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H Zuber

Publications and source records attributed to H Zuber.

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Complete amino acid sequence of the B875 light-harvesting protein of Rhodopseudomonas sphaeroides strain 2.4.1. Comparison with R26.1 carotenoidless-mutant strain.

The complete amino acid sequence was determined for the alpha- and beta-chains of the B875 light-harvesting protein purified from photosynthetic membranes of Rhodopseudomonas sphaeroides 2.4.1. The sequence of the B875-alpha-polypeptide was identical to that reported for the R26.1 carotenoidless mutant [(1985) Biochim. Biophys. Acta 806, 185-186] and contained 58 amino acid residues with a blocked methionine and a glutamic acid at the N- and C-termini, respectively. The B875-beta-polypeptide contained 48 amino acid residues with alanine and phenylalanine as respective N- and C-termini; although otherwise identical, the leucine at position 29 in the wild-type strain was replaced by proline in the mutant. This radical amino acid substitution occurred within the central hydrophobic domain of the beta-polypeptide chain and is thought to result in a weakening of the structure of the alpha/beta heterodimer since it was not possible to isolate the intact pigment-protein complex from the R26.1 mutant strain.

Amino Acid Sequence↗

Purification, amino-acid sequence and some properties of the ferredoxin isolated from Bacillus acidocaldarius.

Ferredoxin was isolated from the aerobic, thermophilic and acidophilic bacterium Bacillus acidocaldarius and its sequence of 78 amino acids completely determined by automated Edman degradation of the protein and of peptides derived from chemical cleavage between aspartic acid and proline and from enzymatic digestions. The optical spectrum of the oxidized protein has a broad maximum around 400 nm. The ferredoxin is thermostable: its absorbance begins to decrease only at incubation over 71 degrees C. The number of iron and inorganic sulphur atoms per molecule was determined to be 5.3 and 5.0, respectively. The calculated molar extinction coefficient was 23 000 M-1 X cm-1, the molecular mass of the apoferredoxin 8 872 Da. Contrary to all expectations, the sequence of B. acidocaldarius ferredoxin shows very little homology to that of B. stearothermophilus but closely resembles that of Thermus thermophilus.

Amino Acid Sequence↗

Structural studies on cryptomonad biliprotein subunits. Two different alpha-subunits in Chroomonas phycocyanin-645 and Cryptomonas phycoerythrin-545.

The N-terminal amino-acid sequences of two green alpha-subunit fractions from Chroomonas phycocyanin-645 and from two violet alpha-subunit fractions from Cryptomonas phycoerythrin-545 reveal that these cryptomonad biliproteins each contain two different alpha-subunits. The chromophore binding sites at the cysteine residues in positions 18 or 19 are homologous to the chromophore binding site at cysteine position 84 in cyanobacterial biliproteins. The sequence homologies of the beta-subunits to cyanobacterial biliproteins are higher than those of the alpha-subunits. Cryptomonas phycoerythrin-545 alpha-subunits contain a gamma-hydroxylysine residue at the fourth position of the polypeptide chains. 50%-75% of the total sequence of the alpha-subunits was determined by N-terminal amino-acid sequence analysis. The alpha-subunits of the Cryptomonad biliproteins are smaller than the alpha-subunits of the cyanobacterial biliproteins. Comparing sequence homologies we found 60 amino-acid residues less at the N-terminus of Cryptomonad biliproteins than in cyanobacterial biliproteins.

Amino Acid Sequence↗

The light-harvesting polypeptides of Rhodopseudomonas viridis. The complete amino-acid sequences of B1015-alpha, B1015-beta and B1015-gamma.

