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Synergistic induction of in vivo angiogenesis by the combination of insulin-like growth factor-II and epidermal growth factor.

Tumor growth is accelerated by induction of angiogenesis regulated by many cytokines and growth factors. In a tumor mass, various angiogenic factors and their receptors are simultaneously expressed and the overlapped expressions of various factors may contribute to the aggressive growth of tumor. However, the possible combined effect and mechanism of growth factors involved in angiogenesis are still under investigated. Insulin-like growth factor-II (IGF-II) has been identified as an angiogenic factor and highly expressed in solid tumors. Here we demonstrated that another angiogenic factor, epidermal growth factor (EGF), synergistically induced the angiogenic activity when co-treated with IGF-II in vivo. We performed mouse Matrigel plug assay. Cotreatment of IGF-II and EGF resulted in a significant induction of functional new vessels in mouse Matrigel plug more than additive amount of vessels induced by each growth factor. However, synergism of these two factors was not found in in vitro angiogenic assays, i.e., in migration and proliferation assays. The metalloproteinase-2 (MMP-2) protein level was enhanced by co-treatment of IGF-II and EGF, similar to that of individual treatment of them or PMA or bFGF. EGF down-regulated hypoxia-induced IGF-II binding protein-3 (IGFBP-3), which may contribute to the enhancement of free IGF-II accessibility to its receptors in vivo. Moreover, the combination of IGF-II with EGF significantly induced bFGF mRNA level, a potent angiogenic molecule, which may also contribute to synergistic effect in vivo. These results suggest that IGF-II and EGF may synergistically cooperate to induce angiogenesis in vivo by indirect mechanisms, i.e., synergistic induction of another angiogenic factor and modulation of IGF-II's bioavailability.

Angiogenesis Inducing Agents↗

Insulin-like growth factor-II: possible local growth factor in pheochromocytoma.

Pheochromocytomas, neural crest tumors, express an abundance of insulin-like growth factor-II (IGF-II). To assess further the potential for IGF-II to play an autocrine role for these tumors, we measured 1) IGF-II content by RRA in 7 pheochromocytomas and peripheral blood in these patients, 2) IGF-II receptors by Western analysis, and 3) characterized the tumor binding proteins by ligand blot studies. IGF-II levels in the tumors varied from 2.8-41 micrograms/g. Chromatography revealed that 60% of the peptide eluted as a large mol wt form of IGF-II (8.7-10 kDa); the remainder coeluted with mature peptide (7.5 kDa). This was in contrast to IGF-II levels in normal adrenal tissue (0.225 +/- 0.005 micrograms/g) or another neural crest-derived tumor, medullary carcinoma of the thyroid (0.63 +/- 0.02 micrograms/g). Serum IGF-II levels in the 7 patients with pheochromocytoma (720 +/- 71 ng/mL) were similar to those in 35 normal controls (762 +/- 69 ng/mL). Radiolabeled IGF-II (9 +/- 1%) and IGF-I (20 +/- 2%) bound specifically to pheochromocytoma membranes. Western analysis of these membranes using a specific antiserum directed against the type II receptor demonstrated a band at 210 kDa. Affinity cross-linking studies with [125I]IGF-I demonstrated a specific band at 140 kDa. Ligand blot analysis was performed on the void volume pools from the Sephadex G-75 column and demonstrated bands at about 30 and 25 kDa. In conclusion, these data 1) confirm that pheochromocytomas have increased levels of IGF-II; 2) demonstrate that despite high IGF-II concentrations in the tumors, peripheral levels are not elevated, suggesting that very little tumoral IGF-II is released into the circulation, unlike catecholamines; 3) demonstrate the presence of IGF-II and IGF-I receptors; 4) describe binding protein species similar to those present in other tissues. Thus, the presence of high levels of IGF-II and both type I and type II receptors suggests that IGF II may act through both receptors to alter tumor growth.

