crustacean hyperglycemic hormones (CHHs) which contain 72-73 residues and three disulfides. To further investigate this structural relationship, we produced a recombinant analog of LMWP in which the unique Met was changed in Leu (LMWPM35L). LMWPM35L was produced as a folded fusion protein in the periplasm of Escherichia coli and was generated in vitro by treating the fusion protein with cyanogen bromide. We showed that LMWPM35L and CHHs have an identical disulfide pairing pattern and possess some alpha-helical structure, as deduced from a comparison of their circular dichroism spectra. In addition, LMWPM35L and CHHs are consensually predicted to possess a helical structure within the region 13-17. Together, the data indicate that CHHs are structurally related to LMWPM35L and presumably also to LMWP. Finally, preliminary studies showed that LMWPM35L is not toxic to mice and does not form channels in lipid bilayers, two well-known properties of alpha-latrotoxin preparations.

Amino Acid Sequence↗

Purification of a sixth ferredoxin from Rhodobacter capsulatus. Primary structure and biochemical properties.

A new ferredoxin has been purified from the photosynthetic bacterium Rhodobacter capsulatus. It is the sixth ferredoxin to be isolated from this bacterium and it was called FdVI. Its primary structure was established based on amino acid sequence analysis of the protein and of peptides derived from it. It is composed of 106 residues including five cysteines. The calculated mass of the polypeptide is 11,402.6 Da which matches the experimental value determined by electrospray mass spectrometry. Amino acid sequence comparison revealed that ferredoxin VI (FdVI) is strikingly similar to a ferredoxin from Caulobacter crescentus and to the putidaredoxin from Pseudomonas putida. FdVI exhibited an ultraviolet-visible absorption spectrum typical for a [2Fe-2S] ferredoxin. EPR spectroscopy of the reduced protein showed a nearly axial signal similar to that of mitochondrial and P. putida ferredoxins. FdVI is biosynthesized in cells growing anaerobically under either nitrogen-sufficient or nitrogen-deficient conditions. Although the function of FdVI is unknown, its structural resemblance to [2Fe-2S] ferredoxins known to transfer electrons to oxygenases such as P-450 cytochromes, suggests that FdVI may have a similar role in R. capsulatus.

Amino Acid Sequence↗

Characterization and oxidoreduction properties of cytochrome c3 after heme axial ligand replacements.

Cytochrome c3 (M(r) 13,000) is a tetrahemic cytochrome in which the four heme iron atoms are coordinated by 2 histidine residues at the axial positions. The presence of several oxidoreduction centers in the same molecule raises the question of their coupling. To investigate this mechanism, four single mutations were introduced in cytochrome c3 by site-directed mutagenesis, leading to the replacement of each histidine, the sixth axial ligand of the heme iron atom, by a methionine residue. Characterization of the new set of molecules using biochemical and biophysical techniques was carried out. The novel methionine was correctly coordinated to the iron atom of hemes 3 and 4 in H25M and H70M cytochromes c3, respectively, and this coordination induced a large increase in the oxidoreduction potential of the mutated heme. In contrast, in the case of H22M and H35M cytochromes c3, in which the corresponding methionine is in an oxidized form, only slight changes in redox potential values were observed. In H22M, H25M, and H35M cytochromes c3, two conformations of the molecule were possible, in which the methionine is either free or coordinated to the iron atom. The rate constants for the electron exchange reactions between the cytochrome mutants and the hydrogenase were measured using electrochemical techniques. Distinct behaviors were revealed depending on the mutation. The values of the rate constants for the electron exchange reactions are interpreted in terms of intramolecular electron exchange among the four hemes of the cytochrome.

Base Sequence↗

Analysis, by electrospray ionization mass spectrometry, of several forms of Clostridium pasteurianum rubredoxin.

Clostridium pasteurianum rubredoxin and its recombinant counterpart purified from Escherichia coli have been analysed by electrospray ionization m.s. (e.s.i.m.s.). Whereas the N-terminal methionine of the native protein is formylated, the recombinant one has a free N-terminal methionine. E. coli cells also produce a colourless protein from the cloned gene. This protein is absent from C. pasteurianum and was shown to be zinc-substituted rubredoxin. The molecular forms of rubredoxin detected by e.s.i.m.s. depended on the experimental conditions used. Significant conversion into apo-rubredoxin occurred when the proteins were ionized at acidic pH and detected in the positive-ion mode. This conversion was quantitative in the case of Zn-rubredoxin. In contrast, when the proteins were analysed at neutral pH in the negative-ion mode, only the holoproteins, i.e. the species initially present in the solutions, were detected in the spectra. The e.s.i.m.s. experimental conditions set up here may prove useful for the analysis of other acidic metalloproteins with weakly bound metals.

