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M Centrella

Publications and source records attributed to M Centrella.

At least 73 records · Page 4Linked to original sources

Cyclic AMP induces insulin-like growth factor I synthesis in osteoblast-enriched cultures.

Earlier studies indicate that parathyroid hormone (PTH) enhances insulin-like growth factor I (IGF-I) synthesis in primary osteoblast-enriched fetal rat cell cultures and the stimulatory effect of PTH on bone collagen synthesis is mediated at least in part by IGF-I. Cyclic AMP (cAMP) is a second messenger for signal transduction by PTH to its target cells, although calcium may also serve this function. We now demonstrate that isobutylmethylxanthine, forskolin, and dibutyryl cAMP, agents that elevate intracellular cAMP levels by discrete mechanisms, also enhanced the steady state transcript and polypeptide level of IGF-I in osteoblast-enriched cultures. The calcium ionophore ionomycin and phorbol myristate acetate did not increase IGF-I synthesis. In contrast, none of the agents tested increased the steady state transcript or polypeptide levels for IGF-II. The rat IGF-I gene is greater than 90 kilobases in length, and contains at least three promoter regions. Our present data represent the first demonstration of cAMP mediated IGF-I gene regulation and indicate the potential for preferential promoter usage for modulating IGF-I gene expression in bone.

1-Methyl-3-isobutylxanthine↗

Recombinant transforming growth factor type beta 3: biological activities and receptor-binding properties in isolated bone cells.

We have recently cloned the cDNA for transforming growth factor type beta 3 (TGF-beta 3), a new member of the TGF-beta gene family. We examined the biological effects of recombinant TGF-beta 3 protein in osteoblast-enriched bone cell cultures. In this report we demonstrate that TGF-beta 3 is a potent regulator of functions associated with bone formation, i.e., mitogenesis, collagen synthesis, and alkaline phosphatase activity. In a direct comparison between TGF-beta 3 and TGF-beta 1, TGF-beta 3 appeared to be three- to fivefold more potent than TGF-beta 1. Our cross-linking experiments with iodinated TGF-beta showed that in osteoblast-enriched bone cell cultures, both TGF-beta 3 and TGF-beta 1 associated with the same three cell surface binding sites. Scatchard analysis of receptor competition studies indicated the presence of high-affinity binding sites for TGF-beta 3 in the picomolar range. TGF-beta 3 showed an approximately fourfold-higher apparent affinity than TGF-beta 1 in overall binding.

Alkaline Phosphatase↗

Receptors for insulin-like growth factors-I and -II in osteoblast-enriched cultures from fetal rat bone.

Insulin-like growth factors-I and -II (IGF-I and IGF-II) are produced by bone cells and stored in bone matrix, and stimulate bone cell DNA synthesis and type I collagen production. Earlier studies in cells from an assortment of tissues indicate that IGF-I binds to membrane receptors of various relative molecular mass (Mr), whereas IGF-II binds predominantly to the mannose-6-phosphate transferase. In the present studies we have examined the IGF receptor profile in osteoblast-enriched cultures prepared from fetal rat parietal bone. Scatchard binding kinetics with either 125I-IGF-I or 125I-IGF-II were curvilinear, indicating high and low affinity receptor classes for each ligand. Chemical cross-linking and polyacrylamide gel analysis revealed that 125I-IGF-I bound at Mr 130,000, 240,000, and 260,000, whereas 125I-IGF-II bound predominantly at Mr 240,000. Unlabeled IGF-I displaced 125I-IGF-I with high affinity at Mr 260,000 and 130,000 and with lower affinity at Mr 240,000. Unlabeled IGF-II preferentially displaced either radioactive ligand at Mr 240,000, but at high concentrations displaced 125I-IGF-I at all binding sites. Furthermore, mannose-6-phosphate enhanced binding by both 125I-IGF-I and 125I-IGF-II at Mr 240,000, and antibody to the rat IGF-II receptor prevented binding only at this location. The relative affinities of IGF-I and IGF-II for the primary IGF-I receptor correlate with their anabolic activities in bone cultures and suggest that the IGF-I receptor mediates the growth-promoting effects of both agents in bone.

Animals↗

Transforming growth factor-beta stimulates bone matrix apposition and bone cell replication in cultured fetal rat calvariae.