Adolescent↗

Characterization of the stimulatory action of insulin on insulin-like growth factor II binding to rat adipose cells. Differences in the mechanism of insulin action on insulin-like growth factor II receptors and glucose transporters.

Insulin is known to increase the number of cell surface insulin-like growth factor II (IGF-II) receptors in isolated rat adipose cells through a subcellular redistribution mechanism similar to that for the glucose transporter. The effects of insulin on these two processes, therefore, have now been directly compared in the same cell preparations. 1) Insulin increases the steady state number of cell surface IGF-II receptors by 7-13-fold without affecting receptor affinity; however, insulin stimulates glucose transport activity by 25-40-fold. 2) The insulin concentration required for half-maximal stimulation of cell surface IGF-II receptor number is approximately 30% lower than that for the stimulation of glucose transport activity. 3) The half-time for the achievement of insulin's maximal effect at 37 degrees C is much shorter for IGF-II receptor number (approximately 0.8 min) than for glucose transport activity (approximately 2.6 min). 4) Reversal of insulin's action at 37 degrees C occurs more rapidly for cell surface IGF-II receptors (t1/2 congruent to 2.9 min) than for glucose transport activity (t1/2 congruent to 4.9 min). 5) When the relative subcellular distribution of IGF-II receptors is examined in basal cells, less than 10% of the receptors are localized to the plasma membrane fraction indicating that most of the receptors, like glucose transporters, are localized to an intracellular compartment. However, in response to insulin, the number of plasma membrane IGF-II receptors increases only approximately 1.4-fold while the number of glucose transporters increases approximately 4.5-fold. Thus, while the stimulatory actions of insulin on cell surface IGF-II receptors and glucose transport activity are qualitatively similar, marked quantitative differences suggest that the subcellular cycling of these two integral membrane proteins occurs by distinct processes.

3-O-Methylglucose↗

Differential dissociation kinetics explain the binding preference of insulin-like growth factor binding protein-6 for insulin-like growth factor-II over insulin-like growth factor-I.

Insulin-like growth factor binding protein-6 binds insulin-like growth factor-II with a marked preferential affinity over insulin-like growth factor-I. The kinetic basis of this binding preference was studied using surface plasmon resonance. Binding of insulin-like growth factor-I and insulin-like growth factor-II to immobilized insulin-like growth factor binding protein-6 fitted a two-site binding kinetic model. Insulin-like growth factor-I and insulin-like growth factor-II association rates were similar whereas the dissociation rate was approximately 60-fold lower for insulin-like growth factor-II, resulting in a higher equilibrium binding affinity for insulin-like growth factor-II. The equilibrium binding affinities of a series of insulin-like growth factor-II mutants were also explained by differential dissociation kinetics. O-glycosylation had a small effect on the association kinetics of insulin-like growth factor binding protein-6. The insulin-like growth factor binding properties of insulin-like growth factor binding protein-6 are explained by differential dissociation kinetics.

Binding, Competitive↗

Direct demonstration of rapid insulin-like growth factor II Receptor internalization and recycling in rat adipocytes. Insulin stimulates 125I-insulin-like growth factor II degradation by modulating the IGF-II receptor recycling process.

