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The elastin associated glycoprotein gp115. Synthesis and secretion by chick cells in culture.

Synthesis of gp115 by aorta smooth muscle cells and tendon fibroblasts isolated from chick embryos was investigated. gp115 was specifically immunoprecipitated by both polyclonal and monoclonal antibodies from cell lysates and culture medium of matrix free cells metabolically labeled with [3H]leucine and [35S]methionine. The component of gp115 isolated from the cell lysate had an apparent Mr in reduced sodium dodecyl sulfate polyacrylamide gels lower (105,000) than the protein isolated from the culture medium (Mr = 115,000). In immunoblot experiments, the latter corresponded in apparent Mr to the form isolated from chick tissues. gp115 was glycosylated in vitro; it was labeled with [3H]fucose, and when cells were cultured and labeled in the presence of tunicamycin, a lower Mr form with an apparent Mr = 90,000 was immunoprecipitated in both the cell lysate and the culture medium. In pulse-chase experiments, the intracellular and the extracellular forms were clearly suggestive of a direct precursor-product relationship in the absence of intermediate forms. The kinetics of secretion appeared very slow compared with that of other proteins of the extracellular matrix investigated in the same system; about 50-70% of gp115 in the form of the Mr = 105,000 species was still cell-associated after 4 h, whereas the half-time for secretion of fibronectin, type VI collagen, and tropoelastin was about 60 min, 3 h, and 60 min, respectively. Newly synthesized and processed cell-associated gp115 migrated in both reduced and non-reduced gels as a monomer. On the contrary, the secreted protein was present in the culture medium as large aggregates that did not enter the gel in the absence of reducing agents.

Animals↗

Monocyte adhesion to subendothelial components.

Human monocytes have been shown to penetrate the endothelial layer of large blood vessels and to adhere to the subendothelial basement membrane. To determine the active components of this process, we have studied the ability of monocytes to adhere to isolated components of the subendothelial matrix. Using a quantitative dot-blot adhesion assay, we find that monocytes adhere preferentially to immobilized laminin and elastin. The monocytes adhere less well to fibronectin and bind poorly or not at all to collagen types I and IV, or to heparan sulfate. Monocyte binding to elastin requires an intact, crosslinked molecule as no binding was observed to soluble, acid-alcohol elastin extracts, to pepsin or elastase digests of elastin, to tropoelastin monomer, or to desmosine/isodesmosine crosslinks. Similar binding profiles to elastin, laminin, and fibronectin were seen with the established human leukocyte cell line U937. The promyelocytic cell line HL60 adhered equally well to laminin but showed slightly reduced adhesion to elastin when compared with the fresh monocytes or U937 cells. Freshly isolated human erythrocytes did not demonstrate significant adhesion to fibronectin, laminin, or elastin.

Arteriosclerosis↗

Characterization and partial purification of a neutral protease from the serum of a patient with autosomal recessive pulmonary emphysema and cutis laxa.

Serum enzyme activity in 81 patients with various medical and dermatologic problems was determined with succinyl-(L-alanyl)3-p-nitroanilide as substrate. Values exceeding the limit of mean +/- 3 SD in healthy controls were detected in 16 patients. The highest activity, greater than 80 times the mean in the controls, was found in a 20-year-old patient with severe pulmonary emphysema and cutis laxa. The enzyme activity in the patient's serum was enhanced by Ca2+ and was inhibited by metal chelators but not by serine protease inhibitors. The pH optimum of the enzyme was 7.6. The enzyme was partially purified by gel filtration chromatography. Enzyme activity eluted in two major peaks with apparent molecular weights of greater than 10(7) daltons (peak I) and approximately 2.5 X 10(5) daltons (peak II). When compared with the elution patterns in the patient's mother and a healthy control, the elevated enzyme activity in the patient's serum was associated with peak I. The partially purified enzyme in peak I was not complexed with alpha 2-macroglobulin. The peak I enzyme was capable of degrading tropoelastin and a synthetic dinitrophenyl peptide at a glycyl-isoleucyl sequence, but not native or denatured collagen.