Transforming growth factor-beta (TGF beta) stimulates the expression of extracellular matrix proteins and may be a local regulator of bone growth. The aims of this research were to localize the effect of TGF beta on bone matrix formation and to determine if this effect was dependent on increased cell replication, using histomorphometry and autoradiography of bone organ cultures. Half-calvariae of 21-day-old fetal rats were cultured with native or recombinant TGF beta 1 for 24 h and labeled either with [3H]proline for 0-24 or 24-48 h or with [3H]thymidine for the last 6 h of culture. Bones were fixed in glutaraldehyde, embedded in glycol methacrylate, and processed for autoradiography. Bone matrix formation was assessed as the matrix apposition rate per day and the percentage of [3H]proline-labeled bone surface. Cell replication was evaluated based on the number and percentage of [3H]thymidine labeled cells in the osteoblast cell zone, the osteoprogenitor cell zone, and the pericranial fibroblastic periosteum. Both native and recombinant TGF beta at 1-30 ng/ml increased bone matrix formation by 25-40% (P less than 0.05). At 30 ng/ml, TGF beta had a generalized mitogenic effect as cell replication increased by approximately 2-fold in all cell zones of the pericranial periosteum. TGF beta had specific effects on bone cell differentiation. The number of unlabeled cells lining the bone surface increased, and the number of osteoclasts on bone decreased. Inhibition of cell replication by hydroxyurea only partially blocked the stimulatory effect of TGF beta on bone matrix formation, suggesting that TGF beta may have independent effects on cell replication and differentiated bone cell function. In summary, TGF beta had a generalized mitogenic effect on the pericranial periosteum and specific stimulatory and inhibitory effects on bone cell differentiation and function.

Animals↗

Cortisol inhibits the synthesis of insulin-like growth factor-I in skeletal cells.

Supraphysiological levels of cortisol inhibit bone cell replication and matrix synthesis, but its mechanism of action is unknown and could be secondary to an inhibition of local growth factor synthesis. These inhibitory effects of cortisol are the converse of the observed anabolic influences of the endogenously produced insulin-like growth factor-I (IGF-I); therefore, cortisol was examined for its effect on the production of IGF-I in osteoblast (Ob)- and fibroblast/preosteoblast-enriched cell cultures prepared from fetal rat parietal bone. Synthesis of IGF-I was monitored by Northern blot analysis to determine steady state IGF-I mRNA levels and by an IGF-I-specific RIA to quantitate polypeptide levels in acidified and fractionated culture medium. Cortisol at 100 nM decreased IGF-I transcript levels by 60% or more in Ob cultures within 6 h of treatment, and the concentration of immunoreactive IGF-I by 50% after 24 h; these effects were observed in the absence of a change in cellular DNA content. In Ob cultures, PTH at 10 nM increased IGF-I transcripts at 6 h and polypeptide levels at 24 h by 2.5- and 4.1-fold, respectively, and cortisol opposed this effect. The inhibitory effect of cortisol was not specific for the Ob cell population, since at 100 nM it also decreased IGF-I transcript and immunoreactive IGF-I levels in fibroblast/preosteoblast cultures and opposed the stimulation of IGF-I synthesis after treatment with 100 ng/ml GH. In conclusion, high levels of cortisol decrease skeletal IGF-I synthesis by reducing IGF-I transcript levels, and this effect probably contributes to the inhibitory influence of cortisol on bone formation.

Animals↗

Differential effects of continuous and transient treatment with parathyroid hormone related peptide (PTHrp) on bone collagen synthesis.

Parathyroid hormone-related peptide (PTHrp), a polypeptide synthesized by tumors associated with hypercalcemia and known to cause bone resorption, was examined for its effects on bone formation in cultures of 21-day fetal rat calvariae. Continuous treatment with PTHrp for 24-72 h stimulated DNA synthesis, but inhibited [3H] proline incorporation into collagen by about 50%. In contrast, transient exposure to PTHrp at 0.1-1.0 nM for 24 h followed by removal of the factor for 48 h caused an increase in [3H]proline incorporation into collagen and noncollagen protein by 2- and 1.6-fold, respectively. The stimulatory effect was seen in the periosteum-free bone, and was decreased, but not prevented by hydroxyurea. PTHrp at 1-10 nM for 24 h increased medium insulin-like growth factor (IGF) I levels by 2.5-4.4-fold, and the effect was sustained 48 h after the removal of the agent. An IGF I neutralizing antibody prevented the stimulatory effect of PTHrp on bone collagen synthesis. PTH had the same stimulatory effects as those of PTHrp on bone collagen synthesis and IGF I concentrations, although slightly lower doses were needed to observe the enhancement of [3H]proline incorporation into collagen. It is concluded that continuous treatment with PTHrp inhibits, whereas transient treatment stimulates, collagen synthesis; the stimulatory effect appears mediated by an enhancement in the local production of IGF I.