The photoactive insulin-like growth factor (IGF)-II analogue 4-azidobenzoyl-125I-IGF-II was synthesized and used to label specifically and covalently the Mr = 250,000 Type II IGF receptor. When rat adipocytes are irradiated after a 10-min incubation with 4-azidobenzoyl-125I-IGF-II at 10 degrees C and immediately homogenized, most of the labeled IGF-II receptors are associated with the plasma membrane fraction, indicating that receptors accessible to the labeling reagent at low temperature are on the cell surface. However, when the photolabeled cells are incubated at 37 degrees C for various times before homogenization, labeled IGF-II receptors are rapidly internalized with a half-time of 3.5 min as evidenced by a loss from the plasma membrane fraction and a concomitant appearance in the low density microsome fraction. The low density microsomes were previously shown to contain intracellular membranes (Oka, Y., and Czech, M.P. (1984) J. Biol. Chem. 259, 8125-8133). The steady state level of cell surface IGF-II receptors in the presence or absence of IGF-II, measured by the binding of anti-IGF-II receptor antibody to cells, remains constant under these conditions, demonstrating that IGF-II receptors rapidly recycle back to the cell surface at the same rate as receptor internalization. Using the above methodology, it is shown that acute insulin action: 1) increases the steady state number of cell surface IGF-II receptors; 2) increases the number of ligand-bound IGF-II receptors that are internalized per unit of time, as evidenced by a large increase in the photolabeling of intracellular membrane IGF-II receptors when cells are incubated at 37 degrees C with insulin and 4-azidobenzoyl-125I-IGF-II prior to photoactivation; and 3) increases the rate of cellular 125I-IGF-II degradation by a process that is blocked by anti-IGF-II receptor antibody. The results indicate that the action of insulin to elevate the steady state number of cell surface IGF-II receptors leads to an increased internalization flux of IGF-II-bound receptors, mediating increased IGF-II uptake and degradation.

Adipose Tissue↗

Activation of osteoblast insulin-like growth factor-II/cation-independent mannose-6-phosphate receptors by specific phosphorylated sugars and antibodies induce insulin-like growth factor-II effects.

The phosphorylated monosaccharide, mannose-6-phosphate (M6P), causes a dose-dependent stimulation of alkaline phosphatase production by osteoblasts. The concentrations tested ranged from 0.1 to 30 mM. A maximal effect was reproducibly seen at 10-30 mM, and represented a 30% stimulation over control cells. Glucose-6-phosphate and fructose-1-phosphate also stimulated osteoblast alkaline phosphatase production, but not to the same extent as M6P. Sugar residues such as mannose, mannose-1-phosphate, and fructose-6-phosphate had no effect. The stimulatory effect of M6P is similar to that seen with insulin-like growth factor II(IGF-II). However, increasing doses of IGF-II did not further stimulate or add to the effect of 10 mM M6P. These data indicate that the mechanism for the transduction of the stimulatory signal may be similar for both IGF-II and M6P. They do not address, however, the possibility of separate or similar binding sites for the two agents. A specific polyclonal antibody to the IGF-II/cation-independent mannose-6-phosphate receptor (IGF-II/CI-MPR) elicits the same effects as M6P and IGF-II in these bone cells. Non-immune serum used as a control does not have any effect. These results suggest that activation of the osteoblast IGF-II/CI-MPR by either M6P or a specific antibody can evoke a biological response similar to that observed with IGF-II.

Alkaline Phosphatase↗

Biosynthesis of rat insulin-like growth factor II. I. Immunochemical demonstration of a approximately 20-kilodalton biosynthetic precursor of rat insulin-like growth factor II in metabolically labeled BRL-3A rat liver cells.

BRL-3A rat liver cells synthesize mature 7484-dalton rat insulin-like growth factor II (rIGF-II) as a approximately 22-kDa precursor, presumably prepro-rIGF-II. In the present study, we have biosynthetically labeled intact BRL-3A cells with [35S]cysteine and immunoprecipitated cell lysates and media with antisera to rIGF-II. A approximately 20-kDa protein was identified in immunoprecipitates of cell lysates having properties consistent with pro-rIGF-II. The approximately 20-kDa protein is precipitated by immune sera but not by nonimmune serum. Its immunoprecipitation is specifically inhibited by unlabeled rIGF-II but not by insulin. It is not precipitated from labeled lysates of a subclone of BRL-3A cells (BRL-3A2) that does not synthesize rIGF-II. The approximately 20-kDa protein is rapidly labeled intracellularly (10 min) but is not detected in BRL-3A media. In pulse-chase experiments, radioactivity in the approximately 20-kDa protein disappears during the chase and appears, at later times, in specifically immunoprecipitated approximately 19-, approximately 10-, approximately 8-, and approximately 7-kDa proteins in media and, to a limited extent, intracellularly. A protein with electrophoretic mobility identical to that of the approximately 20-kDa protein observed in cell lysates is immunoprecipitated from 35S-proteins whose synthesis is directed by BRL-3A RNA in a reticulocyte lysate cell-free translation system supplemented with microsomal membranes, and presumably arises by cotranslational removal of the signal peptide from approximately 22-kDa prepro-rIGF-II. Processing of the approximately 20-kDa protein in intact BRL-3A cells to intermediate and mature rIGF-II species appears to occur at the time of secretion and/or shortly thereafter, with the different forms appearing at approximately the same time.

