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P Bornstein

Publications and source records attributed to P Bornstein.

At least 109 records · Page 6Linked to original sources

Location and partial characterization of the heparin-binding fragment of platelet thrombospondin.

Purified platelet thrombospondin (TS) was subjected to proteolysis with a number of proteases including factors IXa, Xa, thrombin, elastase, trypsin, and chymotrypsin. All enzymes yielded fragments of TS which bound to heparin-Sepharose. Only chymotrypsin cleavage produced a single species of heparin-binding fragment, as analyzed by SDS-PAGE. This fragment had a chain molecular weight of 28,000, and contained no interchain disulfide bonds. Amino acid sequence analysis of the heparin-binding fragment and of TS revealed a single sequence, indicating that the fragment constitutes the amino-terminal domain of TS and that the three chains in TS are identical in this region.

Amino Acid Sequence↗

Characterization of the precursor form of type VI collagen.

Well characterized monospecific antisera against pepsin-extracted bovine type VI collagen were used to identify and characterize the intact form of type VI collagen. In immunoblotting experiments the antisera reacted with the pepsin-resistant fragments of the alpha 1(VI) and alpha 3(VI) chains, but not with the fragment of the alpha 2(VI) chain. Extracts obtained from uterus and aorta with 6 M guanidine HCl contained two immunoreactive polypeptides of Mr = 190,000 and 180,000 based on globular protein standards. Cleavage of extracts with pepsin generated the previously characterized pepsin-resistant fragments of alpha 1(VI) and alpha 3(VI), indicating that the higher molecular weight polypeptides represent the intact parent chains, alpha 1(VI) and alpha 3(VI). Digestion of extracts with bacterial collagenase released an Mr = 100,000 noncollagenous fragment from the alpha 1(VI) chain. Thus, intact type VI collagen in tissues contains a relatively short triple helical domain and at least one very large globular domain which is sensitive to pepsin but resistant to collagenase digestion. Immunoblotting revealed a polypeptide of Mr = 240,000, which we suggest represents the pro-alpha 1(VI) chain, in the culture medium of bovine fibroblasts. Bands intermediate in molecular weight between 240,000 and 190,000 were identified in cell layers. These findings establish type VI collagen as a protein with very large nontriple helical domains, a property that undoubtedly plays an important role in its function.

Amino Acids↗

Characterization of a novel serum albumin-binding glycoprotein secreted by endothelial cells in culture.

A unique and heretofore undescribed glycoprotein with unusual properties has been purified and characterized from the culture medium of endothelial cells. This protein is synthesized constitutively by bovine, porcine, and human endothelial cells, by vascular smooth muscle cells, and by fibroblasts from dermis and ligament. It is also a biosynthetic product of some murine malignant and/or transformed cell lines but was not uniformly observed in cells derived from human neoplasms. The glycoprotein exhibited an apparent molecular weight by sodium dodecyl sulfate-polyacrylamide gel electrophoresis of approximately 39,000 before reduction, and of approximately 43,000 (43K protein) in the presence of dithiothreitol. Amino acid analysis revealed high levels of potentially acidic residues (Asx + Glx = 303 residues/1000) and of cysteine (35 residues/1000). Limited proteolysis indicated that both disulfide bonds and mannosylated sites were distributed throughout the protein chain. Neither phosphate nor sulfate was incorporated into the 43K protein during biosynthetic labeling of endothelial cells. In addition, the 43K protein did not bind to heparin, thrombin, gelatin, or fibronectin and displayed no affinity for [3H]diisopropyl fluorophosphate. In contrast, the 43K protein demonstrated a high affinity binding to bovine serum albumin which was dissociable only by sodium dodecyl sulfate. A complete lack of identity with several prominent serum and platelet proteins and with other mesenchymal cell products was shown by one- and two-dimensional peptide mapping, affinity chromatography, and immunological studies. Immunofluorescence staining of endothelial cells showed a granular distribution for the 43K protein that was typical of a secreted protein. The function of this apparently novel glycoprotein is presently not known. Its synthesis by normal mesenchymal cells and by malignant or transformed cells of both ectodermal and endodermal origin suggests a general role in cell function that is independent of transformation.

