We employed cDNA microarrays representing 4000 distinct sequences to profile changes in gene expression in a rodent model of heart disease, namely, progression to heart failure after myocardial infarction. Differential gene expression in the left ventricle was examined at 4-week intervals over a 12-week period after coronary artery ligation in rats. Over this time course, insulin-like growth factor-binding protein-3 (IGFBP-3) was found to have a greater expression than in nondiseased tissues. We then employed quantitative real-time PCR to analyze gene expression in neonatal rat cardiac myocytes that had been treated with recombinantly expressed IGFBP-3 to examine a number of transcriptional responses designed to reflect the heart failure phenotype. The IGFBP-3 protein was shown to induce transcription of atrial natriuretic factor (ANF) and beta-myosin heavy chain (B-MHC). Analysis of conditioned media taken from IGFBP-3-treated cardiac myocyte cultures demonstrated an increase in ANF protein as well as in protein synthesis, as determined by metabolic incorporation of a radiolabeled amino acid. However, transcriptional changes of troponin-1, endothelin-1, or angiotensin-II by IGFBP-3 were not observed.
Heparin-binding epidermal growth factor-like growth factor (HB-EGF), a member of the epidermal growth factor (EGF) family, is expressed during inflammatory and pathological conditions. We have cloned the rat HB-EGF and followed the expression of HB-EGF in rat kidneys treated with anti- glomerular basement membrane (anti-GBM) antibody (Ab) to induce glomerulonephritis (GN). We observed glomerular HB-EGF mRNA and protein within 30 minutes of Ab administration and showed by in situ hybridization that glomerular HB-EGF mRNA expression was predominantly in mesangial and epithelial cells. Expression of HB-EGF correlated with the onset of decreased renal function in this model. To test the direct effect of HB-EGF on renal function, we infused the renal cortex with active rHB-EGF, prepared from transfected Drosophila melanogaster cells. This treatment induced a significant decrease in single nephron GFR (SNGFR), single nephron plasma flow, and glomerular ultrafiltration coefficient and an increase in the glomerular capillary hydrostatic pressure gradient. In addition, anti-HB-EGF Ab administered just before anti-GBM Ab blocked the fall in SNGFR and GFR at 90 minutes without any change in the glomerular histologic response. These studies suggest that HB-EGF expressed early in the anti-GBM Ab GN model contributes to the observed acute glomerular hemodynamic alterations.
Connective tissue growth factor (CTGF) is a cysteine-rich protein induced by transforming growth factor beta (TGF- beta) in connective tissue cells. CTGF can trigger many of the cellular processes underlying fibrosis, such as cell proliferation, adhesion, migration and the synthesis of extracellular matrix; however, its role in acute and chronic cardiac injury is not fully understood. Here, we show that TGF- beta is a specific inducer of CTGF expression in both cardiac fibroblasts and cardiac myocytes. The activity of a CTGF promoter-based reporter construct correlated with endogenous CTGF expression, suggesting that TGF- beta induces CTGF expression most likely by activating its promoter. Upregulation of CTGF coincided with an increase in fibronectin, collagen type I and plasminogen activator inhibitor-1 production. Forskolin, a stimulator of cyclic AMP, blocked TGF- beta induced CTGF expression and reduced the basal level of CTGF, whereas an inhibitor that blocks the MAP kinase signaling pathway (PD 98059) significantly enhanced TGF- beta induced CTGF expression. Furthermore, we found that both TGF- beta and CTGF mRNAs were significantly elevated in the left ventricles and septa of rat hearts 2-16 weeks following myocardial infarction. This correlated well with concomitant increases in fibronectin, and type I and type III collagen mRNA levels in these animal hearts. Significant upregulation of CTGF was also detected in human heart samples derived from patients diagnosed with cardiac ischemia. Based on these findings, we propose that CTGF is an important mediator of TGF- beta signaling in the heart and abnormal expression of this gene could be used as a diagnostic marker for cardiac fibrosis.