Adult↗

Increased expression of a 68-kDa protein in the corpus cavernosum of some men with erectile dysfunction.

Erectile dysfunction (ED) may be caused by abnormalities of intracavernous penile structures. In order to investigate whether specific proteins could be identified that might be related to ED, the composition of structural proteins in cavernous tissues of patients with ED was compared to that of normal cavernous tissues by gel electrophoresis. Increased expression of a 68-kDa nonionic detergent extraction-resistant protein was demonstrated in tissues of more than half of the patients with vasculogenic ED, whereas only one out of nine normal cavernous tissues showed the same phenomenon. Increased expression was not related to a specific type of vascular insufficiency, aging, or diabetic constituency. Histochemical and immunochemical studies revealed that the increased amount of the 68-kDa protein is not merely the result of a surplus of nervous, smooth muscle, or elastic tissues. Furthermore, antibodies specific for 68-kDa neurofilament and 62- to 67.5-kDa tropoelastin did not recognize the 68-kDa protein on Western blots. The possibility that the 68-kDa protein may help us understand the etiology of certain cases of erectile dysfunction is discussed.

Antibodies, Monoclonal↗

Gene expression and vascular smooth muscle cell phenotype.

Vascular smooth muscle cells (VSMCs) are involved in a number of vascular disease processes including hypertension and atherosclerosis. However, their role in the pathogenesis of vascular disease is largely undetermined. We and others have studied rat VSMCs in cell culture as a model for VSMC behaviour in vivo. In recent experiments we have applied molecular biological techniques to compare genes expressed by normal contractile VSMCs with those expressed by VSMCs which have undergone several passages in cell culture. Using differential screening of a cDNA library derived from cultured rat aortic VSMC RNA we identified seven genes which are preferentially expressed by contractile VSMCs; alpha-smooth muscle actin, gamma-smooth muscle actin, calponin, phospholamban, tropoelastin, SM22 alpha and CHIP28, and two which are preferentially expressed in passaged cells which have down-regulated their contractile proteins; osteopontin (OP) and matrix Gla protein (MGP). In situ hybridization studies have confirmed that calponin and SM22 alpha, are highly expressed by medial VSMCs in human coronary arteries with little or no expression in the atheromatous intima whilst the converse is true for OP and MGP. Studies by ourselves and others have confirmed that OP is a marker for proliferating rat VSMCs both in vitro and in vivo. However, the evidence that OP is expressed by proliferating human VSMCs is less convincing.

Animals↗

Extracellular matrix modifications in rat tissues of different ages. Correlations between elastin and collagen type I mRNA expression and lysyl-oxidase activity.

We used a rat model to correlate age, matrix gene expression and lysyl oxidase activity in three connective tissues, skin, aorta and lung. By in situ hybridization, we showed that intense collagen type I and elastin mRNA expression were limited to a brief postnatal period. Although there were some organ-specific differences, the mRNA abundance for these two scleroproteins drastically diminished with time. Thus, the majority of mesenchymal cells in young (60 days) and old (720 days) animals, appeared to be in a quiescent state, consistent with the slow turnover of these two scleroproteins. We also measured the activity of lysyl oxidase, an enzyme which plays a crucial role in the formation of crosslinks in both procollagen and tropoelastin molecules. In all the organs investigated, we observed a tissue-dependent pattern of activity. Moreover in this study we focused on the importance of gene matrix expression in evaluating lysyl oxidase activity of aging tissues.

Aging↗

Smooth muscle cell expression of extracellular matrix genes after arterial injury.

