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O Ramström

Publications and source records attributed to O Ramström.

11 recordsLinked to original sources

Dynamic deconvolution of a pre-equilibrated dynamic combinatorial library of acetylcholinesterase inhibitors.

A dynamic combinatorial library composed of interconverting acylhydrazones has been generated and screened towards inhibition of acetylcholinesterase from the electric ray Torpedo marmorata. Starting from a small set (13) of initial hydrazide and aldehyde building blocks, a library containing possibly 66 different species was obtained in a single operation. Of all possible acylhydrazones formed, active compounds containing two terminal cationic recognition groups separated by an appropriate distance, permitting two-site binding, could be rapidly identified by using a dynamic deconvolution--screening procedure, based on the sequential removal of starting building blocks. A very potent bis-pyridinium inhibitor (K(i)=1.09 nM, alphaK(i)=2.80 nM) was selected from the process and the contribution of various structural features to inhibitory potency was evaluated.

Acetylcholinesterase↗

Food analyses using molecularly imprinted polymers.

Molecular imprinting technology (MIT) is a technique for generating polymers bearing biomimetic receptors. It offers several advantages to the agrofood industry in areas such as analysis, sensoring, extraction, or preconcentration of components. It has the potential of becoming a tool for acquiring truly simple, rapid, and robust direct measurements. In this review, the special features of MIT that have bearing on food science and technology are highlighted.

Chromatography↗

In situ generation and screening of a dynamic combinatorial carbohydrate library against concanavalin A.

Dynamic combinatorial chemistry (DCC) is a recently introduced approach that is based on the generation of combinatorial libraries by reversible interconversion of the library constituents. In this study, the implementation of such libraries on carbohydrate-lectin interactions was examined. The dynamic carbohydrate libraries were generated from a small set (four or six compounds) of initial carbohydrate dimers through mild disulfide interchange, and selection was performed under two conditions defining either adaptive or pre-equilibrated libraries. Upon initiation, libraries were formed that contained comparable amounts of 10 or 21 individual dimeric species, dynamically interchanging during the scrambling process. They were probed with respect to binding to the plant lectin concanavalin A, either present during library generation or added after equilibration. The libraries could be generated easily both in the presence and absence of the receptor, and a bis-mannose structure was preferentially bound and selected from the mixture. Scrambling of the library in the presence of the receptor resulted in slightly higher yields than when the receptor was added after scrambling, indicating that the receptor to some extent acts as a thermodynamic trap during library generation. The present results illustrate the extention of the DCC approach to carbohydrate recognition groups, the generation of isoenergetic dynamic libraries, and the implementation of either adaptive or pre-equilibrated procedures.

Carbohydrate Conformation↗

Use of molecularly imprinted polymers in a biotransformation process.

Molecularly imprinted polymers are highly stable and can be sterilised, making them ideal for use in biotransformation process. In this communication, we describe a novel application of molecularly imprinted polymers in an enzymatic reaction. The enzymatic condensation of Z-L-aspartic acid with L-phenylalanine methyl ester to give Z-L-Asp-L-Phe-OMe (Z-aspartame) was chosen as a model system to evaluate the applicability of using molecularly imprinted polymers to facilitate product formation. When the product-imprinted polymer is present, a considerable increase (40%) in product yield is obtained. Besides their use to enhance product yields, as demonstrated here, we suggest that imprinted polymers may also find use in the continuous removal of toxic compounds during biochemical reactions.

Aspartame↗

Synthesis and catalysis by molecularly imprinted materials.

Molecularly imprinted materials have been demonstrated to possess a very high degree of selectivity towards targeted substrates. In addition to such tailor-made molecular recognition, progress has been made in introducing reactive groups into the recognition sites. Putting teeth into imprinted matrices is one method of making true enzyme mimics or plastizymes, which are plastic polymer enzyme mimics.

Catalysis↗

Novel peptides binding to the Fc-portion of immunoglobulins obtained from a combinatorial phage display peptide library.