Animals↗

Insulin-like growth factor-II/mannose 6-phosphate receptor is incapable of activating GTP-binding proteins in response to mannose 6-phosphate, but capable in response to insulin-like growth factor-II.

We previously reported that insulin-like growth factor-II (IGF-II) stimulates both calcium influx and DNA synthesis by acting on the cell surface IGF-II receptor (IGF-IIR) in a manner sensitive to pertussis toxin, and recently demonstrated that IGF-II binding to the IGF-IIR gives rise to functional changes of purified Gi-2, a GTP-binding protein (G protein) in phospholipid vesicles as well as in broken cell membranes. On the other hand, a variety of evidence indicates that the IGF-IIR binds mannose 6-phosphate (man6P) with high affinity probably at a receptor extracellular region different from the IGF-II-binding site. In the present study, we examined whether man6P stimulation of the IGF-IIR evokes the activation of Gi-2 in phospholipid vesicles and in native cell membranes. In vesicles reconstituted with purified rat IGF-IIR and bovine Gi-2, man6P did not stimulate GDP dissociation from Gi-2 even in concentrations up to 10 mM, while IGF-II dose-dependently facilitated GDP release from Gi-2 with an EC50 of 6 nM. The stimulatory effect of IGF-II was not observed in vesicles reconstituted with Gi-2 alone. In addition, also in a native environment of cell membranes, man6P did not affect an endogenous 40-kDa protein or exogenously added purified Gi-2 as assessed with reduction of the pertussis toxin-catalyzed ADP-ribosylation. These results indicate that the IGF-IIR does not activate Gi-like proteins upon man6P binding in phospholipid vesicles and in native cellular membranes, whereas the receptor activates Gi-like proteins upon IGF-II binding in both environments. Thus, we postulate that the IGF-IIR dissimilarly responds to the two structurally unrelated ligands, IGF-II and man6P, in the linkage function with G proteins.

Animals↗

Effects of insulin, insulin-like growth factor-II and nerve growth factor on neurite outgrowth in cultured human neuroblastoma cells.

The identification of biologically important and chemically well-defined substances that can promote axon and dendrite formation would improve present understanding of the development of the nervous system. Physiological concentrations of insulin and insulin-like growth factor-II (IGF-II) reversibly enhanced neurite outgrowth (NTO) in human neuroblastoma SH-SY5Y cells cultured in media with and without serum. Nerve growth factor (NGF), in contrast, did not enhance NTO in serum-free media. Furthermore, anti-NGF antiserum inhibited NGF but not insulin-enhanced NTO. Insulin increased [3H]leucine and [3H]uridine uptake. These increases, together with increased NTO, were inhibited by cycloheximide and actinomycin D, respectively. The inhibition of NTO by cycloheximide was reversible. Human neuroblastoma cell lines that were responsive by NTO to NGF were also responsive to insulin, with the exception of line CHP-270. Moreover, cell lines unresponsive by NTO to NGF, and to tumor promoters, were uniformly unresponsive to insulin. These findings suggest that there are common defects in distal sites, because specific NGF and tumor promotor receptors are present in these lines. Insulin increased [3H]thymidine uptake in SH-SY5Y and CHP-100 cells. However, the enhancement of NTO by insulin and IGF-II in SH-SY5Y cells was independent of the cellular proliferation rate. Our results, together with the observations of others, suggest that insulin and IGF-II may modulate NTO in the nervous system.

