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B Wittmann-Liebold

Publications and source records attributed to B Wittmann-Liebold.

At least 91 records · Page 5Linked to original sources

Isolation, characterization and microsequence analysis of a small basic methylated DNA-binding protein from the Archaebacterium, Sulfolobus solfataricus.

DNA-binding proteins have been extracted from the thermoacidophilic archaebacterium Sulfolobus solfataricus strain P1, grown at 86 degrees C and pH 4.5. These proteins, which may have a histone-like function, were isolated and purified under standard, non-denaturing conditions, and can be grouped into three molecular mass classes of 7, 8 and 10 kDa. We have purified to homogenity the main 7 kDa protein and determined its DNA-binding affinity by filter binding assays and electron microscopy. The Stokes radius of gyration indicates that the protein occurs as a monomer. The complete amino-acid sequence of this protein contains 14 lysine residues out of 63 amino acids and the calculated Mr is 7149. Five of the lysine residues are partially monomethylated to varying extents and the methylated residues are located exclusively in the N-terminal (positions 4 and 6) and the C-terminal (positions 60, 62 and 63) regions only. The protein is strongly homologous to the 7 kDa proteins of Sulfolobus acidocaldarius with the highest homology to protein 7d. Accordingly, the name of this protein from S. solfataricus was assigned as DNA-binding protein Sso7d.

Amino Acid Sequence↗

Microsequence analysis of DNA-binding proteins 7a, 7b, and 7e from the archaebacterium Sulfolobus acidocaldarius.

DNA-binding proteins in eubacteria, such as Escherichia coli NS1 and NS2, are generally small basic molecules. In contrast, the archaebacterium Sulfolobus acidocaldarius contains three groups of DNA-binding proteins which have molecular masses of 7, 8, and 10 kDa. In the first group, five proteins (7a-7e) have been identified, while in the second and third group only two proteins each are present, denoted 8a and 8b and 10a and 10b, respectively. In this paper, we present the primary structures of proteins 7a, 7b, and 7e from the first group. All three proteins contain lysyl residues which are monomethylated to different extents. The modified lysines are found in the NH2-terminal regions of all 7-kDa proteins and in the COOH-terminal part of protein 7e. The sequences of the 7-kDa group are highly similar to each other. All of these macromolecules have been shown to interact specifically with DNA. Protein 7e of the 7-kDa group shows the tightest binding to DNA.

Amino Acid Sequence↗

Primary structure of the archaebacterial Methanococcus vannielii ribosomal protein L12. Amino acid sequence determination, oligonucleotide hybridization, and sequencing of the gene.

The primary structure of ribosomal protein L12 from Methanococcus vannielii has been determined by direct amino acid sequence analysis with automated liquid phase Edman degradation of the entire protein and manual 4-N,N'-dimethylaminoazobenzene-4'-isothiocyanate/phenylisothiocyanate sequencing of fragments obtained by enzymatic digestion and by partial acid hydrolysis. The knowledge of the amino acid sequences of these various fragments allowed the synthesis of two oligonucleotide probes complementary to the 5'- and the 3'-end of the gene, and they were used for hybridization with digested M. vannielii chromosomal DNA. Both oligonucleotide probes gave similar and clear hybridization signals. The plasmid pMvaX1 containing the entire gene of protein L12 was obtained. The nucleotide sequence complemented the partial amino acid sequence, and it is in full agreement with the protein sequence and the amino acid analysis. Comparison of secondary structural elements and hydrophobicity plots of the M. vannielii protein L12 with the known L12 sequences derived from other archaebacterial and eukaryotic sources show strong homologies among these sequences. They contain an exceptional highly conserved hydrophilic sequence area in the C-terminal part of the proteins. In comparison with eubacterial L12 proteins, the conservation is reduced to single amino acid residues. However, the eubacterial L12 proteins have hydrophilic regions similar to those of L12 from M. vannielii. These regions are predicted to be located at the surface of the proteins, as has been proven to be the case in crystallized Escherichia coli L12 protein. It is possible that the strongly conserved hydrophilic sequence regions form part of the factor-binding domain.

Amino Acid Sequence↗

Identification of a cross-link in the Escherichia coli ribosomal protein pair S13-S19 at the amino acid level.