Three low molecular mass polypeptides have been isolated by using the technique of organic solvent extraction of thylakoid membranes or whole cells from Rhodopseudomonas viridis. Their primary structures were determined by long liquid phase sequencer runs, combined with the isolation and sequence analysis of the C-terminal o-iodosobenzoic acid fragment and carboxypeptidase degradation. The polypeptide which consists of 58 amino-acids and is 46% homologous to the antenna polypeptide B880-alpha from Rhodospirillum rubrum was designated as B1015-alpha (1 His residue). The sequence homology between the second polypeptide, named B1015-beta (55 amino acids, 2 His residues) and B880-beta from Rs. rubrum is 52%. For the third polypeptide consisting of 36 amino acids and exhibiting a high hydrophobicity, no equivalent polypeptide has so far been found in other purple bacteria. The molar ratio of these three organic solvent soluble polypeptides from Rp. viridis was estimated to be 1:1:1. Accordingly, the 36 amino-acid polypeptide is likely to be an additional constituent of the light-harvesting complex B1015, consequently termed as B1015-gamma. According to hydrophathy profiles, the transmembrane arrangement of B1015-alpha and B1015-beta within the thylakoid membrane is supposed to be similar. B1015-gamma, however, shows a somewhat different hydropathy profile. A particular feature of this polypeptide is its high amount of aromatic amino acids. It is postulated that B1015-gamma is involved in the formation of regular arrays of light-harvesting complexes.

Amino Acid Sequence↗

Linker polypeptides of the phycobilisome from the cyanobacterium Mastigocladus laminosus: amino-acid sequences and relationships.

Three linker polypeptides of the phycobilisome from the cyanobacterium Mastigocladus laminosus were isolated: A 8.9-kDa polypeptide, L8.9R(C), which is probably associated with C-phycocyanin, a 34.5-kDa polypeptide, L34.5,PCR, which forms a complex with C-phycocyanin, and a 34.5-kDa polypeptide, L34.5,PECR, which is linked to phycoerythrocyanin. The complete amino-acid sequence (80 residues) of the L8.9R(C) polypeptide was determined as well as the N-terminal 44 residues of both L34.5R polypeptides and the 114 C-terminal residues of L34.5,PECR. L8.9R(C) is homologous to L8.9C (Füglistaller et al. (1984) Hoppe-Seyler's Z. Physiol. Chem. 365, 1085-1096) and to the C-terminal sequence of L34.5,PECR. The N-terminal sequences of L34.5,PECR and L34.5,PCR exhibit 34% homology. The 44 N-terminal residues of L34.5,PECR are related to the beta-subunit of phycoerythrocyanin (23% homology), while the C-terminal sequence of L34.5,PECR is more related to alpha PEC (21% homology within 60 residues). This suggests that the 30-kDa-linker polypeptide family originates from a fusion of the alpha- and beta-subunit genes and the corresponding intercistronic DNA sequence, as might have arisen through mutation in the stop-codon of the beta-subunit gene. Hence, all polypeptides of the phycobilisome (including perhaps the anchor polypeptide) may be derived from an early ancestor phycobiliprotein subunit, which itself is also related to myoglobin (Schirmer et al. (1985) J. Mol. Biol. 184, 251-277).

Amino Acid Sequence↗

Isolation and complete amino-acid sequence of the small polypeptide from light-harvesting pigment-protein complex I (B870) of Rhodopseudomonas capsulata.

The small bacteriochlorophyll-binding polypeptide of the light-harvesting complex B870 was extracted from the intracytoplasmic membrane of the strain A1a+ of Rhodopseudomonas capsulata with chloroform/methanol/ammonium acetate and separated by chromatography on Sephadex LH60 using the same solvent. The polypeptide obtained from the peak fraction III was found to be homogeneous and identical with the small polypeptide isolated from the B870 complex as shown by dodecyl sulfate/polyacrylamide gel electrophoresis, amino acid composition and N-terminal sequence. The complete amino acid sequence is given. The relative molecular mass based on the amino acid sequence is 5341. The polarity of amino acids is 35.42%. The C-terminal part of the peptide chain from residue 29 to 48 is hydrophobic and includes one His residue.

