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Mapping of binding sites for monoclonal antibodies to chick tropoelastin by recombinant DNA techniques.

A fusion molecule consisting of the entire coding sequence of mature chicken tropoelastin preceded by 14 amino acids of the signal peptide and 9 amino acids of vector origin has been expressed in a recombinant bacterial system and purified. The molecule has been used as immunogen for the production of hybridomas. Monoclonal antibodies which bound specifically the immunogen were also reactive with tropoelastin purified from chick aorta and stained elastic fibers in aorta sections by immunofluorescence. The region of tropoelastin containing the antigenic determinant recognized by each antibody has been identified by a recombinant DNA expression strategy based on the use of cDNA clones spanning different portions of the coding sequence. It could be shown that several antibodies were directed against unique epitopes; among these, a group of antibodies bound specifically to the sequence (PGVGV)n. Other antibodies were found to recognize antigenic determinants present more than once in the molecule. The monoclonal antibodies thus characterized will be useful reagents in studying the function of the different domains of tropoelastin.

Animals↗

The role of the carboxy terminus of tropoelastin in its assembly into the elastic fiber.

Tropoelastin, the soluble precursor protein of insoluble amorphous elastin, contains repeating segments that are important for the characteristic elasticity and crosslinking sites of mature elastin. In addition, there is a unique carboxy terminal domain that is encoded by exon 36 of the elastin gene, and it has been suggested that this region may play a role in the process of insolubilization. The contribution of exon 36 to the maturation of tropoelastin into insoluble elastin was probed in these studies. Neonatal rat aortic smooth muscle cells were cultured and the fate of [3H] Lys labeled human recombinant tropoelastin (hrTE) molecules added to the cultures was monitored. In comparison to the hrTE containing the region encoded by exon 36, hrTE molecules lacking this domain were less efficiently incorporated into elastin, as evidenced by a decrease in NaOH insoluble radioactivity. Specific residues within the domain encoded by exon 36 were targeted for further study in experiments in which the two Cys residues were reduced and alkylated, and/or the four basic Arg-Lys-Arg-Lys residues at the carboxy terminus were removed. Both of these modifications resulted in decreased incorporation into elastin equivalent to the complete removal of the carboxy terminus. Prior treatment of the cell layer with elastase reduced the efficiency of insolubilization of hrTE containing the domain encoded by exon 36, but had no effect on the processing of molecules lacking this region. These data suggest that exon 36 of the elastin gene contributes to normal efficient incorporation of tropoelastin into the elastin fiber.

Animals↗

Tropoelastin expression by periodontal fibroblasts.

Elastic system fibers are load-bearing proteins found in periodontal tissue. There are three types--oxytalan, elaunin, and elastic fibers--which differ in their relative microfibril and elastin contents. Oxytalan fibers are known to be distributed in the periodontal ligaments and gingiva, whereas elaunin and elastic fibers are present only in the gingiva. We examined gene expression and accumulation of tropoelastin in the cell-matrix layers of human gingival fibroblasts (HGF) and periodontal ligament fibroblasts (HPLF) in vitro. HGF and HPLF were cultured in MEM containing 10% newborn calf serum for 8 wks. Northern blotting and RT-PCR analyses showed that only HGF expressed mRNA encoding tropoelastin. Western blotting analysis demonstrated 77-kDa protropoelastin and 68-kDa tropoelastin only in the cell-matrix layer of HGF cultured for 8 wks. These results suggest that the different tropoelastin expression patterns reflect the difference between HGF and HPLF phenotypes.

Adolescent↗

Microfibril-associated glycoprotein binds to the carboxyl-terminal domain of tropoelastin and is a substrate for transglutaminase.