Expression of heparin-binding epidermal growth factor-like growth factor (HB-EGF) was studied in the adult ovariectomized mouse uterus in response to progesterone (P4) and/or 17 beta-estradiol (E2) using Northern blotting, in situ hybridization, and immunohistochemistry. A 2.5-kilobase transcript of HB-EGF messenger RNA (mRNA) was detected in total uterine RNA samples. Although low levels of this mRNA were detected in uterine samples of oil-treated ovariectomized mice (control), an injection of E2 promptly up-regulated the levels. The mRNA levels peaked at 2 h and returned to basal levels after 12 h. Injection of P4 alone did not influence the basal levels; however, coinjection of E2 with P4 caused a rapid, but transient, up-regulation of the mRNA. The levels peaked between 2-4 h and declined 6 h after the hormone injections. Coinjection of E2 with P4 after 1 day of P4 priming also resulted in peak levels of HB-EGF mRNA at 2 h; however, the levels were not sustained thereafter. Because P4 and E2 differentially regulate heterogeneous uterine cell types, in situ hybridization was performed to determine cell-specific expression of HB-EGF mRNA in the ovariectomized uterus before and after steroid treatments. In the oil-treated uterine sections, very low levels of autoradiographic signals were observed in the luminal epithelium. In contrast, an injection of E2 resulted in a marked accumulation of HB-EGF mRNA primarily in uterine epithelial cells within 2 h. Although specific hybridization signals could not be detected in any uterine cell types after P4 treatment, combined treatment with P4 and E2 resulted in an accumulation of HB-EGF mRNA in stromal cells. To determine whether uterine HB-EGF mRNA was translated, cellular distribution of HB-EGF protein was investigated by immunohistochemistry. In oil-treated uterine sections, an overall weak immunostaining was noted, whereas no staining could be detected in uterine sections after P4 treatment. In contrast, positive immunostaining was noted in epithelial cells after E2 treatment. Coinjection of P4 with E2 caused immunostaining in the stroma. These results are consistent with those of in situ hybridization. The present investigation establishes that in the adult ovariectomized mouse uterus, E2 regulates HB-EGF expression in the epithelium, whereas expression of HB-EGF in the stroma is regulated by P4 and E2.
Lysophosphatidylcholine is increased in the plasma of hypercholesterolemic patients, is a component of oxidatively modified low-density lipoprotein, and, as such, may play an important role in atherosclerosis. Here we demonstrate that in human monocytes, lysophosphatidylcholine increases the level of mRNA encoding the heparin-binding epidermal growth factor-like growth factor (HB-EGF), a potent smooth muscle mitogen. Lysophosphatidylcholine treatment also enhances the release of heparin-binding mitogenic activity by these cells in culture. The anti-inflammatory glucocorticoid dexamethasone inhibits the upregulation of HB-EGF mRNA induced by either lysophosphatidylcholine or bacterial lipopolysaccharide in cultured monocytes. However, the responses induced by lysophosphatidylcholine and by lipopolysaccharide differ in their kinetics. In addition, the response to lysophosphatidylcholine is resistant to the action of cycloheximide, whereas the response to lipopolysaccharide is not, suggesting that the activation mechanisms induced by these two stimuli are different. Since a nuclear run-on assay showed no effect of lysophosphatidylcholine on the transcription of the HB-EGF gene, we speculate that lysophosphatidylcholine may increase the level of HB-EGF mRNA by altering the processing or degradation of primary or mature transcripts. Lysophosphatidylcholine enhancement of monocyte production of HB-EGF may represent an important result of the interactions among oxidized low-density lipoprotein and monocyte-derived macrophages and may play a role in initiation of smooth muscle proliferation in atherogenesis.
Human MDA MB 231 cells were found to synthesize mostly the cell surface-associated precursor form of heparin-binding EGF-like growth factor (HB-EGF), a 27-kDa protein. Evidence for this form of HB-EGF included increased fluorescence intensity when cells were analyzed by flow cytometry using anti-HB-EGF antibodies, lack of HB-EGF in conditioned medium, and sensitivity to diphtheria toxin, for which HB-EGF is the receptor. Phorbol ester treatment of cells resulted, within 30 minutes, in loss of cell surface 27 kDA HB-EGF, lack of interaction with anti-HB-EGF antibodies, accumulation of active 21 kDa HB-EGF in conditioned medium, and the acquisition of diphtheria toxin resistance. It was concluded that cell surface-associated HB-EGF is the precursor of a bioactive growth factor, is biologically active as the receptor for diphtheria toxin, and is susceptible to rapid processing.
