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Biomedical subjects

H I Elsner

Publications and source records attributed to H I Elsner.

5 recordsLinked to original sources

Breaking of B cell tolerance toward a highly conserved self protein.

Self proteins are processed and presented by APCs in the same way as foreign proteins. Presentation of fragments derived from self proteins does not, however, lead to Th cell stimulation because of T cell tolerance. In this study, a novel approach was used to investigate whether B cell tolerance toward a self Ag could be due to the absence of this Th cell recognition. The highly conserved nonimmunogenic protein ubiquitin was used as a model protein. Two modified ubiquitin molecules were constructed with ubiquitin segments exchanged either with the T cell epitope, OVA(325-336), which binds to the mouse A(d) MHC class II molecule, or with the T cell epitope, hen egg lysozyme(50-61), which binds to the A(k) molecule. Mice were immunized with the resulting proteins. Both modified proteins elicited strong autoantibody responses toward soluble native ubiquitin, demonstrating that insertion of a single foreign T cell epitope can overcome the B cell nonresponsiveness. The T cell regulatory role of one of the inserted foreign T cell epitopes in ubiquitin was studied, and at least two different Th cell specificities were found to operate in the response. The T cells were directed against: 1) the inserted epitope, and 2) a combination of the inserted epitope and parts of the neighboring ubiquitin regions. Therefore, the absence of T cell help seems to be an important reason for B cell tolerance toward self proteins.

Amino Acid Sequence

Hydrocoating: a new method for coupling biomolecules to solid phases.

Solid-phase immunoassays such as enzyme-linked immunosorbent assays require one of the assay components to be immobilized. Most frequently this is achieved by passive adsorption of the antigen or antibody to a hydrophobic polymer surface composed of, e.g., polystyrene. Alternatively the biomolecule can be bound indirectly via passively adsorbed carrier proteins or directly via functional groups on the solid phase using cross-linking agents. Here we describe a new technique--hydrocoating--for covalent immobilization of biomolecules, such as peptides, in highly hydrophilic surroundings. Peptides were immobilized on microtiter plates via covalent bonds to an activated hydrophilic polymer. Soluble dextran was activated using 2,2,2-triflouroethanesulphonyl chloride (tresyl chloride) leading to activation of hydroxyl groups on the dextran polymer. This activated dextran molecule was immobilized on a surface containing amino groups leaving a sufficient number of active groups for secondary binding of other biomolecules. Peptides, that were either undetectable or poorly recognized when adsorbed on polystyrene, were readily recognized when immobilized by the hydrocoating technique. Furthermore, peptides immobilized by this method were recognized 5-10-fold better compared to the same peptides immobilized covalently on a surface containing secondary amino groups. The technique appears to provide an alternative to passive adsorption of biomolecules on solid phases and may be useful in the future development of immunoassays.

Amino Acid Sequence

Ultrasonic degradation of DNA.

Different results are obtained when DNA in aqueous solution and DNA in biological tissue are exposed to ultrasound. At intensities of ultrasound comparable to those applied clinically, ultrasonication is able to degrade purified DNA in aqueous solution, making ultrasonication a useful tool for preparing DNA fragments in vitro. Ultrasonic degradation of DNA in solution occurs by breaking hydrogen bonds and by single-strand and double-strand ruptures of the DNA helix. Two mechanisms are mainly responsible: cavitation and a thermal or mechanical effect. Stable cavitation is seen at low intensities of ultrasound. Increasing the intensity of the ultrasound above 2 W/cm2 is followed by increases in single-strand ruptures due to the creation of free radicals by transient cavitation. Following sonication, the distribution of the resulting DNA fragments approaches a lower size limit of 100-500 bp. Breaks in the DNA helix occur mainly between oxygen and carbon atoms, resulting in DNA fragments with a phosphorylated 5' end and a free alcohol at the 3' end. The relative lack of specificity in degrading the DNA helix makes ultrasonication a complementary alternative to the highly specific fragmentation obtained by restriction endonucleases.

DNA

Protein crosslinking reagents containing a selenoethylene linker are cleaved by mild oxidation.

A homobifunctional cleavable crosslinking reagent containing a selenoethylene group in the linker, and related reagents, have been synthesized and tested in a model system involving formation of a complex between albumin and cytochrome c. Functionally, complex formation was suggested by albumin inhibition of the ascorbate reduction of cytochrome c. Structurally, complex formation was demonstrated by crosslinking and subsequent separation of crosslinked complex from non-crosslinked proteins by SDS-polyacrylamide gel electrophoresis. The crosslinks were found to be cleavable by mild oxidation with low concentrations of periodate or with N-chlorobenzenesulfonamide immobilized on polystyrene beads (Iodo-Beads).

Albumins

Use of psoralens for covalent immobilization of biomolecules in solid phase assays.

The ability of compounds to adsorb passively to hydrophobic polymer surfaces composed of, e.g., polystyrene generally is restricted to limited types of molecules such as proteins. Some proteins, many peptides, polysaccharides, oligonucleotides, and small molecules as well as pro- and eucaryotic cells cannot adsorb directly to such surfaces. Also, solid phase adsorbed antigens, antibodies, or gene probes may not be recognized by its corresponding ligand due to denaturation or steric hindrance of the molecular tertiary structure. Covalent binding, on the other hand, orientates all immobilized compounds in a defined way on the solid phase, thereby exposing the interacting sites on the enzymes, antibodies, gene probes, etc. Here we describe a method for modifying a polymer surface by contacting the polymer with derivatives of psoralen under irradiation with long-wavelength UV light. The psoralen derivatives were immobilized covalently on the polymer surface by this process. The psoralen molecules was conjugated to appropriate chemical linkers, incubated in aqueous solutions, and irradiated with UV light. This resulted in solid phase introduction of functional groups such as, e.g., amino groups on the polystyrene surface. The functional groups could subsequently be used for immobilization of biomolecules using conventional cross-linker technology. The method only involved premodification of the psoralens to be immobilized whereas no pretreatment of the polymer was required. Psoralen modified microtiter plates seems to have future application for the development of solid phase hybridization and immunoassays.

Biotin