Microfibril-associated glycoprotein (MAGP) is an integral component of microfibrillar structures that play a critical role in the organization of elastic fibers in the extracellular matrix. To study possible molecular interactions between MAGP and other elastic fiber components, we have generated native MAGP using a baculovirus expression system and tested its ability to associate with tropoelastin and fibrillin. MAGP produced by SF9 cells underwent processing similar to the mammalian protein, including correct cleavage of the signal peptide and sulfation of tyrosine residues. When tested in solid-phase binding assays, native MAGP specifically bound to tropoelastin but not fibrillin-1. Binding to tropoelastin was divalent cation-independent and was completely blocked by reduction and alkylation of either protein. Antibody inhibition studies indicated that the carboxyl terminus of tropoelastin mediated its interaction with MAGP. In addition to binding to elastin, MAGP was also a substrate for transglutaminase, which might explain its propensity to form high molecular weight aggregates that cannot be dissociated with reduction or denaturation. Together, the results of this study provide new insights into the functional relationship between microfibrillar proteins and have important implications for understanding elastic fiber assembly.

Amino Acid Sequence↗

Isolation of soluble elastin from lathyritic chicks. Comparison to tropoelastin from copper deficient pigs.

Tropoelastin was isolated from the aortas of chicks rendered lathyritic by treatment with beta-aminopropionitrile. The soluble elastin was judged homogeneous by sodium dodecyl sulfate polyacrylamide gel electrophoresis and possessed an estimated molecular weight of 70000. Automated sequential analysis revealed that the N-terminal region of the chick tropoelastin is very homologous to tropoelastin isolated from copper-deficient piglets. N-terminal analysis of a trypsin digest of chick tropoelastin showed that tyrosine frequently is found adjacent to lysine residues. This positioning of tyrosine residues may be significant in terms of a possible regulatory role in elastin cross-link formation.

Amino Acid Sequence↗

Primary structure of the signal peptide of tropoelastin b.

Elastin is a major protein of compliant connective tissue and is characterized by an amino acid composition abundant in nonpolar residues. The soluble precursor to elastin tropoelastin, is extractable in organic solvents and possesses an extensive clustering of nonpolar amino acid residues in the immediate NH2-terminal region (Foster, J. A., Shapiro, R., Voynow, P., Crombie, G., Faris, B., and Franzblau, C. (1975) Biochemistry 14, 857-864). It was, therefore, of special interest to determine whether tropoelastin requires a hydrophobic signal peptide for vectorial transport of the nascent polypeptide. The possibility that the initial tropoelastin translation product possesses a short signal peptide was examined in a cell-free translation system. Total RNA, isolated from aortae of 1-day-old chicks, was translated in an mRNA-dependent reticulocyte lysate translation assay. The translation products were then immunoprecipitated and subjected to automated radiosequencing. Comparison of the NH2-terminal sequence of tropoelastin b synthesized in the cell-free system versus that synthesized in organ culture demonstrated the presence of a signal peptide 24 amino acid residues in length. The signal peptide sequence is as follows: Met-Arg-Gln-Ala-Ala-Ala-Pro-Leu-Leu-Pro-Gly-Val-Leu-Leu-Leu-Phe-Ser-Ile-Leu-Pro -Ala-Ser-Gln-Gln. The preponderance of hydrophobic amino acid residues as well as the polar residues adjacent to the initiator methionine and the carboxyl termini found in the signal peptide is similar to that reported for other secreted proteins.

Amino Acid Sequence↗

The 67 kDa spliced variant of beta-galactosidase serves as a reusable protective chaperone for tropoelastin.

Numerous cell types express the 67 kDa galactolectin related to the alternatively spliced variant of beta-galactosidase. This 67 kDa protein, while present on cell surfaces, mediates cell contacts with elastin, laminin and collagen type IV. In elastin-producing tissues, the 67 kDa protein also co-localizes with intracellular tropoelastin and mature elastic fibres. We have established that this elastin binding protein (EBP) serves as a molecular chaperone for tropoelastin. The EBP binds this highly hydrophobic and unglycosylated ligand intracellularly, protecting it from intracellular self aggregation and premature proteolytic degradation, and mediates its orderly assembly upon the microfibrillar scaffold. While some of this protein is incorporated as a permanent component of elastic fibres, most of the EBP, after extracellular dissociation from its ligand, recycles back to the intracellular endosomal compartment and re-associates with the newly synthesized tropoelastin. We suggest that recycling of this reusable shuttle protein is imperative for the effective extracellular deposition of insoluble elastin.

