Lysyl oxidase activity and elastin/glycosaminoglycan interactions in growing chick and rat aortas.
Open Access
- 1 September 1987
- journal article
- research article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 105 (3) , 1463-1469
- https://doi.org/10.1083/jcb.105.3.1463
Abstract
Hydrophobic tropoelastin molecules aggregate in vitro in physiological conditions and form fibers very similar to natural ones (Bressan, G. M., I. Pasquali Ronchetti, C. Fornieri, F. Mattioli, I. Castellani, and D. Volpin, 1986, J. Ultrastruct. Molec. Struct. Res., 94:209-216). Similar hydrophobic interactions might be operative in in vivo fibrogenesis. Data are presented suggesting that matrix glycosaminoglycans (GAGs) prevent spontaneous tropoelastin aggregation in vivo, at least up to the deamination of lysine residues on tropoelastin by matrix lysyl oxidase. Lysyl oxidase inhibitors beta-aminopropionitrile, aminoacetonitrile, semicarbazide, and isonicotinic acid hydrazide were given to newborn chicks, to chick embryos, and to newborn rats, and the ultrastructural alterations of the aortic elastic fibers were analyzed and compared with the extent of the enzyme inhibition. When inhibition was greater than 65% all chemicals induced alterations of elastic fibers in the form of lateral aggregates of elastin, which were always permeated by cytochemically and immunologically recognizable GAGs. The number and size of the abnormal elastin/GAGs aggregates were proportional to the extent of lysyl oxidase inhibition. The phenomenon was independent of the animal species. All data suggest that, upon inhibition of lysyl oxidase, matrix GAGs remain among elastin molecules during fibrogenesis by binding to positively charged amino groups on elastin. Newly synthesized and secreted tropoelastin has the highest number of free epsilon amino groups, and, therefore, the highest capability of binding to GAGs. These polyanions, by virtue of their great hydration and dispersing power, could prevent random spontaneous aggregation of hydrophobic tropoelastin in the extracellular space.This publication has 33 references indexed in Scilit:
- Aortic Elastin Abnormalities in Osteogenesis Imperfecta Type IICollagen and Related Research, 1986
- Relevance of aggregation properties of tropoelastin to the assembly and structure of elastic fibersJournal of Ultrastructure and Molecular Structure Research, 1986
- Elastin-Proteoglycans Association Revealed by Cytochemical MethodsConnective Tissue Research, 1985
- Extracellular matrix-specific induction of elastogenic differentiation and maintenance of phenotypic stability in bovine ligament fibroblasts.The Journal of cell biology, 1984
- Secretion of Elastin in the Embryonic Chick Aorta as Visualized by Immunoelectron MicroscopyCollagen and Related Research, 1984
- A simple post-embedding system for the rapid demonstration of tissue antigens under the electron microscopeJournal of Molecular Histology, 1983
- Banded fibers in Tropoelastin coacervates at physiological temperaturesJournal of Ultrastructure Research, 1983
- Elastin Structure, Biosynthesis, and Relation to Disease StatesNew England Journal of Medicine, 1981
- Interaction of a Tropoelastin Model with Connective Tissue Components†Connective Tissue Research, 1981
- Elastin—Proteoglycan Interaction Conformational Changes of α-Elastin Induced by the InteractionConnective Tissue Research, 1975