Accumulation of extracellular matrix (ECM) after arterial injury is an important event in the development of intimal thickening and is modulated by heparin. To investigate the regulation of matrix protein expression, we have analyzed messenger RNA levels by Northern blotting for various ECM proteins in the rat carotid artery balloon injury model. RNA was extracted from normal arteries and from intima-medial preparations at 2 days, 1 week, 2 weeks, and 4 weeks after balloon injury of arteries in animals receiving either saline or heparin infusion. Transcripts for the heparan sulfate proteoglycans perlecan, syndecan, and ryudocan; the chondroitin sulfate proteoglycan versican; the dermatan sulfate proteoglycan biglycan; type I procollagen; and tropoelastin all were increased on Northern blots beginning at 1 week after injury. By in situ hybridization, the transcripts for elastin nd biglycan were primarily localized to smooth muscle cells in the intima and were diminished by heparin in proportion to the decrease in intimal mass. Other matrix genes (perlecan, ryudocan) were expressed in the intima and media and were not affected by heparin. The results support the conclusion that ECM gene expression is a relatively late event in the response of the carotid artery, and that some of the genes are expressed only in the intima whereas others are expressed in both the intima and media.

Animals↗

[Ultrastructural immunohistochemical localization of elastin in the human trabecular meshwork].

An electron microscopy study on the distribution of elastin in the trabecular meshwork of normal human eyes and in that of eyes with primary open angle glaucoma (POAG) was done using a protein-A gold immunohistochemical method with antiserum to either alpha-elastin or tropoelastin. Four types of elastic fibers were found to have elastin: (1) elastic-like fibers without the sheath, (2) fibers surrounded with a sheath of periodic structure, (3) fibers surrounded with fine granular-like material, and (4) connecting fibrils. No individual differences were observed in the labeling for these four types of elastic fibers. Antigenic sites against elastin of the elastic fibers were observed mainly in the low electron density amorphous elements. In the subendothelial layer of Schlemm's canal of the eyes with POAG, a marked increase of elastin was noted within the area containing fine fibrillar-like material. This phenomenon did not occur in age-matched normal eyes. The results suggest that elastin plays an important role in the development of POAG.

Elastin↗

Melanoma-mediated dissolution of extracellular matrix: contribution of urokinase-dependent and metalloproteinase-dependent proteolytic pathways.

Constitutive overexpression of both urokinase and matrix metalloproteinase (MMP) activity is frequently observed in individual malignant tumors. In this study we describe the combined contribution of these distinct enzyme systems to the invasive phenotype of a highly metastatic human melanoma cell line (M24met). M24met cells were found to secrete a spectrum of MMPs, including interstitial collagenase, type IV collagenases (M(r) 92,000 and 72,000 progelatinases), and stromelysin. Urokinase, but not tissue-type plasminogen activator, was detected in M24met-conditioned media and on cell surfaces. The contribution of these enzymes to extracellular matrix dissolution was determined by exploiting specific inhibitors, namely tissue inhibitor of the metalloproteinases-2 and plasminogen activator inhibitor-2. Due to the coexpression of urokinase and MMP-dependent activity, M24met cells were observed to degrade multiple components of the extracellular matrix and to significantly degrade both interstitial and basement membrane matrices. Urokinase-dependent removal of matrix glycoprotein was observed to precede MMP-dependent collagenolysis as a prerequisite rate-limiting step. We present evidence which suggests that this temporal relationship is imposed by the structural architecture of the matrix such that matrix glycoprotein serves to protect associated collagen from MMP-dependent degradation. In addition to mediating significant collagenolysis, MMP activity was further implicated in the dissolution of matrix tropoelastin. Urokinase/plasmin activity was not found to be required for MMP-zymogen activation.

Amino Acid Sequence↗

Biological roles of the non-integrin elastin/laminin receptor.

The 67-kDa protein identical to the enzymatically inactive spliced variant of beta-galactosidase is a major component of the non-integrin cell surface receptor expressed on fibroblasts, smooth muscle cells, chondroblasts, leukocytes, and certain cancer cell types. It recognizes several non-identical hydrophobic domains on elastin, laminin, and type IV collagen, provided they form a similar secondary conformation. The 67-kDa protein is not a transmembrane molecule, but immobilizes on the cell surface by an association with two other proteins, the 61-kDa neuraminidase and the 55-kDa 'protective protein'. The 67-kDa protein binds to matrix ligands in a calcium independent manner and only in the absence of galactosugars. Binding of these carbohydrate-bearing moieties causes such conformational changes of the 67-kDa protein that it loses the ability to bind its principal matrix ligands and separates from the cell surface. Galactosugars which inactivate this unique cell surface receptor may therefore modulate cell-matrix interactions, especially in such processes as SMC migration during vascular thickening, tumor cell metastasis, or tissue infiltration by the leukocytes. In elastin-producing cells, the 67-kDa protein associates with tropoelastin and serves as a molecular chaperone which facilitates its intracellular transport and extracellular assembly.