Alternative Splicing↗

Production of recombinant human tropoelastin: characterization and demonstration of immunologic and chemotactic activity.

Tropoelastin cannot readily be prepared in quantity from natural sources and this has limited research in several important areas including structure/function relationships and fiber assembly. In order to eliminate this limitation, human tropoelastin has been expressed in a recombinant bacterial system and the protein has been highly purified. The size, amino acid composition, and sequence of the amino terminus of the recombinant tropoelastin (rTE) all agree with values predicted by the nucleotide sequence of the cDNA used in the expression vector. The rTE exhibits cross-reactivity with antibodies directed against a mixture of peptides derived from human elastin as well as antibody against a defined peptide located at the carboxy terminus of the protein. In addition, the rTE is chemotactic for fetal calf ligament fibroblasts. These results suggest that rTE could be a useful reagent for many types of studies.

Animals↗

Ascorbic acid reduces tropoelastin levels in culture medium of chick skin fibroblasts.

Ascorbic acid reduced tropoelastin levels in the culture medium of embryonic chick skin fibroblasts to one-third or one-fourth of their original value in a dose- and exposure time-dependent manner under conditions in which collagen synthesis was stimulated 1.8-fold. The steady-state level of elastin mRNA remained essentially constant, whereas the collagen mRNA content increased in proportion to the increase in collagen synthesis with ascorbic acid treatment. These results suggest that the reduction of tropoelastin levels is not controlled by the elastin mRNA level but, rather, is related to the posttranslational modification of the tropoelastin molecule.

Actins↗

Specificity in the coacervation of tropoelastin: solvent exposed lysines.

Tropoelastin protein monomers associate by coacervation and are cross-linked in vivo to form elastin macro-assemblies. We provide evidence for specific protein domain contact points between tropoelastin monomers during association by coacervation. The homobifunctional cross-linker bis(sulfosuccinimidyl) suberate served as a rapid reporter of adjacent lysines and preferentially exposed domains. Intact cross-linked peptide pairs were identified after protease digestion and high-resolution electrospray mass spectrometry followed by MS/MS sequencing. Mapping of the assigned sequences indicated that the region in the monomer spanning domains 19-25 was readily accessible to solvent and enriched in cross-linking. Domains 12 and 36 were also prevalent, where these two regions were not previously thought to play a major role in the formation of mature elastin. A specificity for particular lysines allowed for the construction of a model for the first close contacts between domains and the first detailed study of the cross-linking of tropoelastin.

Amino Acid Sequence↗

The hydrophobic domain 26 of human tropoelastin is unstructured in solution.

Elastin is the protein responsible for the elastic properties of vertebrate tissue. Very little is currently known about the structure of elastin or of its soluble precursor tropoelastin. We have used high-resolution solution NMR methods to probe the conformational preferences of a conserved hydrophobic region in tropoelastin, domain 26 (D26). Using a combination of homonuclear, 15N-separated and triple resonance experiments, we have obtained essentially full chemical shift assignments for D26 at 278K. An analysis of secondary chemical shift changes, as well as NOE and 15N relaxation data, leads us to conclude that this domain is essentially unstructured in solution and does not interact with intact tropoelastin. D26 does not display exposed hydrophobic clusters, as expected for a fully unfolded protein and commensurate with an absence of flexible structural motifs, as identified by lack of binding of the fluorescent probe 4,4'-dianilino-1,1'-binaphthyl-5,5'-disulfonic acid. Sedimentation equilibrium data establish that this domain is strictly monomeric in solution. NMR spectra recorded at 278 and 308K indicate that no significant structural changes occur for this domain over the temperature range 278-308K, in contrast to the characteristic coacervation behavior that is observed for the full-length protein.