Escherichia coli 30 S ribosomal subunits and 70 S ribosomes were treated with the bifunctional reagent diepoxybutane, acting as a cross-linker. One major cross-linked protein pair in the 30 S subunit was generated in relatively high yields. This cross-link was shown to consist of ribosomal proteins S13 and S19. Purification of this complex was achieved by a series of conventional and/or high pressure liquid chromatography techniques allowing its isolation in milligram quantities. To reveal the exact position of the two amino acids involved in the cross-link formation, the purified protein pair S13-S19 was subjected to several enzymatic fragmentations, and the resulting peptides were characterized by sequence analysis, amino acid analysis, and fast atom bombardment mass spectrometry. After isolation of the cross-linked peptides, Cys84 in protein S13 and His68 in S19 could be unequivocally identified as the amino acids cross-linked by the bifunctional reagent. This result demonstrates that, despite neutron scattering data which place the centers of mass of S13 and S19 85 A apart, at least these regions of the two proteins are located within a 4-A distance in the ribosomal particle.

Amino Acid Sequence↗

Semi-preparative HPLC purification of ribosomal proteins from Bacillus stearothermophilus and sequence determination of the highly conserved protein S19.

Several proteins from the Bacillus stearothermophilus 30S ribosomal subunit which could not be isolated by conventional open-column chromatography were purified by high-performance liquid chromatography using a semi-preparative reverse-phase C4 column. Protein S19 was purified by this technique and the complete amino acid sequence determined. Protein S19 was fragmented and the peptides isolated in picomole quantities were sequenced by an improved manual 4-N,N-dimethylaminoazobenzene-4'-isothiocyanate (DABITC) technique; the presence of five consecutive C-terminal lysines in the S19 sequence was confirmed by gas-phase sequencing and fast-atom-bombardment (FAB) mass spectrometry. Protein S19 is composed of 91 amino acid residues which correspond to a molecular mass of 10,428 Da. 71% of the B. stearothermophilus S19 sequence was found to be identical with the corresponding ribosomal protein from Escherichia coli [Yaguchi and Wittmann (1978), FEBS Lett. 88, 227] and both sequences can be aligned without gaps. Among the known 26 amino acid sequences of the B. stearothermophilus and E. coli ribosome such a high degree of conservation has only been observed for a few proteins, all of which are known to be involved in the protein biosynthesis process. Although a clear function has not yet been assigned to protein S19, its high sequence conservation in these two eubacteria clearly indicates an important role of this protein for the function of the ribosome.

Amino Acid Sequence↗

The N-terminal sequence of ribosomal protein L10 from the archaebacterium Halobacterium marismortui and its relationship to eubacterial protein L6 and other ribosomal proteins.

The amino-terminal sequence of ribosomal protein L10 from Halobacterium marismortui has been determined up to residue 54, using both a liquid- and a gas-phase sequenator. The two sequences are in good agreement. The protein is clearly homologous to protein HcuL10 from the related strain Halobacterium cutirubrum. Furthermore, a weaker but distinct homology to ribosomal protein L6 from Escherichia coli and Bacillus stearothermophilus can be detected. In addition to 7 identical amino acids in the first 36 residues in all four sequences a number of conservative replacements occurs, of mainly hydrophobic amino acids. In this common region the pattern of conserved amino acids suggests the presence of a beta-alpha fold as it occurs in ribosomal proteins L12 and L30. Furthermore, several potential cases of homology to other ribosomal components of the three ur-kingdoms have been found.

Amino Acid Sequence↗

A new sensitive Edman-type reagent: 4-(N-1-dimethylaminonaphthalene-5-sulfonylamino)phenyl isothiocyanate. Its synthesis and application for micro-sequencing of polypeptides.

A new fluorescent PITC homologue Edman-type reagent, 4-(N-1-dimethylaminonaphthalene-5-sulfonylamino)phenyl isothiocyanate (DNSAPITC), was synthesized following a simple three-step synthetic route. The reagent was crystallized and characterized by thin-layer chromatography, IR and electron impact mass spectrometry. Reference DNSAPTH-amino acid derivatives were prepared and a two-dimensional chromatography system on micro-polyamide sheets was developed for separating this mixture. On these sheets the sensitivity was 1-5 pmol, by exposure at 366 nm. Model peptides and proteins were subjected to Edman degradations with this new reagent. A similar coupling efficiency and repetitive degradation yield to those of PITC were found with this reagent. The advantages and limitations of this reagent for sensitive microsequencing are discussed.

