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H Köster

Publications and source records attributed to H Köster.

17 recordsLinked to original sources

Functionalized membrane supports for covalent protein microsequence analysis.

Methods were developed for high yield covalent attachment of peptides and proteins to isothiocyanate and arylamine-derivatized poly(vinylidene difluoride) membranes for solid-phase sequence analysis. Solutions of protein or peptide were dried onto 8-mm membrane disks such that the functional groups on the surface and the polypeptide were brought into close proximity. In the case of the isothiocyanate membrane, reaction between polypeptide amino groups and the surface isothiocyanate moieties was promoted by application of aqueous N-methylmorpholine. Attachment of proteins and peptides to the arylamine surface was achieved by application of water-soluble carbodiimide in a pH 5.0 buffer. Edman degradation of covalently bound polypeptides was accomplished with initial and repetitive sequence yields ranging from 33 to 75% and 88.5 to 98.5%, respectively. The yields were independent of the sample load (20 pmol to greater than 1 nmol) for either surface. Significant loss of material was not observed when attachment residues were encountered during sequence runs. Application of bovine beta-lactoglobulin A chain, staphylococcus protein A, or the peptide melittin to the isothiocyanate membrane allowed for extended N-terminal sequence identification (35 residues from 20 pmol of beta-lactoglobulin). A number of synthetic and naturally occurring peptides were sequenced to the C-terminal residue following attachment to the arylamine surface. In one example, 10 micrograms of bovine alpha-casein was digested with staphylococcal protease V8 and the peptides were separated by reverse-phase chromatography. Peptide fractions were then directly applied to arylamine membrane disks for covalent sequence analysis. From as little as 2 pmol of initial signal it was possible to determine substantial sequence information (greater than 10 residues).

Amines

Applications of dioxetane chemiluminescent probes to molecular biology.

DNA probes and synthetic oligonucleotides in general present one of the key tools in modern molecular biology research and increasingly also in commercial applications. Along with the many applications that have been developed for and with DNA probes, faster and more sensitive detection methods are being developed. One of the most promising recent developments presents a method based on enzymatically triggered chemiluminescence. Details of this chemistry along with applications in molecular biology and immunology will be discussed and compared to conventional methods.

Chemistry Techniques, Analytical

Solid-phase sequence analysis of proteins electroblotted or spotted onto polyvinylidene difluoride membranes.

Electroblotted proteins noncovalently bound to polyvinylidene difluoride (PVDF) membranes are typically sequenced using adsorptive sequencer protocols (gas-phase or pulsed-liquid) that do not require a covalent linkage between protein and surface. We have developed simple chemical protocols where proteins are first electroblotted onto unmodified PVDF membranes, visualized with common protein stains, and then immobilized for solid-phase sequence analysis. Adsorbed, stained proteins are first treated with phenylisothiocyanate (PITC) to modify alpha and epsilon amines. The protein is then overlayed with a solution of 1,4-phenylene di-isothiocyanate (DITC), followed by a few microliters of a basic solution containing a poly(alkylamine). As the polymer dries onto the surface both polymer and remaining protein amino groups are crosslinked by DITC. The protein is thus immobilized to the membrane surface by entrapment in a thin polymer coating. The coating is transparent to the degradation chemistry, and extensive enough to remain immobilized even in the absence of any covalent link between polymer and surface. Partial modification with PITC allows for identification of N-terminal and internal lysine residues during sequencing. The process was tested with a variety of poly(alkylamines), linear and branched, with molecular weights ranging from 600 to over 100,000. Proteins bound in this manner were successfully sequenced using covalent (solid-phase) sequencer protocols with cycle times as short as 26 min.

Absorption

DNA chain length markers and the influence of base composition on electrophoretic mobility of oligodeoxyribonucleotides in polyacrylamide-gels.

The specific influence of the four nucleobases on electrophoretic mobility of oligodeoxyribonucleotides in polyacrylamide-gels under denaturing and nondenaturing conditions has been investigated using homooligomers from the four deoxyribonucleotides as chain length standards. Homooligomers of same chain lengths exhibit remarkable differences in mobility. Specific retardation of any other oligonucleotide investigated was found to be mainly dependent on base composition but not on sequence. A simple procedure is presented for calculating mobilities relative to the standards on denaturing gels. This allows a reliable identification of oligonucleotides on acrylamide-gels by exact chain length determination with respect to base composition and furthermore a detailed interpretation of complex reaction mixtures. The homooligomers also show the same differences in mobility on nondenaturing gels. The significance of this effect for strand separation is discussed.

Base Sequence

Well-defined insoluble primers for the enzymatic synthesis of oligo- and polynucleotides.

