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Biomedical subjects

C Blomberg

Publications and source records attributed to C Blomberg.

At least 19 recordsLinked to original sources

Predictive testing for multiple endocrine neoplasia type 1 using DNA polymorphisms.

Multiple endocrine neoplasia type 1 (MEN1) is an autosomal dominantly inherited predisposition to neoplastic lesions of the parathyroids, pancreas, and the pituitary. We have previously located the predisposing genetic defect to the long arm of chromosome 11 by genetic linkage. In this study, 124 members of six MEN1 families, including 59 affected individuals, were genotyped for restriction fragment length polymorphisms with different DNA probes, and the genetic linkage between these marker systems and MEN1 was determined. 13 marker systems (17 DNA probes) were found to be linked to MEN1. These markers are located within a region on chromosome 11 spanning 14% meiotic recombinations, with the MEN1 locus in the middle. Four of the marker systems are on the centromeric side of MEN1, and four on the telomeric side, based on meiotic crossovers. The remaining five DNA probes are closely linked to MEN1, with no crossovers in our set of families. The 13 marker systems can be used for an accurate and reliable premorbid test for MEN1. In most clinical situations it is possible to identify a haplotype of this part of chromosome 11 with the mutant MEN1 allele in the middle. The calculated predictive accuracy is greater than 99.5% if three such marker systems are informative. Therefore, genetic linkage testing can be used for informed genetic counseling in MEN1 families, and to avoid unnecessary biochemical screening programs.

Chromosome Mapping

Localization of the MEN1 gene to a small region within chromosome 11q13 by deletion mapping in tumors.

The gene for multiple endocrine neoplasia type 1 (MEN1), an inherited predisposition to neuroendocrine neoplasm of the parathyroid glands, the pancreatic islet parenchyma, and the anterior pituitary gland, was recently mapped to chromosome 11q13 based on genetic linkage in families. We now show that the pathogenesis of MEN1-associated parathyroid lesions involves unmasking of a recessive mutation at the disease locus and that sporadic primary hyperparathyroidism shares the same mechanisms. By examination of allele losses in MEN1-associated lesions, we could define deletions of chromosome 11 and map the MEN1 locus to a small region within chromosome band 11q13, telomeric to the PYGM locus. In contrast, a low incidence of deletions involving the MEN1 gene was found in sporadic pituitary adenomas.

Adenoma

Modelling efficiency, error propagation and the effect of error-enhancing drugs in protein synthesis.

The efficiency of protein synthesis is discussed with the main emphasis on the accuracy. The error increase by erroneous synthesizing proteins is studied by a theoretical model which includes the coupling of the amino acylation step to the protein synthesis at the ribosomes. Depending on parameter values, the model yields a stable point of relatively high accuracy, a point where most of the accuracy is lost and virtually no functioning proteins are produced (error catastrophe), or both. The effect of an error enhancing drug such as streptomycin can be considered, and it is found that one can have a situation where small amounts of the drug yields a decreased but stable accuracy, and where this possibility disappears at a certain drug level. At higher drug levels, the cells cannot attain any accuracy. The transition is quite drastic, and analogous to a phase transition.

Acylation

Site dependent time optimization of protein synthesis with special regard to accuracy.

The efficiency of protein synthesis is determined by its rate, accuracy, and energy consumption. With the energy consumption fixed, we optimize the system with respect to time and accuracy. Using an analytic model for a simple system and computer simulations for more complex systems, where also the possibility of errors is included, we demonstrate how different parts of the messenger RNA influence the protein production rate differently. The first part of the coding sequence is of major importance, since the availability of empty initiation sites is crucial, and queuing back to that region may interfere with initiation. The elongation rate at different positions depends on codon usage, on the concentrations of substrate and co-factors, and on the kinetic rate constants, including those of the proofreading branch(es). Ribosomal proofreading is a time consuming process and by allowing for more errors in the beginning of a protein, it is possible to increase the production rate of that protein. We calculate the mean translation time per functioning protein for various translation accuracies, and discuss the different strategies open to living cells.

Algorithms

Free energy and time economy for the mutual selection of monomers in biosynthesis, primarily protein synthesis.