Clones were obtained that encode the rat and mouse forms of heparin-binding EGF-like growth factor (HB-EGF), a potent mitogen for smooth muscle cells, fibroblasts and keratinocytes that is proposed to be derived from a transmembrane precursor. Within the HB-EGF precursor sequences predicted from these cDNAs, the region corresponding to the secreted ("mature") factor was found to represent one of the least well conserved areas when compared to human or monkey HB-EGF (73 - 76% sequence identity). Regions of high sequence conservation included the proposed juxtamembrane and transmembrane domains, as well as a proposed heparin-binding region within the "mature" factor. Northern blotting experiments using the HB-EGF clones as probes revealed HB-EGF transcript expression in multiple tissues, particularly lung, skeletal muscle, brain, and heart.
Heparin-binding EGF-like growth factor (HB-EGF) is a recently identified potent mitogen for smooth muscle cells (SMC). To explore whether SMC can also synthesize HB-EGF, cultured fetal human vascular SMC (FHVSMC) were analyzed for the production of HB-EGF mRNA and active growth factor. It was found that in FHVSMC, HB-EGF has the characteristics of an early response gene in that (i) the addition of fresh 10% fetal calf serum to serum-starved FHVSMC led to a rapid and transient rise in HB-EGF mRNA levels with a maximal induction of 12-14-fold occurring within 2-4 h, (ii) the phorbol ester, 12-O-tetradecanoylphorbol-13-acetate (TPA) also elevated HB-EGF mRNA levels rapidly and transiently with a maximal induction of 7-8-fold occurring at 2-4 h, and (iii) cyclohexamide at 40 micrograms/ml markedly increased basal, serum-, and TPA-induced HB-EGF mRNA levels. In addition, HB-EGF mRNA levels were increased 7-11-fold by addition of either HB-EGF itself, platelet-derived growth factor, or basic fibroblast growth factor, all potent SMC mitogens. Besides synthesizing HB-EGF mRNA, FHVSMC were found to release into conditioned medium a bioactive HB-EGF-like protein that cross-reacted with anti-HB-EGF antibody.
Proliferation of smooth muscle cells (SMCs) in atherosclerosis may be modulated by several growth regulatory molecules. At least two mitogens for SMCs, platelet-derived growth factor (PDGF) A-chain and heparin-binding epidermal growth factor-like growth factor (HB-EGF), can be produced by SMCs themselves and may stimulate smooth muscle proliferation in an autocrine or paracrine fashion. We examined the effects of thrombin, which may be generated at the site of vascular injury during atherogenesis, and the potent anti-inflammatory glucocorticoid, dexamethasone (DEX), on the expression of the genes encoding these two growth factors. Since both PDGF A-chain and HB-EGF have affinity for heparin, we also examined the effect of thrombin and DEX on the release of heparin binding mitogenic activity from SMCs. Treatment of SMCs with thrombin resulted in increases both in the level of the PDGF-A and HB-EGF transcripts in the cells, as well as in released heparin-binding growth factor activity. DEX inhibits the thrombin-stimulated release of mitogenic activity in a dose-dependent manner. An enzyme-linked immunoadsorbent assay showed that DEX inhibits both constitutive and thrombin-stimulated release of PDGF-AA. DEX also decreases both constitutive and thrombin-stimulated mRNA levels for PDGF A-chain and HB-EGF and destabilizes the transcripts for both growth factors. A nuclear run-on assay revealed that DEX acts, in addition, to inhibit constitutive and thrombin-stimulated transcription of the PDGF A-chain and HB-EGF genes. Thus, these findings indicate that expression of PDGF A-chain and HB-EGF may be regulated by thrombin and glucocorticoid at the transcription level. Our results are consistent with the involvement of thrombin-induced growth factor expression in neointimal SMC proliferation and suggest the possibility that intimal proliferation may be attenuated by glucocorticoids.