Animals↗

Elastin receptor and cell-matrix interactions in heart transplant-associated arteriosclerosis.

Vascular cells, as well as monocytes, neutrophils, and lymphocytes which may infiltrate vascular walls and tissues express a multifunctional 67 kD protein which also serves as a subunit of the cell surface "elastin receptor". This protein differs structurally and functionally from other matrix adhesion molecules. Unlike the integrins or cadherins, it is not a transmembrane molecule, but can be immobilized on the cell surface by association with two other membrane-anchored proteins. Once expressed on the cell surface, it may mediate cell-matrix interaction in a calcium-independent manner. Unlike most integrins, which recognize the linear sequence on the matrix ligands (RGD), it recognizes the secondary structure of the matrix macromolecules and binds to several non identical domains on different matrix components, as long as they form the appropriate hydrophobic conformation. Similarly to the transmembrane selectins, the 67 kD protein has lectin-like properties with the galactosugars' binding specificity. However, binding of galactosugar-bearing ligands interrupts its contacts with matrix proteins and displaces the 67 kD protein from the cell surface. Moreover, the 67 kD protein also serves as an intracellular chaperone which facilitates secretion of tropoelastin and assembly of elastic fibers. In this review I will address the role of this 67 kD protein in mechanisms of mutual interaction between vascular smooth muscle cells, infiltrating leukocytes, and several components of extracellular matrix during the development of heart-transplant associated arteriosclerosis.

Animals↗

Halofuginone, a specific collagen type I inhibitor, reduces anastomotic intimal hyperplasia.

OBJECTIVE: To determine if halofuginone hydrobromide, a specific type I collagen inhibitor, could prevent intimal hyperplasia at a vascular anastomosis. DESIGN: Intimal hyperplasia is characterized by smooth muscle cell proliferation and extracellular matrix accumulation. Halofuginone was used to block collagen production and smooth muscle cell proliferation in cell cultures and in a rabbit model of an end-to-end anastomosis of the right common carotid artery. Animals were fed a nontoxic dose of halofuginone. Eighteen rabbits were fed the inhibitor in a randomized blinded fashion and were examined after 4 weeks by harvesting the arteries after perfusion fixation at physiologic pressures. RESULTS: Halofuginone inhibited smooth muscle cell proliferation in vitro and had no effect on cell viability. Morphometric quantification verified that halofuginone treatment significantly attenuated anastomotic intimal thickness. CONCLUSION: Oral administration of halofuginone inhibits intimal hyperplasia at vascular anastomoses. Intimal hyperplasia inhibition by halofuginone may be a therapeutic option for preventing arterial stenosis in vascular surgery.

Anastomosis, Surgical↗

Impaired elastic matrix development in the great arteries after ablation of the cardiac neural crest.

The cells that form the aorticopulmonary septum in the avian embryo have been shown to be similar to the cells that form the walls of the great vessels in two ways: both are derived from the cardiac neural crest and both are able to synthesize an elastogenic matrix in the early embryo. Because of these similarities, and because ablation of the cardiac neural crest causes congenital defects of the outflow tract that are related to failure of proper septation, it was hypothesized that such an ablation also would cause the walls of the great vessels to be defective. The purpose of this study was to compare the elastic matrix in the mediae of the great vessels of normal embryos with those from which the cardiac neural crest had been ablated. The results show that the elastic matrix in the great vessels of the experimental embryos was impaired 1) in the rate of downstream propagation of the initiation of elastogenesis among younger embryos, incubation days 4-8 and 2) in the spatial configuration of the elastic matrix among the older embryos, incubation days 16-20. These results may provide a biological explanation for the elastin defect that affects the pulmonary artery of many patients with cyanotic congenital heart defects.