Amino Acid Sequence↗

The light-harvesting polypeptides of Rhodospirillum rubrum. I. The amino-acid sequence of the second light-harvestng polypeptide B 880-beta (B 870-beta) of Rhodospirillum rubrum S 1 and the carotenoidless mutant G-9+. carotenoidless mutant G-9+.

The light-harvesting complex B 880 from Rhodospirillum rubrum S 1 (wild type) and B 870 from the carotenoidless mutant G-9+ was shown to consist mainly of an organic solvent-(chloroform/methanol-) soluble and an organic solvent-insoluble polypeptide. The isolation and separation of these two low-molecular-mass polypeptides (Mr 6101 and Mr 6079) were achieved by a two-step extraction procedure of chromatophores using in the first step chloroform/methanol containing 0.1M ammonium acetate. Following Sephadex LH-60 chromatography of this first extract a light-harvesting polypeptide (B 870-alpha) was isolated and its complete amino acid sequence was determined (R. Brunisholz et al. (1981) FEBS Lett. 129/1, 150-154, B 880-alpha: G. Gogel et al. (1983) Biochim. Biophys. Acta 746, 32-39). Upon reextraction of the chromatophore pellet with chloroform/methanol/ammonium acetate containing in addition acetic acid a second low-molecular-mass polypeptide (B 880-beta of B 870-beta) was generated. The complete amino acid sequences of the chloroform/methanol-insoluble light-harvesting polypeptide of Rs. rubrum S 1 (B 880-beta) and of Rs. rubrum G-9+ (B 870-beta) were determined. They are identical and consist of 54 amino acid residues. The conserved histidine residue within the hydrophobic stretch raises more evidence for ligand complexation of bacteriochlorophyll to this specific histidine residue which therefore possibly plays the key role in pigment-protein interactions. Both polypeptides (B 880-alpha and B 880-beta) are part of the light-harvesting complex B 880 in an apparent ratio of 1:1. Based on the primary structure data a possible arrangement of both light-harvesting polypeptides within the membrane will be discussed.

Amino Acid Sequence↗

The light-harvesting polypeptides of Rhodospirillum rubrum. II. Localisation of the amino-terminal regions of the light-harvesting polypeptides B 870-alpha and B 870-beta and the reaction-centre subunit L at the cytoplasmic side of the photosynthetic membrane of Rhodospirillum rubrum G-9+.

The unspecific proteinase K and the specific proteases alpha-chymotrypsin, trypsin and S. aureus V 8 protease were used in order to determine the orientation of the polypeptides B 870-alpha and B 870-beta from the major antenna complex B 870 of Rs. rubrum G-9+ within the chromatophore membrane (inside-out vesicle). Although B 870-alpha exhibits cleavable peptide bonds, treatment with specific proteases yielded splitting only in B 870-beta within the N-terminal region. In the case of proteinase K, which was most effective, mainly 6 (B 870-alpha) and 16 (B 870-beta) amino acid residues were removed from their N-terminal parts as proved by means of Edman degradation of cleavage products. The major peptide bonds cleaved were identified as Gln6-Leu7 in B 870-alpha and as Lys16-Glu17 in B 870-beta. The central hydrophobic stretch regions and the relatively hydrophilic C-terminal parts of both light-harvesting polypeptides were not affected by proteinase K. On the basis of these degradation experiments a transmembrane orientation of B 870-alpha and B 870-beta is postulated, with their N-terminal towards the cytoplasm and their C-termini towards periplasm with regard to the photosynthetic membrane. This hypothesis is supported by the transmembrane model proposed by Brunisholz et al. (Hoppe-Seyler's Z., Physiol. Chem., (1984) 365, 675-688) in which the hydrophobic stretch of B 870-alpha and of B 870-beta forming an alpha-helix would span the membrane once. Organic solvent extraction of chromatophores treated with proteinase K yielded a fairly pure polypeptide fragment with an apparent molecular mass of 14000 Da. Its N-terminal amino-acid sequence is identical with the sequence within the N-terminal region of the reaction centre subunit L of Rs. rubrum G-9+. Thus it is most likely that as in the case of B 870-beta, proteinase K removed 16 amino acid residues from the N-terminal part of subunit L. This subunit therefore also seems to be exposed at the surface of the cytoplasmic side of the chromatophore membrane.