Animals↗

Beta 2-microglobulin enhances insulin-like growth factor I receptor levels and synthesis in bone cell cultures.

Beta 2-Microglobulin (beta 2m), a component of the major histocompatibility complex in chordates, has growth factor-like activity for cultured rat cells. We presently describe interactions between beta 2m and insulin-like growth factor I (IGF I) in osteoblast-enriched cultures. beta 2m increased DNA synthesis and was synergistic with IGF I. Affinity labeling revealed that beta 2m enhanced IGF I receptor number, and Northern analysis and radioimmunoassay showed that beta 2m increased steady state IGF I transcripts and medium IGF I polypeptide levels. These results indicate that the growth-promoting activity of beta 2m is mediated at least in part by regulating local IGF I binding and synthesis by skeletal cells.

Animals↗

Effects of platelet-derived growth factor on bone formation in vitro.

Platelet-derived growth factor (PDGF) is a polypeptide found in a variety of tissues, including bone, where it could act as an autologous regulator of skeletal remodeling. Therefore, a recombinant B chain homodimer of human PDGF was studied for its effects on bone formation in cultured rat calvariae. PDGF at 10-100 ng/ml stimulated [3H]thymidine incorporation into DNA by up to sixfold and increased the DNA content and the number of colcemid-induced metaphase arrested cells. This effect was observed in the fibroblast and precursor cell-rich periosteum. As a result of its mitogenic actions, PDGF enhanced [3H]proline incorporation into collagen, an effect that was observed primarily in the osteoblast-rich central bone. The effect of PDGF was not specific for collagen since it also increased noncollagen protein synthesis. In addition, PDGF increased bone collagen degradation. PDGF and insulin-like growth factor (IGF) I had additive effects on calvarial DNA synthesis, but PDGF opposed the stimulatory effect of IGF I on collagen synthesis and IGF I prevented the PDGF effect on collagen degradation. In conclusion, PDGF stimulates calvarial DNA synthesis which causes an increased number of collagen-synthesizing cells, but PDGF also enhances bone collagen degradation.

Animals↗

Insulin-like growth factor I mediates selective anabolic effects of parathyroid hormone in bone cultures.

PTH was studied for its effects on bone formation in cultured rat calvariae. 0.01-10 nM PTH stimulated [3H]thymidine incorporation into DNA by up to 4.8-fold. Although continuous treatment with PTH for 24-72 h inhibited [3H]proline incorporation into collagen, transient (24 h) treatment enhanced [3H]proline incorporation into collagen 24-48 h after the hormone was removed. The collagen stimulated by PTH was type I and the effect was observed in the periosteum-free bone and was not blocked by hydroxyurea. Furthermore, treatment with 1-100 nM PTH for 24 h increased insulin-like growth factor (IGF) I concentrations by two to fourfold, and an IGF I antibody prevented the PTH stimulation of collagen synthesis, but not its mitogenic effect. In conclusion, continuous treatment with PTH inhibits calvarial collagen, whereas transient treatment stimulates collagen synthesis, and the stimulatory effect is mediated by local production of IGF I.

Animals↗

Native and a synthetic analogue of the malignancy-associated parathyroid hormone-like protein have in vitro transforming growth factor-like properties.

A human parathyroid-like protein (PLP) has recently been isolated and cloned from human tumors associated with the paraneoplastic syndrome, humoral hypercalcemia of malignancy. PLP shares NH2-terminal amino acid sequence similarity with PTH but has a unique primary structure thereafter. Studies reported to date have indicated that both native and synthetic amino-terminal PLP polypeptides display actions in vivo and in vitro that are similar to those of PTH. We report here that purified native PLP and synthetic 36Tyr(1-36)amide human PLP induce epidermal growth factor-dependent transformation of NRK 49F cells in soft agar. Further, the synthetic peptide induces a significant increase in the biosynthesis of fibronectin by human dermal fibroblasts. (1-34)PTH does not display either of these biological activities. These data indicate that there are qualitative differences between PTH and the recently identified PLP. The latter hormone appears to possess transforming growth factor-like properties that may be relevant to its physiological actions.