Axons↗

Insulin-like growth factor binding protein-1 at the maternal-fetal interface and insulin-like growth factor-I, insulin-like growth factor-II, and insulin-like growth factor binding protein-1 in the circulation of women with severe preeclampsia.

OBJECTIVES: Preeclampsia is characterized by maternal hypertension, proteinuria, edema, and shallow placental invasion. Insulin-like growth factor binding protein-1, abundant in maternal decidua, is believed to play a role in limiting trophoblast invasiveness. In this study we addressed the hypothesis that this binding protein is aberrantly expressed in preeclampsia. We also investigated circulating levels of insulin-like growth factor-I and insulin-like growth factor-II in subjects with severe preeclampsia compared with controls. STUDY DESIGN: Insulin-like growth factor binding protein-1 was investigated by immunohistochemistry at the maternal-fetal interface of eight pregnancies complicated by severe preeclampsia and six controls between 21 and 34 weeks of gestation. Cell types were identified with use of cell-specific markers. Circulating levels of insulin-like growth factor binding protein-1, insulin-like growth factor-I, and insulin-like growth factor-II in 16 patients with severe preeclampsia and 29 controls at the same gestational age were determined by an immunoradiometric assay and correlated with clinical parameters. Data were analyzed by t test and Pearson's method. RESULTS: Insulin-like growth factor binding protein-1 was highly expressed on syncytiotrophoblasts, cytotrophoblasts, and decidual cells but not on placental fibroblasts. Immunostaining was greater at the maternal-fetal interface in severe preeclamptic patients compared with controls. Circulating insulin-like growth factor binding protein-1 levels in subjects with severe preeclampsia were 428.3 +/- 85.9 ng/ml compared with 76.6 +/- 11.8 in controls (p = 0.0007). Circulating insulin-like growth factor-I levels were 80.9 +/- 17.2 ng/ml compared with 179.4 +/- 28.2 ng/ml in controls (p = 0.0001). In contrast, insulin-like growth factor-II levels were not significantly different in the two groups. In subjects with severe preeclampsia insulin-like growth factor binding protein-1 levels correlated with diastolic blood pressure (r = 0.498, p 0.049) and aspartate transcarbamylase (0.621, p = 0.010). CONCLUSIONS: The abundance of insulin-like growth factor binding protein-1 at the maternal-fetal interface in severely preeclamptic pregnancies suggests that the binding protein may participate in the pathogenesis of the shallow placental invasion observed in this disorder. Low circulating insulin-like growth factor-I and elevated insulin-like growth factor binding protein-1 levels may contribute to restricted placental and therefore fetal growth.

Adolescent↗

[Multigenic thrombophilia: genetic anomaly of factor II and mutation of factor V Leiden. Study in a French family].

BACKGROUND: A genetic variation of the prothrombin (factor II) gene, a G to A transition at nucleotide position 20210, was recently found in patients with familial thrombophilia (predisposition to venous thrombosis). It seems to be frequent in patients with the factor V Leiden mutation. We report a family with the factor V Leiden and/or the genetic variation of prothrombin in 3 members. CASE REPORT: The patient had repeated episodes of deep vein thromboses starting at the age of 30 during the 4th pregnancy. She is a heterozygous carrier of both the factor V Leiden nutation and the prothrombin mutation 20210 A. She has 4 asymptomatic children, aged 28 to 32 and 3 of them have been explored: one son has the prothrombin mutation, one daughter the factor V Leiden and one has none of them. DISCUSSION: This case report illustrates the polygenic nature of thrombophilia which may explain the heterogeneity of clinical expression observed in isolated congenital abnormalities, especially in factor V Leiden mutation.