Heparin-binding EGF-like growth factor (HB-EGF), but not EGF, binds to cell surface heparan sulfate proteoglycan (HSPG). This was demonstrated in (a) the binding of 125I-HB-EGF to mutant CHO cells deficient in HS production was diminished by 70% compared to wild-type CHO cells, (b) the binding of 125I-HB-EGF to CHO cells and bovine aortic smooth muscle cells (BASMC) was diminished 80% by heparitinase or chlorate treatment, and (c) 125I-EGF did not bind to CHO cells and its binding to BASMC was not diminished at all by heparitinase and only slightly by chlorate treatment. Accordingly, the role of HB-EGF interactions with HSPG in modulating bioactivity was examined. Heparitinase or chlorate treatment of BASMC diminished the ability of HB-EGF to stimulate BASMC migration by 60-80%. A similar inhibition of migration occurred when BASMC were treated with a synthetic peptide (P21) corresponding to the sequence of the putative heparin-binding domain of HB-EGF. As a control for BASMC viability, and for specificity, it was found that heparitinase and P21 did not inhibit at all and chlorate inhibited only slightly the stimulation of BASMC migration by PDGF AB. Since heparitinase, chlorate, and P21 treatment also diminished by 70-80% the cross-linking of 125I-HB-EGF to the EGF receptor, it was concluded that the interaction of HB-EGF, via its heparin-binding domain, with cell surface HSPG was essential for its optimal binding to the EGF receptor on BASMC and hence for its optimal ability to stimulate migration.
Heparin-binding epidermal growth factor-like growth factor (HB-EGF) is a newly described member of the epidermal growth factor (EGF) family that is mitogenic for BALB/c 3T3 cells, inhibits the binding of I-125-EGF to its receptor, and triggers autophosphorylation of the EGF receptor. HB-EGF was purified from the conditioned medium of U-937 cells using cation exchange, copper affinity, heparin affinity, and two rounds of C4 reversed phase liquid chromatography. The elution profile of the first round of C4 column chromatography contained four growth factor activity peaks with similar specific biological activities. N-terminal and tryptic fragment microsequencing demonstrated that these peaks contained different structural forms of the HB-EGF protein. Some of the differences in the various forms of HB-EGF were found to be due to N-terminal heterogeneity. Microsequencing of tryptic fragments indicated that the mature HB-EGF polypeptide can contain at least 86 of the 208 amino acids predicted by nucleotide sequence to be the HB-EGF precursor molecule. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis analysis indicated that the various forms of HB-EGF have apparent molecular masses of 19-23 kDa. Further analysis of the most predominant form of HB-EGF found in U-937 cell conditioned medium indicated that it has a pI of 7.2-7.8 and is O-glycosylated.
Vascular endothelial growth factor (VEGF) is an apparently endothelial cell-specific mitogen that is structurally related to platelet-derived growth factor. By Northern blot and protein analyses, we show that VEGF is produced by cultured vascular smooth muscle cells. Analysis of VEGF transcripts in these cells by polymerase chain reaction and cDNA cloning revealed three different forms of the VEGF coding region, as had been reported in HL60 cells. The three forms of the human VEGF protein chain predicted from these coding regions are 189, 165, and 121 amino acids in length. Comparison of cDNA nucleotide sequences with sequences derived from human VEGF genomic clones indicates that the VEGF gene is split among eight exons and that the various VEGF coding region forms arise from this gene by alternative splicing: the 165-amino-acid form of the protein is missing the residues encoded by exon 6, whereas the 121-amino-acid form is missing the residues encoded by exons 6 and 7. Analysis of the VEGF gene promoter region revealed a single major transcription start, which lies near a cluster of potential Sp1 factor binding sites. The promoter region also contains several potential binding sites for the transcription factors AP-1 and AP-2; consistent with the presence of these sites, Northern blot analysis demonstrated that the level of VEGF transcripts is elevated in cultured vascular smooth muscle cells after treatment with the phorbol ester 12-O-tetradecanoyl-phorbol-13-acetate.
Macrophage-like U-937 cells secrete a 22-kilodalton heparin-binding growth factor that is mitogenic for BALB-3T3 fibroblasts and smooth muscle cells, but not endothelial cells. The amino acid sequence predicted from complementary DNA clones indicates that the mitogen is a new member of the epidermal growth factor (EGF) family. This heparin-binding EGF-like growth factor (HB-EGF) binds to EGF receptors on A-431 epidermoid carcinoma cells and smooth muscle cells, but is a far more potent mitogen for smooth muscle cells than is EGF. HB-EGF is also expressed in cultured human macrophages and may be involved in macrophage-mediated cellular proliferation.
