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Biomedical subjects

C B Sørensen

Publications and source records attributed to C B Sørensen.

7 recordsLinked to original sources

[Keratin diseases].

The rapid development in human genome research has resulted in a tremendous increase in our understanding of the molecular basis of many genetic skin diseases. One outstanding example of this is diseases caused by mutations in keratin genes, which comprise several disorders of the epidermis, as for example the different types of epidermolysis bullosa simplex. In this respect, the most important questions have been to 1. Define the molecular defect. 2. Unravel the pathophysiological mechanisms that lead to the characteristic phenotype and 3. Design of new therapeutic strategies. Molecular research has contributed significantly to the first two issues whereas a therapeutic break-through has yet to appear.

Epidermolysis Bullosa Simplex↗

[Epidermolysis bullosa simplex: genotype-phenotype correlation in Danish patients].

Epidermolysis bullosa simplex (EBS) is a group of autosomal dominant inherited skin disorders caused by mutations in the keratin genes K5 or K14. We examined five Danish families with EBS-Weber-Cockayne (WC) or EBS-Koebner (K) and two sporadic cases of EBS-Dowling-Meara (DM) in order to investigate the mutational spectrum and evaluate the genotype-phenotype correlation in Danish patients. Three new K14 mutations, one new and one previously described K5 mutation were identified by DNA sequence analysis. The positions of the EBS-DM mutations were consistent with previous studies, whereas the EBS-WC and EBS-K mutations were found in regions of the keratin genes not typically associated with this type of EBS mutations. In conclusion, we found a strict genotype-phenotype correlation. Furthermore, we found that the position of the mutation in the keratin gene is not the only determinant for severity of the disease; the nature of the amino acid substitution should also be considered when predicting the severity of the EBS disorder.

DNA Mutational Analysis↗

Identification of novel and known mutations in the genes for keratin 5 and 14 in Danish patients with epidermolysis bullosa simplex: correlation between genotype and phenotype.

Epidermolysis bullosa simplex (EBS) is a group of autosomal dominant inherited skin diseases caused by mutations in either the keratin 5 (K5) or the keratin 14 (K14) genes and characterized by development of intraepidermal skin blisters. The three major subtypes of EBS are Weber-Cockayne, Koebner, and Dowling-Meara, of which the Dowling-Meara form is the most severe. We have investigated five large Danish families with EBS and two sporadic patients with the Dowling-Meara form of EBS. In the sporadic Dowling-Meara EBS patients, a novel K14 mutation (N123S) and a previously published K5 mutation (N176S) were identified, respectively. A novel K14 mutation (K116N) was found in three seemingly unrelated families, whereas another family harbored a different novel K14 mutation (L143P). The last family harbored a novel K5 mutation (L325P). The identified mutations were not present in more than 100 normal chromosomes. Six polymorphisms were identified in the K14 gene and their frequencies were determined in normal controls. These polymorphisms were used to show that the K14 K116N mutation was located in chromosomes with the same haplotype in all three families, suggesting a common ancestor. We observed a strict genotype-phenotype correlation in the investigated patients as the same mutation always resulted in a similar phenotype in all individuals with the mutation, but our results also show that it is not possible to predict the EBS phenotype merely by the location (i.e., head, rod, or linker domains) of a mutation. The nature of the amino acid substitution must also be taken into account.

Denmark↗

Cloning of the murine tetranectin gene and 5'-flanking region.

The gene encoding murine tetranectin (Tna) and its 5'-flanking region was isolated and cloned from a EMBL3 SP6/T7 genomic library. The compiled nucleotide sequence was determined by sequencing, revealing a conserved Tna structure in man and mouse. Mapping of the transcription start point (tsp) suggests that murine Tna has more than one of these. In addition, no consensus TATA-box was found uptream for the putative tsp(s) in the 5'-flanking region of the gene, indicating that the murine Tna promoter belongs to the TATA-less class of genes. The cloned murine Tna was mapped to region F1-F3 on mouse chromosome 9 by fluorescence in situ hybridization (FISH).

Animals↗

Cloning of a cDNA encoding murine tetranectin.

A full-length cDNA encoding murine tetranectin (TN) was isolated and cloned from a murine lung lambda ZAPII cDNA library. The complete nucleotide sequence was determined revealing an open reading frame encoding 202 amino acids (aa) including a signal peptide of 21 aa. An overall aa identity of 79% exists between the deduced aa sequences of human and murine TN, revealing a high evolutionary conservation of the protein. The highest expression of mouse TN was found in lung and skeletal muscle.

Amino Acid Sequence↗

Determination of the disulphide bridge arrangement of bovine histidine-rich glycoprotein.

Histidine-rich glycoprotein (HRG) was purified from bovine plasma and the disulphide bridge arrangement established. Disulphide-bridged peptides were obtained from peptic and tryptic degradation of native bovine HRG. Twelve half-cystine residues were found in bovine HRG (compared to sixteen cysteines in human HRG), all involved in the formation of six disulphide bridges connecting Cys-1 to Cys-12, Cys-2 to Cys-3, Cys-4 to Cys-5, Cys-6 to Cys-11, Cys-7 to Cys-8, and Cys-9 to Cys-10. Additional sequence analysis of 14C-carboxymethylated chymotryptic and Staphylococcus aureus V8 protease generated peptides and CNBr-fragments of bovine HRG yielded a partial amino acid sequence of bovine HRG constituting 78% of the sequence when compared to the human cDNA sequence.

Amino Acid Sequence↗