Clostridium↗

Glycine decarboxylase complex from higher plants. Molecular cloning, tissue distribution and mass spectrometry analyses of the T protein.

cDNA clones encoding the precursor of the T protein of the glycine decarboxylase complex have been isolated from a pea leaf cDNA library in lambda gt11. The longest cDNA insert of 1430 bp encodes a polypeptide of 408 amino acid residues of which 30 residues constitute an N-terminal cleavable presequence and 378 residues make up the mature protein. Several results confirmed the identity of the cDNA and the exactness of the predicted primary structure. Firstly, we purified the T protein to homogeneity and its mass was measured by mass spectrometry. The mass obtained (40966 +/- 5 Da) was the value predicted from the cDNA (40961 Da). Secondly, the purified T protein was chemically cleaved with cyanogen bromide and the peptide fragments were analysed by high-performance liquid chromatography/electrospray ionization mass spectrometry and/or fast-atom-bombardment mass spectrometry. The mass values of all the peptides generated by chemical cleavage and measured by these techniques were very close to the values calculated from the predicted primary structure. Thirdly, microsequencing of some of these peptides, which represent 35% of the total protein, fits perfectly with the primary structure deduced from the cDNA. In the present HPLC/electrospray ionization MS studies we never detected the presence of covalently bound tetrahydropteroylpolyglutamate (H4PteGlun), either in the native T protein or in the different peptide fragments generated by the chemical cleavage. The absence of H4PteGlun bound to the T protein in our experimental conditions demonstrates that H4PteGlun is not covalently linked to the T protein. Northern blot analysis showed that the steady-state level of the mRNA corresponding to the T protein was high in green leaves compared to the level in etiolated leaves (approximately 8-10-fold higher). Surprisingly, a non-negligible amount of mRNA corresponding to the T protein was present in roots whereas the mRNA encoding the H protein was not detectable. Western blot analysis showed that the P, L and T proteins of the glycine decarboxylase complex were present in roots whereas the H protein was not detectable. Southern hybridization to pea genomic DNA indicated the presence of a single gene encoding the T protein of the glycine decarboxylase complex in the haploid genome.

Amino Acid Sequence↗

Complete amino acid sequence of puroindoline, a new basic and cystine-rich protein with a unique tryptophan-rich domain, isolated from wheat endosperm by Triton X-114 phase partitioning.

A new basic protein has been isolated from wheat endosperm by Triton X-114 phase partitioning. It contains five disulfide bridges and is composed of equal amounts of a polypeptide chain of 115 amino acid residues and of the same chain with a C-terminus dipeptide extension. The most striking sequence feature is the presence of a unique tryptophan-rich domain so that this protein isolated from wheat seeds has been named puroindoline. The similar phase partitioning behavior in Triton X-114 of this basic cystine-rich protein and of purothionins suggests that puroindoline may also be a membranotoxin that might play a role in the defense mechanism of plants against microbial pathogens.

Amino Acid Sequence↗

Primary structure of Chromatium tepidum high-potential iron-sulfur protein in relation to thermal denaturation.

A high-potential ferredoxin (HiPIP) has been purified from the thermophilic purple sulfur bacterium Chromatium tepidum. Most of the properties of this protein, including absorption and electron paramagnetic resonance spectra as well as redox potential, are identical to those of the similar protein isolated from the mesophilic organism Chromatium vinosum. The similarity extends to the amino acid sequences, which share 74 of the 83 residues composing the primary structure of C. tepidum HiPIP. The latter has been determined by sequencing overlapping peptides and precisely measuring the molecular mass of the holoprotein (9136 Da) by electrospray ionization mass spectrometry. The most significant difference between these sequences involves a stretch of 8 amino acids, which is shortened by two residues and notably changed in C. tepidum HiPIP. This region had been identified in the three-dimensional structure of C. vinosum HiPIP as both a link between two strands of a twisted beta sheet coordinating the [4Fe-4S] cluster and an area of strong interaction of the molecule with the solvent. These data have been used to discuss the molecular basis for the slightly improved thermal stability of C. tepidum HiPIP, as compared to C. vinosum HiPIP. Based on the physiological differences distinguishing C. tepidum from other small-sized Chromatiaceae, the presence of an abundant HiPIP in C. tepidum indicates that involvement as electron acceptor for the previously proposed thiosulfate oxidizing activity in C. vinosum may not be the sole function in all purple sulfur bacteria.