Two methods are described by which primer molecules like UpU and oligodeoxythymidylates can be coupled with high efficiency to an insoluble polymer, like hydroxypropylated Sephadex G-50, by one covalent linkage. In one procedure aliphatic dicarboxylic dichlorides (e.g. adipoyl dichloride) are used to serve as spacers of variable length and for anchoring the primer molecule UpU. The other method involves pU as an anchor for (pdT)3 and (pdT)6, which are coupled to the polymer using condensation reactions with 2,4,6-triisopropylphenylsulfonyl chloride. In both cases the homogeneous primer molecules are bound specifically to the polymer. The insoluble primers are tested for their priming efficiency using polynucleotide nucleotidyltransferase from Micrococcus luteus and DNA nucleotidylexotransferase from calf thymus. The primers and synthesized polynucleotides can be cleaved from the polymer under conditions which are not damaging to ribo- and deoxyribopolynucleotides.

Animals

[Physiology and biochemistry of streptomycetes. X. Biological degradation of paromomycin and alkaline phosphatase activity depending on antibiotic production by Streptomyces albus var. metamycinus nov. var].

After adding 14C-paromomycin to the fermentation broth we observed a varying course of decomposition of the antibiotic, which is dependent on the intensity of paromomycin biosynthesis running simultaneously. At a reduced rate of antibiotic biosynthesis, the activity of alkaline phosphatase is lower than with an increased rate of production. This applies for mycelium as well as for broth.

Alkaline Phosphatase

[Physiology and biochemistry of streptomycetes. XI. Different incorporation of D-glucose-u-14C into the paromomycin isomers and the precursors of paromomycin I].

During application of D-glucose-u-14C paromomycine II is higher labelled and shows a different dependence on the application time than paromomycine I, which is isomer at the paromose part. For the two paromose isomeres different rates of synthesis are supposed that change nonproportionally to each other. The distribution of radioactivity in paromomycine I shows that there is no fragmentation of the glucose chain during the biosynthesis of glucosamine, ribose, and paromose I. As to the 2-deoxystreptamine the result has not been ascertained.

Glucose

[Physiology and biochemistry of streptomycetes. XIII. Biosynthesis of paromomycin by Streptomyces albus var. metamycinus nov. var. supplied with 14C-glucose, 14C-glucosamine, 14C-2-desoxystreptamine and 14C-ribose].

Distribution of radioactivity in paromomycin ascertained after application of 14C-D-glucose, 14C-D-glucosamine, 14C-2-deoxystreptamine, respectively, 14C-D-ribose is taken as basis for a biosynthesis scheme: While ribose bound in the antibiotic originates from glucose by oxidation and following decarboxylation, glucosamine is formed via fructose-6-phosphate. Paromose I arises from glucosamine, but not the cyclohexan derivative 2-deoxystreptamine, whose biosynthesis pathway is directly branching off glucose.

Carbon Radioisotopes

[Physiology and biochemistry of streptomycetes. III. Incorporation of D-glucose-u-14C in paramomycin as indicator of antibiotic biosynthesis by Streptomyces albus var. metamycinus nov. var].

Paromomycin was isolated from culture filtrates of Streptomyces albus var. metamycinus nov. var. after feeding the growing cultures with D-glucose-u-14C. From the different incorporation rates conclusions concerning different features of the paromomycin biosynthesis (utilization of the carbon source, proportional and disproportional changes of the rates of synthesis) could be drawn. Uptake and metabolism of glucose are discussed.

Culture Media

Total synthesis of a structural gene for the human peptide hormone angiotensin II.

Seven oligonucleotide chains containing between 6 and 11 nucleotide units were synthesized. The segments were phosphorylated by T4 polynucleotide 5'-hydroxyl-kinase and joined by T4 polynucleotide synthetase (ATP) to give the double-stranded DNA consisting of 33 base pairs. The DNA sequence was deduced from the known peptide sequence according to the genetic code.

Angiotensin II

New bacteriophage vectors for the large scale production of single stranded insert DNA.

SSEV 18 and SSEV 19, derivatives of the bacteriophages M13mp18/19, are new versatile cloning vectors allowing the large scale preparation of single stranded (ss) insert DNA. Replacing the original multiple cloning site by a synthetic 96 bp DNA fragment, a new polylinker region has been introduced containing complementary sequences designed to form a stem structure where single stranded insert fragments can be excised via a 'master restriction' site. The usefulness of such a vector has been demonstrated by the cloning of a 900 bp HindIII fragment derived from the Mycoplasma hyorhinis 23 S rRNA gene. After excision the single stranded insert was labeled isotopically and tested for sensitivity and specificity in detecting homologous sequences in pure DNA or cellular material immobilized on filters.

Base Sequence