Amino Acids↗

The light-harvesting polypeptides of Rhodopseudomonas sphaeroides R-26.1. I. Isolation, purification and sequence analyses.

Four low-molecular-mass polypeptides were isolated and purified from chromatophore membranes of Rhodopseudomonas sphaeroides blue-green mutant R-26.1 by a combination of gel filtration and ion-exchange chromatography in organic solvents. On dodecyl sulfate polyacrylamide gels, the purified polypeptides comigrate with bands LH-1, LH-2 and LH-3 known to be related to the antenna-pigment-protein complexes. The complete primary structures were elucidated by automated Edman degradation of the intact polypeptides and of overlapping C-terminal fragments obtained after chemical cleavage at tryptophan and methionine residues. The C-termini were verified by hydrazinolysis and, in one case where an overlapping C-terminal fragment could not be obtained, by digestion with carboxypeptidase A. The four polypeptides show a tripartite structure: i.e. a polar N-terminal region is separated from a polar C-terminal region by a segment of about 21 predominantly hydrophobic amino-acid residues. All hydrophobic segments contain a characteristic conservative histidine residue. The C-terminal region is reduced to only a few amino acids in the two polypeptides which together form band LH-3, i.e. LH-3A and LH-3B. Their extended N-terminal region is rich in charged residues and contains an additional conserved histidine residue close to the beginning of the hydrophobic segment. These properties place LH-3A and LH-3B into subgroup (beta-polypeptides: B 870-beta and B 850-beta, respectively). LH-1 and LH-2 appear to form another subgroup (alpha-polypeptides: B 870-alpha and B 850-alpha, respectively) as suggested during a search for conservative elements within their sequences (structural basis for classification). N-Terminal analyses carried out with intact antenna-pigment-protein complexes revealed the following: (i) LH-1 and LH-3 are associated with the B 870 complex in Rp. sphaeroides 24.1 (wild type), (ii) the same polypeptides are almost exclusively present in chromatophore membranes of Rp. sphaeroides R-26, a blue-green mutant which absorbs at 870 nm, (iii) LH-2 and LH-3B are the constituent polypeptides of the B 800-850 complex of Rp. sphaeroides 2.4.1 and of the spectrally altered B 850 complex isolated from the blue-green mutant R-26.1 which absorbs at 860 nm. This mutant contains LH-2 and LH-3B along with LH-1 and LH-3A and apparently is able to form both types of antenna complexes.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acid Sequence↗

The light-harvesting polypeptides of Rhodopseudomonas sphaeroides R-26.1. II. Conformational analyses by attenuated total reflection infrared spectroscopy and the possible molecular structure of the hydrophobic domain of the B 850 complex.

Attenuated total reflection infrared spectroscopy were used to study the conformation of the purified light-harvesting polypeptides from Rhodopseudomonas sphaeroides R-26.1. B 870-alpha and B 850-beta are characterised by a high content of alpha-helix; B 850-alpha and B 870-beta, in contrast, contain extensive antiparallel chain-pleated sheet structure. The beta-structure is likely to be an artifact of the isolation because B 850-alpha assumes a predominantly alpha-helical conformation in the intact antenna complex. It is concluded that lipid-protein interactions play a crucial role in the stabilisation of the "native" alpha-helical fold of B 850-alpha and thus in the stabilisation of the entire antenna-pigment-protein complex. The results obtained concerning the "in situ" conformation of B 850-alpha and B 850-beta were used, together with the known primary structures and data available from the literature, to construct a rough molecular model of the hydrophobic domain of the elementary unit of the B 850 complex.