Animals↗

Regulation of thrombospondin secretion by cells in culture.

Thrombospondin (TS), a 450,000 molecular weight glycoprotein, is released from alpha-granules of thrombin-activated platelets and is secreted and incorporated into the extracellular matrix by several cell types in culture. We have examined the effects of cell density and transformation on the production of TS in cell culture. The levels of TS, per cell, in the culture medium of endothelial cells, smooth muscle cells, and fibroblasts were greater at lower cell densities; in fibroblasts the levels of two other extracellular matrix proteins, fibronectin and collagen, were unaffected by cell density. Our evidence indicates that the higher levels of TS in the culture medium, determined for lower-density cells, were achieved by an increased secretion of the protein rather than by a reduction in degradation or incorporation into the extracellular matrix. TS production by normal and transformed WI-38 fibroblasts was the same, although the fibronectin level in the culture medium of the transformed cells was substantially decreased. These findings suggest that the production of TS by cells in culture is regulated in a different fashion from that of fibronectin or collagen.

Cell Count↗

Interactions of thrombospondin with extracellular matrix proteins: selective binding to type V collagen.

Thrombospondin (TS), a protein first described in platelets, was recently shown to be synthesized and secreted by endothelial cells, fibroblasts, and smooth muscle cells. The presence of TS in the extracellular matrix of cultured cells has prompted us to examine the associations of this protein with matrix macromolecules. Interactions of TS with both matrix and serum proteins were tested using an enzyme-linked immunosorbent assay. With this assay we assessed the binding of TS in solution to proteins adsorbed to polystyrene microtiter plates. Among collagens, platelet TS bound to type V but not to types I, III, or IV. This selective interaction was confirmed in experiments using proteins linked to cyanogen bromide-activated Sepharose. TS released from platelets in response to thrombin activation, as well as that secreted by endothelial cells in culture, bound to type V but not to type I collagen-Sepharose. No binding was observed to denatured type V collagen-Sepharose. The binding region for type V collagen was located in a chymotrypsin-produced fragment of TS with chains of Mr = 70,000, after reduction. Interactions of TS with a number of other proteins, including fibronectin, fibrinogen, and laminin, could be demonstrated using the enzyme-linked immunosorbent assay technique but the interpretation of these findings is difficult since comparable binding to protein-Sepharose was not always observed. Our findings suggest that both the extravascular distribution and function of TS in vivo may involve an interaction with type V collagen.

Animals↗

Heparin and related glycosaminoglycans modulate the secretory phenotype of vascular smooth muscle cells.

Previous studies have established a role for heparin-like molecules in the regulation of vascular smooth muscle cell growth and migration in vitro. We present data indicating that the secretory phenotype of cultured rat aortic smooth muscle cells can be modulated by exogenous soluble heparin, heparan sulfate, and dermatan sulfate glycosaminoglycans. In the presence of these molecules, smooth muscle cells secrete increased amounts of two noncollagenous proteins (Mr 37,000 and 39,000). This effect can be mimicked by iota carrageenan and dextran sulfate but not by hyaluronic acid, chondroitin-4-sulfate, or chondroitin-6-sulfate. The inductive effect of heparin was dose-dependent and occurred rapidly (within 1 h) with maximal induction (three- to fivefold over controls) occurring after 10-12 h of treatment. The effect was rapidly reversible (within 1 h) and was not altered in the presence of actinomycin D, suggesting regulation at a posttranscriptional level. These data indicate that the biosynthetic expression of specific smooth muscle cell proteins may be determined, at least in part, by components of the smooth muscle cell extracellular matrix.

Animals↗

Type VIII collagen. Synthesis by normal and malignant cells in culture.

