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M G Cecchini

Publications and source records attributed to M G Cecchini.

25 records · Page 2Linked to original sources

Production of granulocyte-macrophage (GM-CSF) and granulocyte colony-stimulating factor (G-CSF) by rat clonal osteoblastic cell population CRP 10/30 and the immortalized cell line IRC10/30-myc1 stimulated by tumor necrosis factor alpha.

Previously, we have shown that primary cultures of murine calvarial cells produce both granulocyte macrophage (GM) and granulocyte (G) colony stimulating factor (CSF). Because of the heterogeneity of cell types in these cultures the osseous origin of these cytokines was not certain. Thus a non-transformed rat clonal osteoblastic cell population CRP 10/30 and the immortalized cell line IRC10/30-myc1 derived from it, which both express the osteoblastic phenotype, were now investigated. Both produced hemopoietic growth activity after treatment with recombinant murine tumor necrosis factor alpha. This activity eluted from diethylaminoethyl Sephacel at 0.2-0.3 M NaCl, and migrated on Sephacryl S-200 at a mol wt of around 30 k, as described for murine GM- and G-CSF. On a Phenyl Sepharose CL-4B column, it was separated into two peaks appearing at position where GM (peak I) and G-CSF (peak II) are expected to be eluted. Antisera against GM-CSF inhibited the activity of peak I. In the colony assay in semisolid medium, peak I induced colonies of the GM-type and peak II of the G-type. These data indicate that cloned osteoblasts produce GM- and G-CSF. Through CSF production, osteoblasts might regulate osteoclast formation, influence hemopoiesis and/or participate in local inflammatory reactions of bone.

Animals↗

Impairment of macrophage colony-stimulating factor production and lack of resident bone marrow macrophages in the osteopetrotic op/op mouse.

Mouse calvaria-derived osteoblastlike cells have been shown to produce macrophage colony-stimulating factor (M-CSF). This factor may be involved in osteoclastogenesis and thus in bone resorption. In the present study we investigated whether the production of M-CSF was altered in the osteopetrotic mouse mutant strain op/op, characterized by a decrease in osteoclast number and an impairment of bone resorption. Whole calvariae and cells, as well as skin and lung fibroblasts, of the op/op mouse were found to produce no measurable M-CSF, in contrast to tissue and cells derived from normal littermates. M-CSF was identified by colony assay in semisolid media and by inhibition of the biologic activity with antiserum against M-CSF. Furthermore, the number of resident macrophages, identified by F4/80 antigen (F4/80 Ag) immunohistochemistry, was drastically decreased in bone and bone marrow of the op/op mouse, but in skin these cells were normal in number and morphology. These findings suggest that both M-CSF and resident macrophages play a role in the mechanism of bone resorption. The op/op mouse appears to be a valuable model to further investigate such a hypothesis.

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Bisphosphonates in vitro specifically inhibit, among the hematopoietic series, the development of the mouse mononuclear phagocyte lineage.

Bisphosphonates (BP) are powerful inhibitors of bone resorption. We have previously shown that 4-amino-1-hydroxybutylidene-1,1-bisphosphonate (AHBuBP), 3-amino-1-hydroxypropylidene-1,1-bisphosphonate (AHPrBP), and dichloromethylenebisphosphonate (Cl2MBP) inhibit the proliferation of macrophages in vitro at concentrations that do not affect the viability of nonproliferating cells. In this study we further investigated whether the antiproliferative effect of these three BP is, among the hematopoietic series, preferential to the mononuclear phagocyte lineage. BP were unable to inhibit more than 30-40% of the [3H]thymidine (3H-TdR) incorporation into bone marrow cells stimulated to proliferate by multilineage colony-stimulating activity containing conditioned medium (multi-CSA). From the analysis of the colonies induced in semisolid medium by multi-CSA and recombinant murine granulocyte-macrophage colony stimulating factor (rmGM-CSF), a dose-dependent disappearance specific to the macrophage-containing colonies emerged. In contrast, the number and composition of colonies other than macrophage and, in particular, the granulocyte colonies were not affected by these compounds, even at high concentrations (100 microM) previously also shown to be toxic for nonproliferating macrophages. Since the macrophages, differently from polymorphonuclear phagocytes, are known to be highly pinocytotic, it is possible that by this means they selectively concentrate BP intracellularly, leading to toxic concentrations. We postulate tht BP may also act in vivo in addition to their effect on osteoclast activity, by a similar mechanism on osteoclast precursors and on bone resident macrophages, a source of cytokines stimulating bone resorption and leading to impaired osteoclast recruitment and activity.(ABSTRACT TRUNCATED AT 250 WORDS)

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Macrophage colony stimulating factor restores in vivo bone resorption in the op/op osteopetrotic mouse.