Amino Acid Sequence↗

Structural and functional properties of colicin B.

Colicin B was isolated in pure form from cells of Escherichia coli that contained the colicin activity and immunity genes cloned on a multi-copy plasmid. Active colicin B consisted of a single polypeptide with Mr of about 60,000. The sequence of 44 amino acids from the amino-terminal portion is presented. The isoelectric point of the protein was at 4.5. Colicin B inhibited the membrane potential-dependent transport of proline and enhanced the uptake of alpha-methylglucoside via the phosphoenolpyruvate-dependent phosphotransferase system. Colicin B formed small, ion permeable channels with an average single-channel conductance of 13.7 pS (1 pS = 10(-12) siemens) in 1 M KCl. Channel formation was voltage-dependent in the pH range between 4.5 and 6. At pH 7 the channels were voltage independent. Voltage-dependent channels were only formed when the trans compartment (the protein was added to the cis compartment) was negative by at least 70 mV. Evidence for an asymmetric single channel conductance was obtained. With KCl a hyperbolic conductance-concentration relationship was observed. The conductance for monovalent cations was minimal for Li+ and was maximal for NH+4. The single channel conductance of colicin B was larger than that of colicin A as judged from lipid bilayer experiments under otherwise identical conditions.

Amino Acid Sequence↗

The reaction site of a non-competitive antagonist in the delta-subunit of the nicotinic acetylcholine receptor.

A site in the primary structure of the nicotinic acetylcholine receptor from Torpedo marmorata covalently labeled with the non-competitive antagonist [3H]triphenylmethylphosphonium (TPMP+) was localized. The label was found in position 262 of the delta-polypeptide chain. This site is specifically labeled in the presence of the agonist carbamoylcholine. Labeling is prevented by the non-competitive antagonist histrionicotoxin. Position 262, probably a serine, is located in the highly conserved membrane-spanning helix M2 (according to the predicted folding scheme of Finer-Moore and Stroud (1984). The relationship of this site to the receptor's ion channel and its regulation is discussed.

Amino Acid Sequence↗

Protein pico-sequencing with 4-([5-(dimethylamino)-1-naphthylsulfonyl]amino) phenyl isothiocyanate.

A novel manual liquid phase protein sequencing method using the fluorescent reagent, 4-([5-(dimethylamino)-1-naphthylsulfonyl] amino) phenyl isothiocyanate proposed by Jin et al. (FEBS Lett. 198, 150, 1986) has been established. This method allowed sequence determination using 100 pmol and 1 nmol of insulin B chain (oxidised) for 9 and 19 cycles respectively with thin-layer chromatographic identification of the fluorescent thiohydantoin amino-acid derivatives. The method compares favorably in sensitivity with other conventional manual protein sequencing methods.

Amino Acid Sequence↗

Functional domains of colicin M.

The structure of colicin M of Escherichia coli was studied with regard to its organization into functional domains. A proteolytic fragment with an Mr of 24,000 was isolated which comprised the carboxyterminal portion of the protein. It adsorbed to the outer membrane receptor protein and inhibited killing of cells by colicin M and by phage T5 that uses the same receptor. The fragment killed cells when the outer membrane was rendered permeable to macromolecules for a short time by the osmotic shock procedure. It is concluded that the fragment contains the receptor binding site and the active center but is lacking the sequence required for transport into cells. The carboxy-terminal amino acid sequence-Lys-Arg of the fragment was identical to that obtained from colicin M. Release of lysine and arginine led to inactivation of colicin M. The sequence of the first 39 amino acids of the amino terminal end of colicin M was determined.

Amino Acid Sequence↗

An embryonic inducing factor: isolation by high performance liquid chromatography and chemical properties.

A protein (vegetalizing factor) which induces amphibian gastrula ectoderm to tissues which in normal development are derived from endoderm and mesoderm has been isolated from chicken embryo trunks by a combination of size exclusion and reversed phase HPLC. An amount of 0.5 ng factor per gastrula evokes inductions in 80-100% of the cases. The protein (apparent Mr approximately 13 000) is split by NaBH4 to polypeptide chains of about half the size under conditions in which disulfide bridges are reduced. The biological activity is lost.

Amino Acids↗

Application of high-performance liquid chromatographic techniques to the separation of ribosomal proteins of different organisms.