Peptides interacting with the Fc portion of human IgG (IgG Fc) were selected from a phage display decapeptide library. The library was selected five times and interacting phage peptides were eluted either with Staphylococcal protein A or at low pH. Individual peptide phage clones were found to interact more strongly with IgG Fc than did either the original library or the wild-type phage. Increasing concentrations of protein A could competitively reduce the interaction of a peptide phage clone (FARLVSSIRY) eluted with protein A to the same level as the original library. Furthermore, when immunoglobulins from chicken, donkey, human, mouse, swine, rabbit, and sheep were included, peptide phage clones FGRLVSSIRY and TWKTSRISIF interacted strongly with human IgG Fc and porcine IgG and weakly with the immunoglobulins obtained from the other species.

Amino Acid Sequence↗

Crown ethers as a tool for the preparation of molecularly imprinted polymers.

Molecularly imprinted polymers have been prepared against aniline and a bis-aniline compound, making use of a crown ether (18-crown-6) to solubilize the monomer-template complexes. Subsequent chromatographic rebinding studies in the absence of crown ether revealed regioselectivity for the templates in the respective polymers. This study indicates that crown ethers can be potentially useful in conjunction with molecular imprinting to solubilize and imprint organic solvent-insoluble compounds.

Crown Ethers↗

A new application of molecularly imprinted materials.

We have studied the possibility of shifting a thermodynamically unfavourable enzymatic equilibrium towards product formation via the addition of a highly specific adsorbent. The commercially interesting enzymatic condensation of Z-L-aspartic acid with L-phenylalanine methyl ester to the sweetener aspartame was chosen as the model system. Extremely stable and specific adsorbents for the product Z-L-Asp-L-Phe-OMe (Z-aspartame) were prepared using the emerging technique of molecular imprinting. A considerable increase (40%) in the yield of product was obtained when such adsorbents were present during the enzymatic reaction. The message of this investigation is that the use of such specific, sterilizable adsorbents should be considered for enzymatic processes to increase the yield. Finally, the direct isolation of a product formed by the retrieval of the adsorbents carrying the product can be envisaged, especially if the adsorbents are magnetic.

Adsorption↗

Artificial antibodies to corticosteroids prepared by molecular imprinting.

BACKGROUND: Molecular imprinting can be used to prepare antibody and receptor mimics. We have previously shown that acrylic acid polymers can be imprinted to recognize a variety of small molecules. Here, we show that molecularly imprinted polymers (MIPs) can selectively recognize steroid structures. RESULTS: Artificial antibodies mimicking the binding performance of natural anti-corticosteroid antibodies have been prepared using a molecular imprinting protocol with either cortisol or corticosterone as a target molecule. The binding characteristics of a range of structurally related ligands were estimated using a form of radioimmunoassay. The antibody mimics were found to be highly selective for the ligands used in their preparation and the cross-reactivities with compounds of related structure resembled those obtained in studies with natural antibodies. CONCLUSIONS: The binding properties of MIPs, prepared against corticosteroids, exhibit strong similarities to those of naturally raised antibodies. Such artificial antibodies may serve as a useful complement to their natural counterparts in studies of corticosteroid binding events.

Adrenal Cortex Hormones↗

Towards artificial antibodies prepared by molecular imprinting.

The new technique of molecular imprinting has increasingly been adopted by research laboratories worldwide during the last few years. We have studied the use of such imprints against drugs as artificial antibody-binding mimics in competitive radioimmuno-style binding assays. The recognition sites "molded" in the polymers mimic the binding sites of natural antibodies in their interactions with the target antigen. Binding constants are as low as 4.0 nmol/L for a small number of well-defined sites, and cross-reactivities are similar to or better than those observed with biological antibodies. In some cases, the polymers have been used to determine drug concentrations in human serum specimens.

Antibodies↗

Chiral recognition in adrenergic receptor binding mimics prepared by molecular imprinting.

Molecularly imprinted polymers were prepared against the adrenomimetic agents ephedrine and pseudoephedrine. These compounds each incorporate two chiral centres. The polymers were evaluated with respect to enantiodiscrimination of various adrenergic ligands. The selectivity of the polymeric binding sites for the imprinted molecules was very high, and it was found that binding of both the enantiomeric and diastereomeric isomers of the imprint species were effectively obstructed, it was found that these polymers could selectively recognize the enantiomers of the endogenous adrenergic ligand epinephrine as well as several beta-adrenergic blockers. These observations suggest that these polymers effectively mimic the recognition patterns exhibited by natural adrenergic receptors.

Adrenergic Agents↗