Cell Transformation, Neoplastic↗

Regulatory effects of insulin-like growth factors I and II on bone collagen synthesis in rat calvarial cultures.

Insulin-like growth factors I and II (IGF-I and -II) are polypeptides secreted by skeletal cells and are considered regulators of bone formation. IGF-I and -II were studied for their effects on collagen synthesis and degradation in cultures of intact fetal rat calvariae and on type I collagen transcript levels in osteoblast-enriched (Ob) cells from fetal rat parietal bone. IGF-I and -II increased [3H]proline incorporation into type I collagen independently of their effect on cell replication. IGF-I and -II also decreased collagen degradation in calvarial cultures. Both factors had similar actions, although IGF-I stimulated collagen synthesis at 10 nM, and IGF-II at 30 nM. In Ob cells, IGF-I and -II also increased [3H]proline incorporation into type I collagen, but the effect was seen at 100 nM, and neither factor decreased collagen degradation. Slot blot analysis of IGF-I- and IGF-II-treated cells, using a rat type I collagen cDNA probe, revealed an increase in type I collagen transcripts. In conclusion, IGF-I and -II increase bone collagen synthesis and decrease collagen degradation in cultures of intact calvariae; the effect on collagen synthesis correlates with an increase in transcript levels in Ob cells.

Animals↗

Parathyroid hormone enhances the transcript and polypeptide levels of insulin-like growth factor I in osteoblast-enriched cultures from fetal rat bone.

PTH stimulates bone resorption and formation, but the mechanism of its anabolic effect is unknown. The effects of PTH on bone formation could be mediated by local regulators, either by altering their binding to receptors or by modulating their synthesis. Cell extracts from PTH-treated osteoblast-enriched cultures isolated from fetal rat parietal bones were examined by Northern blot analysis for changes in mRNAs encoding insulin-like growth factor I (IGF-I), transforming growth factor-beta, and beta 2-microglobulin. PTH did not influence transforming growth factor-beta or beta 2-microglobulin transcript levels. In contrast, PTH-(1-34) had a biphasic stimulatory effect on IGF-I transcript levels; 0.1-10 nM PTH increased IGF-I transcripts by 100-200% after a 6-h treatment, while 100 nM PTH induced a 100% increase. In addition, PTH at 0.01-10 nM increased immunoreactive IGF-I (iIGF-I) in culture medium by 40-200% at 24 h. Maximal increases in IGF-I transcripts occurred at 6 h, while iIGF-I accumulated throughout 24 h of culture. These results are compared to the effects of 0.5-50 nM GH, which increased IGF-I transcripts by 30% and iIGF-I by 50-100%. Therefore, PTH enhanced local IGF-I synthesis by increasing IGF-I transcripts, and this effect may in part mediate the anabolic actions of PTH on bone.

Animals↗

Platelet-derived growth factor enhances deoxyribonucleic acid and collagen synthesis in osteoblast-enriched cultures from fetal rat parietal bone.

Platelet-derived growth factor (PDGF) or closely related proteins are found in bone matrix and are produced by cultured osteosarcoma cells. In serum-deprived osteoblast-enriched (ob) cultures from fetal rat bone, recombinant human PDGF (composed of a B chain homodimer) at 0.1-3 nM enhanced the rate of DNA synthesis by 2- to 8-fold within 24 h of treatment, and 0.3-3 nM PDGF increased cell number by 1.3- to 1.6-fold. Unlike results with rat kidney fibroblast cultures, the mitogenic effect of PDGF in ob cultures was not synergistic with that of insulin-like growth factor I. PDGF at 0.3-10 nM also enhanced the rates of collagen and noncollagen protein synthesis in ob cultures by 1.5- to 4.0-fold, and these increases were blocked when DNA synthesis was prevented. The stimulatory effects of PDGF did not appear specific to ob cultures from fetal rat bone, since similar increases were found in bone cell cultures containing fibroblasts and osteoblast precursors. PDGF binding at 4 C to ob cultures indicated a single class of receptors with a Kd of 0.16 nM and approximately 60,000 sites/cell. Polyacrylamide gel of 125I-PDGF bound and cross-linked to ob cultures revealed a single radioactive band at approximately 180,000-190,000 mol wt. The present studies, therefore, indicate that PDGF can directly increase replication and matrix protein synthesis by both differentiated and undifferentiated bone cells, and that bone- or platelet-derived PDGF may have an important anabolic role in bone remodeling or fracture repair.