A novel protein belonging to the collagen family was originally purified from the culture medium of bovine aortic endothelial cells. This endothelial collagen, termed EC, was also found to comprise the major collagen type synthesized by a malignant astrocytoma-derived cell line. Examination of several cell strains derived from normal tissues revealed that EC was not synthesized by all endothelial cells; it was absent from human endothelial cells cultured from both large and small vessels but was present in bovine cells, including those from capillaries. Human foreskin fibroblasts also secreted this protein in small amounts relative to interstitial procollagens, but it was not detected in two human epithelial cell strains. EC was consistently observed in human cell lines derived from several carcinomas and comprised the major collagenous protein secreted by cells cultured from a Ewing's sarcoma. In contrast, malignant or transformed murine cells did not produce EC in vitro. In addition, the protein was not apparent after metabolic labeling of human cells from an epidermoid carcinoma, a fibrosarcoma, and two Wilms' tumors. EC-like proteins were isolated from cell culture medium by ion-exchange chromatography and were compared by sodium dodecyl sulfate-polyacrylamide gel electrophoresis after cleavage with vertebrate collagenase, mast cell protease, and CNBr. In addition to the homologies displayed by comparative peptide mapping, these collagens exhibited other unusual properties that collectively were characteristic of EC from endothelial and astrocytoma-derived cells. These studies support the existence of a novel class of collagenous proteins that are secreted by a wide variety of cells derived from both normal and neoplastic tissues. This class of proteins, which manifests several unusual structural characteristics, has been designated type VIII collagen.

Animals↗

Biosynthetic and structural properties of endothelial cell type VIII collagen.

A highly unusual endothelial cell collagen (Sage, H., Pritzl, P., and Bornstein, P., (1980) Biochemistry 19, 5747-5755) has been characterized in greater detail. Pulse-chase experiments with bovine aortic endothelial cells revealed two nondisulfide-bonded collagens, of apparent chain Mr = 177,000 and 125,000, with an estimated synthesis and secretion time of 75 min. Stepwise, quantitative processing to stable lower molecular weight forms as described for type I procollagen was not observed. Endothelial collagen was secreted over a temperature range of 24-37 degrees C and, prior to heat denaturation, did not display affinity for a gelatin-binding fragment of fibronectin coupled to Sepharose. The presence of a pepsin-resistant domain (Mr = 50,000) in both the soluble and cell layer-associated forms of this protein was shown by ion exchange chromatography and sodium dodecyl sulfate-polyacrylamide gel electrophoresis. Endothelial collagen was cleaved by vertebrate collagenase into several discrete fragments that differed in molecular weight from the characteristic alpha A and alpha B fragments generated from the interstitial collagens. Nontriple helical domains corresponding to the NH2- and COOH-terminal propeptides of other procollagen types were not found after incubation of endothelial collagen with bacterial collagenase. Additional evidence for the lack of extended noncollagenous sequences was provided by studies with mast cell proteases, which convert native procollagen to collagen but are unreactive toward native interstitial collagens. Endothelial collagen was not cleaved by these enzymes at 37 degrees C, but, as observed for interstitial collagen alpha chains, required prior heating at elevated temperatures for cleavage to occur. In view of this unique set of structural characteristics, and a distribution that is not restricted to the endothelium, we have designated this protein as type VIII collagen.

Animals↗

Sulfated proteoglycans synthesized by vascular endothelial cells in culture.

Metabolically labeled proteoglycans were isolated both from the culture medium and from the cell layer of cultured bovine aortic endothelial cells. Proteoglycans were fractionated by sequential gel filtration on Sepharose CL-4B, DEAE-cellulose column chromatography, and CsCl density gradient centrifugation. The culture medium contained two distinct proteoglycans: a large proteoglycan (Kav = 0.07) of low buoyant density containing heparan sulfate side chains (Mr congruent to 36,000) and a smaller proteoglycan (Kav = 0.45) of high density containing chondroitin sulfate chains (Mr congruent to 20,000). The chondroitin sulfate proteoglycan fraction contained a small amount (less than 10%) of dermatan sulfate. A very similar low density heparan sulfate proteoglycan was extracted from the cell layer with 2% sodium dodecyl sulfate in the presence of enzyme inhibitors. In addition, there was a high density proteoglycan of small size (Kav = 0.43) containing heparan sulfate side chains (Mr congruent to 20,000) in the cell layer. Analyses of proteoglycans synthesized by cultured human umbilical vein endothelial cells gave similar results, except that these cells produced more dermatan sulfate and unidentified oversulfated chondroitin sulfate chains. Morphologically atypical endothelial cells contained reduced levels of the large heparan sulfate proteoglycan. Both indirect immunofluorescence and direct immunoelectron microscopy revealed that the basement membrane-like matrix under monolayers of bovine endothelial cells reacted with antibodies against the basement membrane proteoglycan isolated from a basement membrane-producing tumor. By electron microscopy, this material was shown to consist of a fine filamentous meshwork containing discrete 10-20-nm diameter ruthenium red positive granules resembling those present in basement membranes of intact arteries.