The op/op variant of murine osteopetrosis is a recessive mutation characterized by impaired bone resorption due to lack of osteoclasts. Cultured osteoblasts and fibroblasts from this mutant do not secrete M-CSF activity and resident macrophages are absent in bone marrow. This failure has been related to a mutation within the M-CSF coding region. We report now that the administration of recombinant human M-CSF (rhM-CSF) corrects in vivo the impaired bone resorption in this animal. The treatment restores the bone marrow cavity virtually absent in the op/op animal and induces the appearance of resorbing osteoclasts and of resident bone marrow macrophages. This proves that the deficiency of M-CSF is the cause of the op/op bone disorder and that this cytokine is directly or indirectly necessary for physiological osteoclastogenesis, the resulting bone resorption and for the establishment of bone marrow hemopoiesis.

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Effects of transforming growth factor type beta upon bone cell populations grown either in monolayer or semisolid medium.

Bone has been shown to store large amounts of transforming growth factor type beta (TGF beta) and this has recently been found to be synthesized by bone-forming cells. We report on studies undertaken to examine the effects of platelet-derived TGF beta on different bone cell populations, isolated from 1-day postnatal rat calvaria by sequential enzymatic digestion. In addition, we tried to determine which of these cell populations synthesize TGF beta. In this regard, evidence was collected to indicate that cell populations which were shown to be enriched with osteoblast-like cells synthesize TGF beta. Although the production of the factor appeared to be limited to a particular cell type, its action was found to be of a more general character, as all cell populations were found to respond to TGF beta. Contrary to earlier reports, TGF beta was shown to be inhibitory upon cell proliferation. In this context, growth of cells released during early digestions was reduced considerably more than growth of those released during late digestions. Studies on the effect upon protein synthesis revealed that TGF beta specifically inhibited collagen but not the synthesis of noncollagenous proteins. The synthesis of collagen was altered to a greater extent in cells isolated during late digestions than in cells of the early populations. Further information on the TGF beta-mediated effects on bone cell biology was provided by data showing that both alkaline phosphatase and cAMP production in response to PTH was greatly reduced by TGF beta. Finally, experiments performed to determine whether TGF beta induces any of the bone cell populations to acquire the transformed phenotype revealed that only populations previously shown to be enriched with osteoblast-like cells formed colonies in soft agarose.(ABSTRACT TRUNCATED AT 400 WORDS)

Alkaline Phosphatase↗

Effect of bisphosphonates on proliferation and viability of mouse bone marrow-derived macrophages.

Bisphosphonates (BP) are powerful inhibitors of bone resorption. Their mechanism of action, although still unclear, is now believed to be at the cellular level. In this study we investigated the effects of these compounds on proliferation, induced either by L-cell conditioned medium (CSF-1) or 4-phorbol 12-myristate 13-acetate (PMA) of bone marrow cells (BMC) and on CSF-1-induced proliferation and viability of bone marrow derived macrophages (BMDM phi). BMC proliferation, measured by [3H]-TdR incorporation or by clonal assay in soft agar, was significantly inhibited by 4-amino-1-hydroxybutylidene-1,1-bisphosphonate (AHBuBP) and 3-amino-1-hydroxypropylidene-1,1-bisphosphonate (AHPrBP) at 2.5 x 10(-7) M and by dichloromethylenebisphosphonate (Cl2MBP) at 2.5 x 10(-6) M. This inhibitory effect was also confirmed on the proliferation, measured by [3H]-TdR incorporation, of BMDM phi. In the absence of CSF-1, the viability of this latter cell population, estimated by DNA content per well and lactate dehydrogenase (LDH) released into the medium, was affected in the following order of concentrations: Cl2MBP, 1.0 x 10(-4) M; AHBuBP, 5.0 x 10(-5) M; and AHPrBP, 2.5 x 10(-5) M. Since osteoclasts and macrophages might share a common early progenitor cell, probably under the control of CSF-1, the effect exerted by BP on the proliferation of the macrophage precursors may also be extended to the osteoclast precursors.

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Transforming growth factor-beta reduces the phenotypic expression of osteoblastic MC3T3-E1 cells in monolayer culture.

Transforming growth factor beta (TGF-beta) regulates cell growth and differentiation. Since it is abundant in bone, we have studied the effect of the polypeptide upon the growth and phenotypic expression of murine osteoblastic cells in monolayer culture. Its actions were compared to those of epidermal growth factor (EGF), another hormonally active polypeptide known to alter bone cell function. Picogram amounts of TGF-beta were found to inhibit the growth and phenotype (alkaline phosphatase and cAMP response to parathyroid hormone) of the clonal nontransformed MC3T3-E1 osteoblastic cell line. EGF also inhibited phenotypic expression, although at higher (nanogram) concentrations, but stimulated cell growth. The low concentration of TGF-beta required to inhibit growth and phenotype of osteoblastic cells together with its abundance in bone suggest that TGF-beta may be an important regulator of bone cell function.

Alkaline Phosphatase↗