Animals↗

Parathyroid hormone-related protein modulates the effect of transforming growth factor-beta on deoxyribonucleic acid and collagen synthesis in fetal rat bone cells.

Proteins with biochemical function and sequence similarity to PTH are produced by many tumors associated with hypercalcemia and may have a role in pathological bone remodeling. Synthetic polypeptides comprising the amino-terminus of human PTH-related protein (PTH-rp) were examined for effects in intact fetal rat calvariae, and in osteoblast-enriched (ob) cultures isolated from fetal rat parietal bone. In cultured calvariae, 0.5-5 nM PTH-rp stimulated [3H]thymidine incorporation into DNA by 25-70% after 24 h of treatment and decreased relative [3H]proline incorporation into collagen by 50%; the inhibitory effect on collagen production was not altered by hydroxyurea, which decreased DNA synthesis by 85%. PTH-rp also increased [3H]hydroxyproline levels by 100% in culture medium from bones prelabeled with [3H]proline, indicating accelerated matrix turnover. In contrast to results in intact calvariae, PTH-rp had little effect on basal DNA and collagen synthesis in serum-deprived ob cultures. However, when ob cultures were treated with transforming growth factor type beta at concentrations similar to those found in calvarial culture medium, 0.02-2 nM PTH-rp enhanced DNA synthesis and decreased collagen production. Furthermore, equimolar PTH-rp and PTH concentrations similarly displaced 125I-PTH-rp binding and enhanced cAMP synthesis in ob cultures. These studies suggest that PTH-rp regulates osteoblastic cell activity primarily through PTH-related pathways and may act in part by modulating the effects of locally produced transforming growth factor-beta in bone.

Animals↗

Effects of fibroblast growth factors on deoxyribonucleic acid and collagen synthesis in rat parietal bone cells.

Acidic fibroblast growth factor (aFGF) and basic FGF (bFGF) are related molecules that are extractable from bone matrix and may be important in the maintenance of normal bone physiology. The influence of each agent on DNA and protein synthesis was studied using bone-derived primary cell cultures. Both forms of FGF were relatively more mitogenic for bone cell populations with fewer osteoblastic (Ob) characteristics than for Ob-enriched cultures. However, in the Ob cultures, bFGF was intrinsically 10-fold more stimulatory than aFGF, whereas heparin enhanced the mitotic response only to aFGF. An optimal dose of either aFGF or bFGF (100 ng/ml) decreased alkaline phosphatase activity and increased the rate of noncollagen and collagen protein synthesis in Ob cultures. The stimulatory effect was relatively greater on noncollagen than on collagen synthesis, which resulted in a decrease in percent collagen synthesis. Neither factor altered the rate of collagen degradation. Furthermore, hydroxyurea diminished, but did not prevent, the stimulatory effect of each factor on rates of protein synthesis. In contrast, polyacrylamide gel analysis of newly synthesized protein and Northern blot analysis of steady state alpha 1 type I procollagen mRNA indicated differential effects by each agent on procollagen synthesis and processing. These studies suggest that the FGFs may produce their effects on Ob cells through both shared and disparate mechanisms, with the net result being a decrease in the expression of the osteoblastic phenotype.

Animals↗

Effects of transforming growth factors on bone cells.

Bone formation results from the anabolic and catabolic functions of osteoblasts and osteoclasts within bone. The activities of these cell populations are controlled by complex interacting effects generated by local (bone-derived) and systemic (hormone) growth regulators. One of the more abundant growth regulators produced by bone cells and associated with bone matrix is transforming growth factor beta (TGF-beta). Recent studies indicate that TGF-beta controls the abundance and the biochemical function of osteoblasts and osteoclasts. Also, both TGF-beta production by bone cells, and its effects on bone cell activity, can be influenced by other local growth factors and osteotropic hormones.

Animals↗

Insulin-like growth factor (IGF) and bone.

Bone is not only a rich source of a diverse group of growth factors, but is also a very responsive tissue to such growth promoting agents. IGF-I and IGF-II are reported to be synthesized and retained in bone. While both IGF-I and IGF-II stimulate DNA, collagen, and noncollagenous protein synthesis in cultured calvariae, these explant cultures have quantitative differential sensitivities to these IGF's. In addition to the observed increase in collagen synthesis, collagen degradation decreased in calvariae treated with IGF-I or IGF-II.

Animals↗