Animals↗

Effects of Zn2+ ions on protein phosphorylation in epithelial cell membranes.

The regulation of protein phosphorylation by Zn2+ ions and by other divalent cations was studied in membrane vesicles from a normal mouse epithelial cell line, MMC-E (Mus musculus castaneous). Four major phosphoacceptor polypeptides were found in these membranes. Micromolar concentrations of Zn2+ ions inhibited the phosphorylation of the epidermal growth factor (EGF) receptor and of threonine residues in a 47,000-dalton polypeptide. In contrast, two polypeptides with molecular weights of 54,000 and 57,000 showed increased phosphorylation, mainly of serine residues, in the p.esence of Zn2+ ions. These results were not obtained using similar concentrations of other divalent cations and were apparently not due to an effect of Zn2+ ions on phosphoprotein phosphatases. Thus, the effects of Zn2+ ions on protein phosphorylation in membrane vesicles are complex and are not restricted to an inhibition of a single protein phosphatase or kinase.

Animals↗

Fetal calf ligament fibroblasts in culture secrete a low molecular weight collagen with a unique resistance to proteolytic degradation.

A highly unusual collagen was secreted by fibroblasts cultured from 150- and 270-d-old fetal calf nuchal ligaments. Purification revealed that this protein (which may be synthesized in a higher molecular weight form) was precipitated at unusually high concentrations of ammonium sulfate and was also eluted from DEAE-cellulose at greater salt concentrations than were types I and III procollagens. On SDS PAGE, the collagenous protein exhibited an Mr of approximately 12,750 that was not altered in the presence of reducing agent. The low molecular weight collagen (FCL-1) was sensitive to bacterial collagenase and had a [3H]glycine content comparable to that found in type I procollagen, although the [3H]Hyp to [3H]Pro ratio was 0.43. FCL-1 was not cleaved by human skin collagenase, mast cell protease, trypsin, Staphylococcal V8 protease, or proteinase K at 37 degrees C. The collagen was susceptible to trypsin, but not to V8 protease, only after heating at 80 degrees C for 30 min. Preliminary structural studies indicate that FCL-1 was resistant to cleavage by CNBr but exhibited limited proteolysis with pepsin. Both 150- and 270-d-old fibroblasts produced comparable levels of interstitial (types I and III) procollagens, which comprised approximately 70% of the total protein secreted into the culture medium. However, 270-d-old (term) fibroblasts secreted approximately 50% more FCL-1, as percent of total culture medium protein, in comparison to the cells from the earlier gestational stage. This collagen may therefore play a role in the development of the nuchal ligament.

Animals↗

Transforming growth factor and epidermal growth factor stimulate the phosphorylation of a synthetic, tyrosine-containing peptide in a similar manner.

A partially purified preparation of a transforming growth factor (TGF) obtained from serum-free growth medium conditioned by a human melanoma tumor line was found to stimulate the phosphorylation of a synthetic tyrosine-containing peptide. The sequence of the peptide is related to that of the known site of tyrosine phosphorylation in the Rous sarcoma virus-encoded transforming protein, pp60src. In A431 membranes, the characteristics of TGF- and epidermal growth factor (EGF)-stimulated peptide phosphorylation are nearly identical. The effects of the two growth factors are not additive, suggesting that TGF and EGF stimulate peptide phosphorylation through the same EGF receptor system. This conclusion is supported by the finding that both TGF and EGF stimulate peptide phosphorylation in wild type Swiss 3T3 cell membranes, but neither factor is effective in stimulating peptide phosphorylation in membranes prepared from EGF receptor-deficient NR6 3T3 cells.

Animals↗

Partial purification and characterization of phosphotyrosyl-protein phosphatase from Ehrlich ascites tumor cells.