The starting point of this work is the fact that the correction of errors in biosynthesis must be paid for by an increased dissipation (free energy loss) or a time delay. Further, a low accuracy is wasteful in this respect as the cell then produces a number of non-functioning products with a significant "production cost". One can then look for the situations of best "economy" for the selection processes. This is particularly obvious in reciprocal selections, where in some cases a substrate A shall be selected but discriminated against a competitor B, and in other cases, the opposite is true, B shall be selected with A as a competitor. It can be expected only in certain symmetric situations that these reciprocal selections are made in an equal way. Because one substrate shall be selected more often or it may be more relevant for the product, it may occur in higher concentrations and/or be selected more accurately (at a higher cost). The opposite selection may then be less accurate. The work studies various aspects of this.

Animals

Theoretical modelling of protein synthesis.

This article provides an overview of the use of mathematical and computer modelling in furthering the understanding of protein synthesis. In particular, we discuss issues such as the nature of the rate limiting step(s), error rates, tRNA-codon adaptation, codon bias, attenuation control, and problems of selection and error corrections, focussing on their theoretical treatment.

Codon

Optimization of error-correction processes with respect to time. Comparison to free energy aspects.

Time aspects of selection processes with the possibility of error correction through proofreading branches are studied by mathematical modelling of the kinetics of the reaction network. The methods are similar to those previously developed for free energy aspects. The minimum time delay that is necessary for achieving a certain accuracy level can then be calculated. The main difference to previous results lies in the initial association-dissociation step. In the free energy picture, this shall be essentially equilibrated, but that would yield a too large time delay in the time picture. Characteristic features that are indicative for the optimization strategy of the cell are discussed.

Energy Metabolism

Error propagation in E. coli protein synthesis.

A new approach to the error catastrophe theory, proposed by Leslie Orgel, is presented here. Our model is a development of previous models, but differs in several respects: the overall activity is assumed to be dependent on the error level, the effect of errors in the translating system, giving rise to additional errors in the succeeding generation of products, is explicitly included as a special term in our model, and scavenging enzymes are assumed to break down and eliminate products with a loose structure. Their efficiency is dependent on the error level. The model also takes into account the dilution of incorrect ribosomes and enzymes, and is described by a time-dependence in terms of ribosome/enzyme generations. The model and the contribution to the time development are discussed in the light of experiments on E. coli treated with streptomycin.

Amino Acid Sequence

The tRNA cycle and its relation to the rate of protein synthesis.

With the aid of a kinetic model, we have investigated how the adaptation between the various components of the tRNA cycle and the codon frequencies affects the rate of protein synthesis. Depending on the relative amounts of total tRNA, synthetase and ribosomes, the optimal correlations vary between a situation where all tRNA species are either present in equal amounts or are present in amounts proportional to the square-root of the corresponding codon frequencies, and a situation where the amounts of the different tRNA species present are linearly proportional to the codon frequencies.

Codon

Trans-membrane translocation of proteins. The direct transfer model.

As a start towards a deeper understanding of the transmembrane transport of proteins, the transfer of a nascent chain through the lipophilic core of a membrane is discussed from a physico-chemical point of view. Some simple considerations of the energetics of protein structure, together with experimental data on the transfer process, form the basis for a detailed and quantifiable model, accounting for the extrusion of secreted proteins as well as for the insertion of trans-membrane proteins.

Amino Acid Sequence

Association kinetics with coupled diffusion III. Ionic-strength dependence of the lac repressor-operator association.

The repressor-operator association is treated in a model where the repressor molecule can find its specific binding site, the operator, on a large DNA chain by performing a one-dimensional diffusion along the chain. The ionic-strength dependence is calculated by introducing a screened electrostatic potential around the DNA chain and coupling the free diffusion of the repressor in this potential to the proposed one-dimensional diffusion along the chain. The main influence on the association rate comes from the competitive binding of ions to the unspecific DNA sites. It is also demonstrated that during the time that the repressor is bound in a global sense, the diffusion along the chain will be made up of a strictly one-dimensional motion over fairly short distances, interspersed with many local dissociations during which the repressor in essence is free in solution.

Binding Sites

Models for mRNA translation: theory versus experiment.

Three models for mRNA translation are discussed in the light of available experimental data. It is concluded that the elongation rates vary along a messenger, possibly as a result of a coupling between ribosome movement and mRNA secondary structure. Some promising areas of further experimentation are indicated.

Alpha-Globulins