Amino Acid Sequence↗

Purification and characterization of a novel dimeric ferredoxin (FdIII) from Rhodobacter capsulatus.

A new ferredoxin, called FdIII, has been isolated and purified from the photosynthetic bacterium Rhodobacter capsulatus. Its complete amino acid sequence has been determined. The FdIII polypeptide consists of 100 residues, including 9 cysteines and has a calculated molecular mass of 10,688 Da, which was confirmed by electrospray mass spectrometry. In its native form, FdIII is a homodimer as deduced from molecular sieve chromatography and non-denaturing polyacrylamide gel electrophoresis, as well as cross-linking experiments. The dimeric ferredoxin was found to contain 15.2 +/- 0.6 iron atoms and 13 +/- 1 inorganic sulfur atoms, consistent with the presence of four [4Fe-4S] clusters/molecule. The UV visible absorption spectrum of oxidized FdIII exhibited maxima at 282 and at 386 nm and a shoulder near 314 nm. FdIII was fully reduced by excess dithionite at pH 8.0 or photochemically using 5-deazaflavin. Anaerobic oxidative titration of reduced FdIII with thionin indicated that each FdIII monomer exchanges two electrons. Exposure of FdIII to air resulted in a rapid and irreversible oxidative denaturation of the Fe-S clusters. The EPR spectrum of fully reduced FdIII showed a broad signal with an average g value of 1.94 that integrated to about two spins/monomer. EPR analysis of partially reduced FdIII (approximately 20% reduction) revealed a complex set of signals which was interpreted as being the resulting sum of the contribution of two distinct paramagnetic centres. Based on its biochemical and spectroscopic properties, it is concluded that FdIII is a dimeric ferredoxin containing four [4Fe-4S] clusters. The synthesis of FdIII occurs only under growth conditions allowing the derepression of nif genes. Results of in vitro electron transfer assays indicate that FdIII cannot serve as an electron donor to nitrogenase.

Amino Acid Sequence↗

Characterization of the primary structure of H-protein from Pisum sativum and location of a lipoic acid residue by combined liquid chromatography/mass spectrometry and liquid chromatography/tandem mass spectrometry.

A purified extract of H-protein, a subunit of the glycine cleavage complex of the pea leaf mitochondria, was investigated by liquid chromatography/mass spectrometry (LC/MS) and liquid chromatography/tandem mass spectrometry (LC/MS/MS), using both continuous flow fast atom bombardment (CF-FAB) and electrospray ionization (ESI) mass spectrometry. Determination of the molecular weight of the entire protein, a 14 kDa subunit of the glycine decarboxylase complex, was achieved by ESI mass spectrometry and revealed covalent binding of the protein to the stabilizing agent beta-mercapto-ethanol. On-line LC/MS analysis of peptides arising from the endoproteinase Glu-C digestion of the H-protein was achieved using capillary columns (0.25 mm i.d.), and permitted confirmation of the previously reported sequence deduced from cDNA cloning experiments. The detailed interpretation of data extracted from these LC/MS experiments facilitated identification of peptides containing modified amino acid residues. In particular the identification of a lipoic acid cofactor, a rather unusual modified lysine residue which interacts with different active sites in the enzyme complex, was achieved using both LC/CF-FAB-MS and LC/ESI-MS. The exact location of this modified lysine residue was determined by obtaining fragment spectra of multiply protonated precursor ions of selected peptides, using on-line LC/MS/MS techniques.

Amino Acid Oxidoreductases↗

Characterization of elemental sulfur in isolated intact spinach chloroplasts.

Incubation of intact spinach (Spinacia oleracea L.) chloroplasts in the presence of (35)SO(4) (2-) resulted in the light-dependent formation of a chloroform-soluble sulfur-containing compound distinct from sulfolipid. We have identified this compound as the most stable form (S(8)) of elemental sulfur (S(0), valence state for S = O) by mass spectrometry. It is possible that elemental sulfur (S(0)) was formed by oxidation of bound sulfide, i.e. after the photoreduction of sulfate to sulfide by intact chloroplasts, and released as S(8) under the experimental conditions used for analysis.

Journal Article↗