Annals of the New York Academy of SciencesVolume 638, Issue 1 p. 316-328 Preclinical Wound-Healing Studies with Recombinant Human Basic Fibroblast Growth Factor JOHN C. FIDDES, JOHN C. FIDDES California Biotechnology, Inc. 2450 Bayshore Parkway Mountain Kew, California 94043 Present affiliation: ImmuLogic Pharmaceutical Corporation, 855 California Avenue, Palo Alto, California 94304.Search for more papers by this authorPATRICIA A. HEBDA, PATRICIA A. HEBDA Department of Dermatology University of Pittsburgh School of Medicine Pittsburgh, Pennsylvania 15261Search for more papers by this authorPETER HAYWARD, PETER HAYWARD Division of Plastic Surgery and Wound Healing Laboratory University of Texas Medical Branch and Shriners Burns Institute Galveston, Texas 77550Search for more papers by this authorMARTIN C. ROBSON, MARTIN C. ROBSON Division of Plastic Surgery and Wound Healing Laboratory University of Texas Medical Branch and Shriners Burns Institute Galveston, Texas 77550Search for more papers by this authorJUDITH A. ABRAHAM, JUDITH A. ABRAHAM California Biotechnology, Inc. 2450 Bayshore Parkway Mountain Kew, California 94043Search for more papers by this authorCORINE K. KLINGBEIL, CORINE K. KLINGBEIL California Biotechnology, Inc. 2450 Bayshore Parkway Mountain Kew, California 94043Search for more papers by this author JOHN C. FIDDES, JOHN C. FIDDES California Biotechnology, Inc. 2450 Bayshore Parkway Mountain Kew, California 94043 Present affiliation: ImmuLogic Pharmaceutical Corporation, 855 California Avenue, Palo Alto, California 94304.Search for more papers by this authorPATRICIA A. HEBDA, PATRICIA A. HEBDA Department of Dermatology University of Pittsburgh School of Medicine Pittsburgh, Pennsylvania 15261Search for more papers by this authorPETER HAYWARD, PETER HAYWARD Division of Plastic Surgery and Wound Healing Laboratory University of Texas Medical Branch and Shriners Burns Institute Galveston, Texas 77550Search for more papers by this authorMARTIN C. ROBSON, MARTIN C. ROBSON Division of Plastic Surgery and Wound Healing Laboratory University of Texas Medical Branch and Shriners Burns Institute Galveston, Texas 77550Search for more papers by this authorJUDITH A. ABRAHAM, JUDITH A. ABRAHAM California Biotechnology, Inc. 2450 Bayshore Parkway Mountain Kew, California 94043Search for more papers by this authorCORINE K. KLINGBEIL, CORINE K. KLINGBEIL California Biotechnology, Inc. 2450 Bayshore Parkway Mountain Kew, California 94043Search for more papers by this author First published: December 1991 https://doi.org/10.1111/j.1749-6632.1991.tb49042.xCitations: 42 AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinked InRedditWechat Citing Literature Volume638, Issue1The Fibroblast Growth Factor FamilyDecember 1991Pages 316-328 RelatedInformation
Basic fibroblast growth factor (bFGF) has recently been shown to be a mitogen for keratinocytes. This observation has now been extended in a porcine model of epidermal wound healing. A single application of recombinant human bFGF given at the time of injury to healthy animals accelerated the rate of epithelialization by 20%; multiple applications gave no greater effect than the single application. Histologic analysis of biopsies of these partial-thickness wounds taken during bFGF-mediated healing supported the assessment of an enhanced rate of epithelialization and an earlier onset of dermal healing. Because no histologic abnormalities were observed, bFGF induced an acceleration of what appears to be the normal healing process.
Using applications of the polymerase chain reaction (PCR) technique, cDNA clones have been isolated encoding bovine vascular endothelial growth factor (VEGF), a mitogen with specificity for vascular endothelial cells. Analysis of the clones indicates that VEGF can exist in two forms, probably due to alternative RNA splicing. The amino acid sequences predicted from the clones also show that VEGF shares homologies of about 21% and 24% respectively with the A and B chains of human platelet-derived growth factor (PDGF), and has complete conservation of the eight cysteine residues found in both mature PDGF chains. The homology is not reflected in function, however, since the cell types responsive to VEGF are distinct from those responsive to homo- and heterodimers of the PDGF chains.