Search PubMed⌕ Search

Biomedical subjects

M L Tanzer

Publications and source records attributed to M L Tanzer.

At least 91 records · Page 5Linked to original sources

Isolation and structure of a cross-linked tripeptide from calf bone collagen.

A cross-linked tripeptide has been isolated from alkaline hydrolysates of NaB3H4-reduced calf bone collagen. The peptide contains dihydroxylysinonorleucine, the most abundant cross-link in bone collagen, and it has a single N-terminal proline and a single C-terminal valine. These amino acids are in peptide linkage with the cross-link, in a trans configuration with respect to the secondary amine.

Animals↗

Structure of cultured fibroblasts from dermatosparaxic calves.

Clonal cell lines from the dermis of a dermatosparaxic calf were grown in tissue culture. After fixation in a mixture of glutaraldehyde and osmium, they were prepared for electron microscopy. Most cells contained a well-developed Golgi region, lysosomes, mitochondria, and dilated cisternae of rough endoplasmic reticulum. They also contained numerous, large bundles of intracellular fialments, many lipid droplets and extensive arrays of vesicles. Cultures accumulated substantial amounts of extracellular fibrillar material. The fibrils were loosely packed and indistinctly cross-banded. Bundles of intracellular filaments were commonly parallel in adjacent cells and also parallel to extracellular fibrils. These cytoplasmic features may result from the inability of the secreted collagen to form normal fibrils.

Animals↗

Immunological properties of procollagens obtained from the culture medium of dermatosparactic cells.

Rabbit antisera were produced against purified calf dermatosparatic procollagen and against the purified procollagens obtained from the culture medium of calf dermatosparatic cells. These antisera and their derived gamma-globulins were characterized by immunoprecipitation, double immunodiffusion and immunoelectrophoresis. Antiserum directed against dermatosparatic procollagen cross-reacted with the two different forms of procollagen obtained from the culture medium of dermatosparatic calf cells. Antiserum directed against onw of these procollagens, namely (pro alpha1)2 pro alpha2, cross reacted with dermatosparatic procollagen and also cross-reacted with the other procollagen,(pro alpha1)3. Antiserum directed against procollagen (pro alpha1)3 cross-reacted with dermatosparatic procollagen and with the procollagen (pro alpha1)2 pro alpha2. None of the antisera reacted with authentic calf skin collagen, or with the collagen extracted from the cell layer of the dermatosparatic calf cells in culture. Reduction andalkylation of the procollagens abolished the antigen-antibody reactions, while prior digestion of the antigens with bacterial collagenase did not eliminate the immunological reaction. Antigenic determinants in the cell culture procollagens were found at the COOH-terminal non-collagen peptide as well as at the NH2-terminal non-collagen peptide.

Animals↗

Procollagen: intermediate forms containing several types of peptide chains and non-collagen peptide extensions at NH2 and COOH ends.

A population of procollagen molecules has been isolated from the culture medium of a clonal line of calf dermatosparactic cells and shown to have the amino-acid composition, physical properties, and molecular structure consistent with collagen precursors. Although this procollagen population shares immunologic determinants with the procollagen obtained from dermatosparactic skin, it differs from the latter in aminoacid composition, in subunit properties, and by its content of both amino and carboxyl terminal non-collagen peptide appendages. We propose that the cell culture procollagen contains earlier biosynthetic forms of dermatosparactic procollagen.

Carbon Radioisotopes↗

Cross-linking of collagen.

The formation of collagen cross-links is attributable to the presence of two aldehyde-containing amino acids which react with other amino acids in collagen to generate difunctional, trifunctional, and tetrafunctional cross-links. A necessary prerequisite for the development of these cross-links is that the collagen molecules be assembled in the naturally occurring fibrous polymer. Once this condition is met, cross-linking occurs in a spontaneous, progressive fashion. The chemical structures of the cross-links dictate that very precise intermolecular alignments must occur in the collagen polymer. This seems to be a function of each specific collagen because the relative abundance of the different cross-links varies markedly, depending upon the tissue of origin of the collagen.

Aldehydes↗