The ribosomal proteins from Escherichia coli, Bacillus stearothermophilus and Methanococcus vannielii were separated by size-exclusion, ion-exchange and reversed-phase high-performance liquid chromatography (HPLC), employing new column materials, different gradient systems, and preparative columns, respectively. The purity of the isolated proteins was analysed by one- and two-dimensional gel electrophoresis and by direct micro-sequencing. The separation of ribosomal proteins could be improved by employing propanol gradients in combination with Vydac reversed-phase columns. From the E. coli ribosome, fifteen S and twenty-three L proteins were isolated in sequencer purity by this method. In addition, ion-exchange HPLC was proven to be useful for isolating ribosomal proteins under native conditions: six S proteins and sixteen L proteins from E. coli could be purified. Some of these proteins were not isolated by the reversed-phase procedures, e.g. proteins L9, L14 and L21.

Amino Acid Sequence↗

Purification of Escherichia coli 50 S ribosomal proteins by high performance liquid chromatography.

The 50 S subunit proteins from the Escherichia coli ribosome were purified by size-exclusion, ion-exchange or reversed phase high performance liquid chromatography (HPLC) avoiding any precipitation or desalting procedures during isolation. Best resolution of this complex protein mixture was achieved by reversed phase chromatography on supports with short alkyl chains and C18 hydrocarbon-bonded phases; 23 out of the 32 proteins from the 50 S subunit were purified as shown by two-dimensional gel electrophoresis, amino acid analysis and direct micro-sequencing. Protein recoveries varied between 25 and 84% as determined by amino acid analysis. Ribosomal proteins of other organisms can be separated under similar conditions.

Chromatography, High Pressure Liquid↗

On the statistical significance of homologous structures among the Escherichia coli ribosomal proteins.

Completion of the sequence determination of all 52 Escherichia coli ribosomal proteins enabled a final comparison of their sequences. Similarities in amino acid compositions were compared to the relatedness of the sequences, which was analyzed statistically with the aid of the computer programs RELATE and ALIGN. Among the examined 52 X 52 possible protein pairs at least 40 pairs were found that can be regarded as distantly related (showing segment comparison score values slightly above 3.0 S.D. units). These protein pairs were further examined with the programs ALIGN and SEEK to locate homologous sequence stretches. In no case were two complete homologous sequences found (with the exception of the known identical pairs L7/L12 and S20/L26). However, short homologous sequence regions were observed. Beside those protein pairs that show significant although distant relatedness, other pairs were slightly below the threshold value of 3.0 S.D. units. Those pairs observed to be distantly related consisted either of two proteins from the same subunit or of one protein from each of the different subunits. A further analysis of these pairs revealed a correlation between their relatedness and their time of incorporation into the ribosome during assembly.

Amino Acid Sequence↗

Ribosomal proteins: their structure and spatial arrangement in prokaryotic ribosomes.

During the last 15 years of ribosomal protein study, enormous progress has been made. Each of the proteins from E. coli ribosomes has been isolated, sequenced, and immunologically and physically characterized. Ribosomal proteins from other sources (e.g., from some bacteria, yeast, and rat) have been isolated and studied as well. Several proteins have recently been crystallized, and from the X-ray studies it is expected that much important information on the three-dimensional structure will be forthcoming. Many other proteins can probably be crystallized if suitable preparative procedures and crystallization conditions are found. Tremendous progress has also been made in deciphering the architecture of the ribosome. A battery of different methods has been used to provide the nearest neighbor distances of the ribosomal proteins in situ. Definitive measurements are now emanating from neutron-scattering experiments which also promise to give reasonably accurate radii of gyration of the proteins in situ. In turn, refined immune electron microscopy results supplement the neutron-scattering data and also position the proteins on the subunits themselves. This cannot be done by the other methods. Determination of the three-dimensional RNA structure within the ribosome is still in its infancy. Nonetheless, it is expected that by combining the data from protein-RNA and from RNA-RNA cross-linking studies, the structure of the RNA in situ can be unraveled. Of great interest is the fact that ribosomal subunits and ribosomes themselves have now been crystallized, and low-resolution structural maps have already been obtained. However, to grow suitable crystals and to resolve the ribosomal structure at a sufficiently high resolution remains a great challenge and task to biochemists and crystallographers.

Amino Acid Sequence↗