Chromosome Aberrations↗

Association of the protein C promoter CG haplotype and the factor II G20210A mutation is a risk factor for cerebral venous thrombosis.

The factor II G20210A mutation and estrogen treatment are described as risk factors for cerebral venous thrombosis (CVT). We evaluated these known risk factors in a population of CVT patients and investigated the role of a combination of two polymorphisms in the promoter of the protein C gene (PC promoter CG haplotype), newly described as risk factors for deep venous thrombosis. A retrospective population of 26 CVT patients was compared with a control group of 84 healthy volunteers. After a multivariate analysis, we confirmed that the factor II G20210A mutation is an independent risk factor for CVT with odds ratio 4.7 (95% confidence interval, 2.83--75.3). We demonstrated that the CVT risk is increased when this mutation is associated either with the PC promoter CG haplotype (odds ratio=19.8; 95% confidence interval, 2.1--186.5) or, in females, with an estrogen treatment (odds ratio=24; 95% confidence interval, 2.26--127.3). In this work, the association of the factor II G20210A mutation and the PC promoter CG haplotype or estrogen treatment seems to be a particular risk for CVT.

Adolescent↗

Insulin and insulin-like growth factor II permit nerve growth factor binding and the neurite formation response in cultured human neuroblastoma cells.

In serum-free medium, SH-SY5Y human neuroblastoma cells specifically and reversibly lost the capacity to bind 125I-labeled nerve growth factor (NGF) to the high-affinity sites (slow sites) and to respond by neurite outgrowth, unless physiological concentrations of insulin or insulin-like growth factor II were present. In serum-containing medium, anti-insulin antiserum decreased the neurite formation response to NGF, and insulin supplementation increased the number of available NGF slow sites. The low-affinity NGF fast sites are absent from SH-SY5Y cells and did not emerge on treatment with insulin. Insulin potentiated the induction of neurites by NGF in rat pheochromocytoma PC12 cells also. These results implicate a wider role for insulin and its homologs in the nervous system.

Animals↗

Expression of insulin-like growth factor II in spontaneously immortalized rat mesothelial and spontaneous mesothelioma cells: a potential autocrine role of insulin-like growth factor II.

Insulin-like growth factors (IGFs) are polypeptides that play an important role in cellular proliferation and differentiation. The present study examines the role of IGFs in the growth of mesothelial cells. Cell lines derived from normal rat mesothelium as well as lines derived from spontaneous rat mesotheliomas were found to express RNA transcripts for IGF-II. In contrast, cell lines derived from asbestos-induced rat mesotheliomas did not express this growth factor. All cell lines expressed receptors for IGF-I and IGF-II, as well as insulin receptors. Coexpression of IGF-II and its cognate receptor suggested that IGF-II was acting as an autocrine growth factor in the spontaneously immortalized cells and the cells derived from the spontaneous tumors. The biological activity of IGF-II secreted by the cell lines into conditioned medium could be neutralized using an IGF-II-specific antibody. Growth was inhibited in a dose-dependent manner; at the highest antibody concentration used (100 micrograms anti-IGF-II/ml), cell growth was decreased to 47% of control values. This inhibition was partially reversible by treatment of the cultures with IGF-II (91% of the control). These data suggest that IGF-II expression may be involved in the spontaneous alteration of rat mesothelial cells and may function as an autocrine or paracrine growth factor to modulate the growth of these cells in vitro and in vivo. Ubiquitous expression of IGF-II by cells that have not been exposed to asbestos and the lack of IGF-II expression by asbestos-transformed cells suggest that the mechanisms of changes in growth factor expression differ in mesothelial cells transformed by different pathways.

Animals↗

Insulin-like growth factor-II is an autocrine survival factor for differentiating myoblasts.