Aldehydes↗

Characterization of peptides resulting from digestion of human skin elastin with elastase.

Several pathological disorders are associated with abnormalities in elastic fibers, which are mainly composed of elastin. Understanding the biochemical basis of such disorders requires information about the primary structure of elastin. Since the acquisition of structural information for elastin is hampered by its extreme insolubility in water or any organic solvent, in this study, human skin elastin was digested with elastase to produce water-soluble peptides. Tandem mass spectrometry (MS/MS) experiments were performed using conventional electrospray ionization (ESI) and nano-ESI techniques coupled with ion trap and quadrupole time-of-flight (qTOF) mass analyzers, respectively. The peptides were identified from the fragment spectra using database searching and/or de novo sequencing. The cleavage sites of the enzyme and, for the first time, the extent and location of proline hydroxylation in human skin elastin were determined. A total of 117 peptides were identified with sequence coverage of 58.8%. It has been observed that 25% of proline residues in the sequenced region are hydroxylated. Elastase cleaves predominantly at the C-terminals of the amino acids Gly, Val, Leu, Ala, and Ile, and to a lesser extent at Phe, Pro, Glu, and Arg. Our results confirm a previous report that human skin elastin lacks amino acid sequences expressed by exon 26A.

Amino Acid Sequence↗

Expression and accumulation of lysyl oxidase, elastin, and type I procollagen in human Menkes and mottled mouse fibroblasts.

Menkes syndrome in humans is an X-linked disorder characterized in part by abnormal copper transport, cellular copper sequestration, and defective crosslinking of collagen and elastin. A decrease in the functional activity of lysyl oxidase, a cuproenzyme, is thought in part to be responsible for the decreased crosslinking of collagen and elastin. It has also been suggested that low levels of lysyl oxidase activity may occur secondarily to disturbances in intracellular copper translocation and consequently impaired incorporation of copper into lysyl oxidase. Herein, we examine the expression and accumulation of selected extracellular matrix proteins in fibroblasts from a Menkes patient, as well as fibroblasts from the tortoiseshell (MoTo/y) mouse. The MoTo mutation is an allele of the mottled (Mo) locus, which is considered to be a murine analog of the human Menkes locus. In both Menkes and tortoiseshell fibroblasts, levels of lysyl oxidase mRNA transcripts were less than 15% of levels for corresponding controls. The level of elastin mRNA transcripts was also markedly lower in both cell lines in comparison to controls. In contrast, the levels of procollagen Type I mRNA were similar or enhanced in Menkes and MoTo/y fibroblasts compared to their respective controls. Consequently, we conclude that the connective tissue defects associated with Menkes syndrome and those occurring in mottled mouse mutants involve more than abnormal copper utilization in the formation of lysyl oxidase holoenzyme. Based on the present studies in cell culture, the production of essential enzymes and matrix proteins, such as lysyl oxidase and elastin, appear to be altered at the level of transcription or mRNA turnover.

Animals↗

Minoxidil stimulates elastin expression in aortic smooth muscle cells.

Minoxidil was found to inhibit the proliferation of smooth muscle cells in the proliferating phase, but not in the quiescent phase. Treatment of proliferating or quiescent cells with minoxidil resulted in a dose- and time-dependent stimulation of elastin synthesis specifically. Maximum stimulation (fourfold) occurred in cells treated with 1 mM minoxidil for 48 h. The stimulation of elastin synthesis was accompanied by a proportional increase in elastin mRNA level, and it was partially prevented by a K+ channel blocker (tetraethylammonium) and completely prevented by high K+ salt (0.1 M). Minoxidil had no significant effect on the extent of prolyl hydroxylation in newly synthesized elastin. These results indicate that minoxidil stimulates elastin synthesis at a pretranslational level by a mechanism unrelated to cell proliferation but one that may involve K+ efflux. As a pharmacological agent capable of stimulating elastin expression, minoxidil would be a useful drug for the treatment of abnormal elastin metabolism.

Actins↗