We have previously described a phosphotyrosylprotein phosphatase in membrane vesicles from human epidermoid carcinoma A431 cells which is inhibited by micromolar concentration of Zn2+ and is insensitive to ethylenediaminetetraacetic acid (EDTA) and NaF [Brautigan, D. L., Bornstein, P., & Gallis, B. (1981) J. Biol. Chem. 256, 6519-6522]. Here we present the identification and partial purification of a similar enzyme from lysates of Ehrlich ascites tumor cells. the enzyme was purified by using diethylaminoethyl-Sephadex, Zn2+ affinity, and Sephadex G-75 chromatography. During purification, the phosphatase was separated into at least three fractions, all of which exhibited very similar properties and an apparent molecular weight of 40 000 upon gel filtration. The enzyme dephosphorylated phosphotyrosine (P-Tyr)-containing carboxymethylated and succinylated (CM-SC) phosphorylase with an apparent Km of 0.8 microM, as well as P-Tyr containing casein and epidermal growth factor (EGF) receptor kinase, but did not dephosphorylate P-Ser-phosphorylase. The phosphatase was inhibited by Zn2+ at micromolar concentrations (K0.5 with EGF receptor kinase = 5 X 10(-6) M; with CM-SC phosphorylase = 3.3 X 10(-5) M) but not by millimolar concentrations of EDTA and NaF. No inhibition was seen with 1 mM tetramisole, a specific inhibitor of alkaline phosphatases. P-Tyr inhibited the enzyme by 50% at 0.4 X 10(-3) M, while Tyr, Pi, PPi, and p-nitrophenyl phosphate, an excellent substrate for alkaline phosphatases and structurally very similar to P-Tyr, exerted partial inhibition at concentrations above 10(-3) M. The pH optimum was found to be 6.5-7, depending on the substrate used. Very little activity was seen below pH 5 and above pH 8.5. These properties clearly distinguish this enzyme from alkaline phosphatases, as well as the neutral and acidic protein phosphatases so far described, and therefore define it as a new enzyme of the phosphatase family--a phosphotyrosyl-protein phosphatase.

Alkaline Phosphatase↗

Biosynthesis of type V procollagen by A204, a human rhabdomyosarcoma cell line.

The A204 cell line, derived from a human rhabdomyosarcoma, was studied in culture for its capacity to synthesize collagen types and other extracellular matrix proteins. The cells synthesized and secreted into the culture medium collagenous proteins with apparent molecular weights of 220,000 and 150,000. These were identified as the pro alpha 1 and pro alpha 2 chains of type V collagen by immunoprecipitation and by peptide mapping. The pro alpha 1(V) chain was made in excess of a 2:1 ratio for pro alpha 1(V) to pro alpha 2(V), and a fraction of the pro alpha 1(V) chains together with all of the pro alpha 2(V) chains participated in intermolecular disulfide bonding. The chains were extensively glycosylated at hydroxylysyl residues in ascorbate-supplemented cultures. A fraction of the secreted pro alpha 1(V) chains was processed to the p alpha 1(V) form, but further processing in the culture medium was very slow and the type V collagen molecules deposits in the extracellular matrix apparently retained large non-triple helical domains. Since the A204 cell line does not produce other collagen types, it may prove useful in further studies of the biosynthesis of type V procollagen.

Cell Line↗

Inhibition of protein synthesis in vitro by procollagen-derived fragments is associated with changes in protein phosphorylation.

The NH2-terminal extension fragment (Col 1) of the pro alpha 1(I) procollagen chain selectively inhibits the translation of procollagen mRNA in a reticulocyte lysate system, whereas the reduced and alkylated fragment (AE-Col 1) and its proteolytically derived peptides inhibit the translation of all mRNAs (Hörlein, D., McPherson, J., Goh, S. H., and Bornstein, P. (1981) Proc. Natl. Acad. Sci. U.S.A. 78, 6163-6167). The latter inhibitory function, which occurs at the level of polypeptide chain initiation, has now been shown to be associated with an increase in phosphorylation of an Mr = 94,000 protein. The time span required for observation of changes in phosphorylation and in inhibition of protein synthesis is similar. Since AE-Col 1 can serve as a substrate for casein kinase II, we suggest that phosphorylation of AE-Col 1 and its derivatives may be required for their activity.

Animals↗