Bacterial Proteins↗

The complete amino-acid sequence of the large bacteriochlorophyll-binding polypeptide from light-harvesting complex II (B800-850) of Rhodopseudomonas capsulata.

The large bacteriochlorophyll-a-binding polypeptide of the light-harvesting complex II (B800-850), having an apparent Mr with sodium dodecyl sulfate/polyacrylamide electrophoresis of 10000, has been isolated and purified from intracytoplasmic membranes of the phototrophically negative mutant strain Y5 of Rhodopseudomonas capsulata. The primary structure of this polypeptide has been determined. The polypeptide consists of 60 amino acid residues yielding an Mr of 7322. The hydrophobic stretch in positions 16-35 with a histidine in position 31 might be of importance for interaction with bacteriochlorophyll. The C-terminal part is also hydrophobic while the N-terminal part consists of hydrophilic amino acids. The polarity of the total amino acids was determined to be 28.3%.

Amino Acid Sequence↗

The complete amino-acid sequence of both subunits of phycoerythrocyanin from the thermophilic cyanobacterium Mastigocladus laminosus.

The amino-acid sequences of both subunits of phycoerythrocyanin from the thermophilic cyanobacterium Mastigocladus laminosus have been determined. The alpha-subunit consists of 162 amino-acid residues and has a molecular mass of 18200 Da. The beta-subunit is 171 residues long and has a molecular mass of 19600 Da. The tetrapyrrole chromophores are bound at position 84 in the alpha- and beta-subunits and at position 155 in the beta-subunit. The homology between the two subunits is 21%. The homologies between the phycoerythrocyanin subunits and the corresponding subunits of C-phycocyanin and allophycocyanin are 63% and 26% for the alpha-subunits and 67% and 36% for the beta-subunits, respectively. Secondary structure predictions were calculated for all six subunits of the phycobiliproteins from M. laminosus. The most conservative regions of the biliproteins were found in segments C-terminal to the chromophore-binding sites.

Amino Acid Sequence↗

N-terminal sequences of subunits L and M of the photosynthetic reaction centre from Rhodospirillum rubrum G-9+. Separation of the subunits by gel filtration on hydroxypropylated Sephadex G 100 in organic solvents.

A new method has been developed by which subunits L and M of the photosynthetic reaction centre from Rhodospirillum rubrum G-9+ can be obtained in pure form, starting form freeze-dried chromatophore membranes. The method employs extraction into a mixture of chloroform/methanol and gel permeation chromatography on a column of hydroxypropylated Sephadex G 100. Cross-contamination of the purified subunits was less than 5% (mol/mol), as estimated by manual Edman degradation. Automated Edman degradation has been carried out with both subunits in a liquid-phase sequencer. 36 amino-acid residues of subunit L and 50 residues of subunit M could be unequivocally identified. In both cases, the sequence analyses came to a premature end as the signal sudden by dropped to the level of the accidental fluctuations of the phenylthiohydantoin-derivatives background. This effect is explained by the unusual susceptibility to peptide bond cleavage of certain threonine residues which probably underwent N leads to O acyl shift during the cleavage reactions. The N-terminal sequences have been compared to those of subunits L and M of the photosynthetic reactions centre from Rhodopseudomonas sphaeroides R-26 (sutton, M.R., Rosen, D., Feher, G. & Steiner, L.A. (1982) Biochemistry 21, 3842-3849). The homology among subunits L is close to 90% and thus markedly higher than that among subunits M (32%). This finding indicates a pre-eminent role of subunit L in the primary events of photosynthetic energy conversion.

Amino Acid Sequence↗

Structure and function of L-lactate dehydrogenases from thermophilic and mesophilic bacteria. II) The primary structure of thermophilic lactate dehydrogenase from Bacillus stearothermophilus. Cyanogen bromide fragments and partial sequence.