Humans↗

Dissection of human tropoelastin: supramolecular organization of polypeptide sequences coded by particular exons.

Polypeptide sequences encoded by some exons of the human tropoelastin gene (EDP, elastin-derived peptide) have been analysed for their ability to coacervate and to self-assembly. The great majority of them were shown to form organized structures, but only a few were indeed able to coacervate. Negative staining and rotary shadowing transmission electron microscopy showed the polypeptides to adopt a variety of supramolecular organization, from filaments, as those typical of tropoelastin, to amyloid-like fibers. The results obtained gave significant insight to the possible roles played by specific polypeptide sequences of tropoelastin.

Amyloid↗

Banded fibers in tropoelastin coacervates at physiological temperatures.

Tropoelastin was purified from aortas of chicks grown on a beta-aminopropionitrile-containing diet. The preparation could be considered pure following the criteria of amino acid composition and gel electrophoresis. When aqueous solutions of tropoelastin (5 mg/ml) were warmed to 40 degrees C (physiological temperature for chicken) for 10 min, and observed by negative-staining electron microscopy, it revealed the presence of two kinds of ordered structures. One consisted of densely packed parallel filaments with a center-to-center distance of about 5 nm, and the other of banded fibers, 100-150 nm in diameter, with a cross periodicity of about 55 nm. In some areas the fibers appeared to be formed by lateral aggregation of 1.5-2-nm-thick microfilaments. The fibers were similar to those previously obtained with the synthetic polypentapeptide of elastin (Val-Pro-Gly-Val-Gly)n and degradation products of elastin at temperatures much higher than the physiological one. The results indicate that the property of tropoelastin to form ordered structures is intrinsic to some of the polypeptide sequences of the molecule and that hydrophobic forces are involved in the formation of the aggregates.

Amino Acids↗

Newly determined carboxy terminal sequences in tropoelastin: immunologic identification in insoluble elastin.

The carboxy terminal sequence of sheep, bovine and human tropoelastin (GFPGGACLGKA/SCGRKRK) has been inferred in earlier studies from sequencing of cloned complementary and genomic DNA. However, this putative carboxy terminal sequence was not found previously in peptides recovered from tryptic digests of tropoelastin. In order to determine whether the amino acid sequence described above is found in insoluble elastin, antibodies were raised against the chemically synthesized peptides with the appropriate sequences and the antibodies were shown to react with peptides derived from human, bovine, porcine, dog and hamster insoluble elastins. These results strongly suggest that the sequence (GFPGGACLGKA/SCGRKRK) at the carboxy terminus of tropoelastin is found in the elastins of many species.

Amino Acid Sequence↗

The gene coding for tropoelastin is represented as a single copy sequence in the haploid sheep genome.

The identity of the primary in vitro translation products of fetal sheep nuchal ligament elastin mRNA was confirmed as two distinct polypeptides of 63 Kdal and 65 Kdal in both rabbit reticulocyte and wheat germ extract cell-free translation systems. Both polypeptides were co-translationally processed by a microsomal membrane signal peptidase, with the removal of 20-25 amino acid residues. A single (3,5 kb) RNA species encodes both tropoelastin polypeptides. Restriction endonuclease mapping of sheep genomic DNA by hydridization with two radiolabelled genomic DNA fragments containing sequences coding for sheep tropoelastin (pSE1-1,3 and pSE1-0.7,) indicated the presence of a single elastin gene. The elastin gene copy number was further quantitated by comparison of hybridisation of pSE1-1.3 and pSE1-0.7 to slot-blots and Southern transfers of sheep genomic DNA and to standard curves constructed with each clone. These results clearly demonstrate that each of these sequences is represented only once per haploid genome, suggesting that the two tropoelastin polypeptides are products of a single elastin gene.