Recent studies indicate that insulin-like growth factor-II (IGF-II) acts as an autocrine differentiation factor for skeletal myoblasts in culture. IGF-II mRNA and protein are induced as early events in muscle differentiation, and the rate and extent of IGF-II secretion correlate with both biochemical and morphological differentiation. Here we show that IGF-II also functions as an essential survival factor during the transition from proliferating to differentiating myoblasts. Stably transfected C2 muscle cell lines were established in which a mouse IGF-II cDNA was expressed in the antisense orientation relative to the constitutively active Moloney sarcoma virus promoter. IGF-II antisense cells proliferated normally in growth medium containing 20% serum but underwent rapid death when placed in low serum differentiation medium. Death was accompanied by characteristic markers of apoptosis with more than 90% of cells showing DNA fragmentation within 12-16 h. Myoblast death was prevented by IGF-I, des [1-3] IGF-I, IGF-II, and insulin with a dose potency consistent with activation of the IGF-I receptor; death also could be blocked by the protein synthesis inhibitor, cycloheximide. Exogenous IGFs additionally stimulated passage through a single cell cycle and subsequently induced terminal differentiation. Cell survival and cell cycle progression also were enhanced by fibroblast growth factor-2 and platelet-derived growth factor-bb, but these peptides did not promote differentiation. Our results define a novel system for studying apoptotic cell death and its prevention by growth factors, underscore the importance of IGF action in minimizing inappropriate cell death, and indicate that shared signal transduction pathways may mediate myoblast survival in vitro.

Animals↗

Factor II G20210A and factor V G1691A gene mutations and peripheral arterial occlusive disease.

BACKGROUND: G to A mutations at positions 20210 of the prothrombin gene (F2) and 1691 of the factor V gene (F5) are established risk factors for venous thrombosis. Several factors associated with coagulation and/or fibrinolysis have been associated with arterial occlusive disease, but the role of F2 20210A and F5 1691A for arterial occlusive disease remains unclear. OBJECTIVE: To investigate if F2 20210A and F5 1691A are associated with peripheral arterial occlusive disease (PAOD). METHODS AND RESULTS: We analyzed the prevalence of F2 20210A and F5 1691A alleles in 336 patients with documented PAOD at Fontaine stage II-IV and 300 controls without vascular disease. Allele frequencies in patients and controls were 0.013 and 0.022 for F2 20210A, and 0.042 and 0.045 for F5 1691, respectively, both differences being not statistically significant. CONCLUSION: Our data suggest that mutations F2 G20210A and F5 G1691A are not associated with PAOD.

Aged↗

[Insulin-like growth factor-II and basic fibroblast growth factor affect periodontal ligament cells expressing osteoprotegerin in vitro].

OBJECTIVE: This study was carried out to investigate the effects of insulin-like growth factor-II (IGF-II) and basic fibroblast growth factor (bFGF) on osteoprotegerin (OPG) secretion of periodontal ligament cells (PDLCs). METHODS: Healthy human premolars extracted for orthodontic reasons from 12-14 years old donators were obtained, and periodontal tissues were collected and cultured to obtain PDL cells. Primary or first passage PDLCs were cloned by means of limited dilutions. PDLCs with osteoblastic phenotypes were characterized as follows: Alkaline phosphatase activity, collagen III production and bone-like nodules formation. IGF-II and bFGF were added into culture media and their effects on PDLCs proliferation and OPG secretion were observed. The OPG concentrations in cell culture supernatants were detected by sandwich ELISA. Living cell numbers were demonstrated by MTT test. The average levels of OPG secretion by a single cell were calculated by dividing OPG concentration with MTT-test result. RESULTS: Both IGF-II and bFGF upregulated the mtt values (P < 0.05), but ICF-II downregulated the opg/mtt values (P < 0.05), whereas bFGF had no significant effect on opg/mtt values (P > 0.05). CONCLUSION: IGF-II enhances the proliferation of PDL cells but prohibits OPG secretion. Although bFGF has the same effect on the proliferation of PDL cells, it has no effect on OPG secretion. Before cytokines were used to enhance periodontal regeneration, their effects on local bone balance should also be studied.

Adolescent↗