The polypeptide chain of thermophilic lactate dehydrogenase from Bacillus stearothermophilus was split with cyanogen bromide. The 6 cyanogen bromide fragments were then separated and isolated by gel filtration (Bio-Gel P 10, Sephadex G-75) and ionic exchange chromatography (Biorex 70), respectively. Peptide fractionation was performed in 50% formic acid. Fragment yield varied between 30 and 75%. About 75% of the amino-acid sequence was determined by the automatic N-terminal sequence analysis (amino-acid sequenator) of the cyanogen bromide fragments (41-57 cycles degraded) and N-terminal region of lactate dehydrogenase (74 cycles degraded). Typical structure differences between thermophilic and mesophilic lactate dehydrogenases are already indicated by the comparison of the amino-acid composition of the thermophilic enzyme from B. stearothermophilus with the mesophilic from bacilli and higher organisms. Comparison of the N-terminal sequence reveals that sequence homology is higher (83-98%) between the thermophilic lactate dehydrogenases from B. stearothermophilus, B. caldotenax and B. caldolyticus than between the mesophilic lactate dehydrogenases of bacilli among each other or between thermophilic and mesophilic lactate dehydrogenases (about 60%). High temperature would appear to limit variation in structure.

Amino Acid Sequence↗

Structure and function of L-lactate dehydrogenases from thermophilic and mesophilic bacteria. III) The primary structure of thermophilic lactate dehydrogenase from Bacillus stearothermophilus. Hydroxylamine-, o-iodosobenzoic acid- and tryptic-fragments. The complete amino-acid sequence.

Based on the partial sequence of the cyanogen bromide fragments [Tratschin, J.D., Wirz, B., Frank, G. and Zuber, H. (1983) Hoppe-Seyler's Z. Physiol. Chem. 364, 879-892], the amino-acid sequence of thermophilic lactate dehydrogenase from B. stearothermophilus was completed by the preparation and sequencing (sequenator, carboxypeptidase A and Y) of further overlapping fragments. Suitable peptide fragments were obtained by lactate dehydrogenase cleavage with hydroxylamine, o-iodosobenzoic acid and trypsin. The polypeptide chain of thermophilic lactate dehydrogenase from B. stearothermophilus consists of 317 amino-acid residues. While sequence homology with mesophilic lactate dehydrogenase of higher organisms reaches 35%, it is substantially higher with this mesophilic enzyme of bacillae (greater than 60%, B. megaterium, B. subtilis). The secondary structure elements and amino-acid residues of the active site of thermophilic lactate dehydrogenase deducted from primary structure data were compared with those from the mesophilic enzyme, the same was done for the internal sequence homology at the nucleotide-binding units. A comparative structure analysis (matrix system) based on the primary structure data of thermophilic enzyme should provide insight into the characteristic structure differences between thermophilic and mesophilic lactate dehydrogenase.

Amino Acid Sequence↗

The polypeptide components from light-harvesting pigment-protein complex II (B800-850) of Rhodopseudomonas capsulata. Solubilization, purification and sequence studies.

A new procedure for isolation, purification and identification of the three polypeptides of the membrane-bound light-harvesting complex II (B800-850) of Rhodopseudomonas capsulata has been developed. The polypeptides were extracted from crude intracytoplasmic membranes with chloroform/methanol/ammonium acetate and separated by chromatography on Sephadex LH60. The peak fractions were transferred to solvents of different polarity and separated by gel filtration or ion-exchange chromatography. The three major polypeptides isolated by this two-step chromatography were found to be homogenous and identical with the three polypeptides of the light-harvesting complex II, as judged by amino acid analysis and N-terminal sequence determination. Contaminating minor polypeptides, of which the functions are unknown, were different from the polypeptides of the B800-850 complex studied by the same criteria.

Amino Acid Sequence↗

Thermophily.

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Adaptation, Physiological↗