Amino Acid Sequence↗

Alterations of tropoelastin biosynthesis by elastase damage to smooth muscle cell matrices.

The effect of porcine pancreatic elastase (PPE)-induced proteolysis of the extracellular matrix on elastin biosynthesis in neonatal rat aortic smooth muscle cell cultures (NRSMC) was examined. The quantity of insoluble elastin remaining in the damaged cultures decreased with increasing amounts of enzyme used, however no significant cell damage was demonstrated. The accumulation of soluble elastin (tropoelastin) was examined in enzyme injured and control cultures by radiolabelling with [3H]-valine for 4 hours. The tropoelastin content of both the cell layer and media were less in injured cultures on the day of injury and up to one week later when compared to control cultures. In addition, experiments in which cultures were radiolabelled for 15 minutes demonstrated that the biosynthesis of tropoelastin was decreased in the enzyme treated cultures. Moreover, the incorporation of radiolabelled elastin into the insoluble matrix also decreased. Steady-state levels of elastin mRNA showed no differences between injured and control cultures, which suggested that elastin synthesis is affected at a translational or post-translational level.

Animals↗

Changes of cellular expression of mRNA for tropoelastin in the intraembryonic arterial vessels of developing chick revealed by in situ hybridization.

The pattern of expression of tropoelastin mRNA in the arterial tree of developing chick has been studied by in situ hybridization. Significant hybridization was noted in 5.5-day embryos in the region of the truncus arteriosus where aorta and pulmonary artery had newly separated. The activation of expression then propagated centrifugally and longitudinal gradients of mRNA decreasing from the heart to the periphery were established. For almost two-thirds of the embryonic period, the hybridization signal was rather uniform over the entire wall of the arterial vessels. Later, however, its distribution varied depending on the type of artery (elastic or muscular) and on the developmental stage. A radial gradient of tropoelastin mRNA expression decreasing in the in-out direction was formed in elastic arteries. This was first seen in the pulmonary artery (15-day chick embryos) and became detectable in the vessels of the general circulation only much later (2 weeks after hatching). The appearance of the radial gradient was followed by a general reduction of mRNA synthesis. In muscular arteries radial gradients were also established, but had, however, an opposite polarity; in small arteries a ring of hybridization was evident at the media-adventitia border. The results indicate that the expression of the tropoelastin gene in cells of the arterial wall is finely regulated, depending on the coordinates in the arterial tree, the type of artery and the organ supplied.

Animals↗

Basic fibroblast growth factor suppresses tropoelastin gene expression in cultured human periodontal fibroblasts.

Growth factors are known to play a major role in the regeneration of the periodontium. Basic fibroblast growth factor (bFGF) is a polypeptide growth factor considered to have a role in chemotaxis and mitogenesis of periodontal ligament (PDL) cells. The aim of this study was to assess the effect of bFGF on the transcription level of tropoelastin. As known controls, we assessed the transcription levels of collagen type I, collagen type II and the housekeeping gene, actin. Initially, PDL cells were cultured without bFGF for 3, 7 and 14 days. At each time point. total RNA was extracted and the levels of transcription were assessed by semiquantitative reverse transcription polymerase chain reaction (RT-PCR) assay. The results showed that tropoelastin mRNA is transcribed in PDL cells and its levels increased from minimal amounts by day 3 to maximal amounts by day 14 of culture. We further examined the effect of the addition of 10 ng/ml bFGF to the culture media by day 14. The results showed that the addition of bFGF suppressed the transcription level of tropoelastin. At that time, as expected, a decrease in collagen type I transcription level was shown, while the transcription level of collagen type III was not affected. The findings that elastin is transcribed in vitro by PDL cells, but only negligibly in vivo, imply mechanisms that downregulate or even shut down the expression of the elastin gene in the functioning PDL. Basic FGF might be one of the cytokines involved in control of elastin expression in vivo.

Actins↗