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Biomedical subjects

Z Bar-Shavit

Publications and source records attributed to Z Bar-Shavit.

At least 37 records · Page 2Linked to original sources

Differentiation of a human leukemia cell line and expression of collagenase inhibitor.

A human collagenase inhibitor (CI) of Mr 28,500 has been extensively characterized in skin fibroblasts and identified in a variety of connective tissues. Because human alveolar macrophages synthesize and secrete both a collagenase and CI that are immunologically and functionally identical to their counterparts in fibroblasts, we studied the production of such proteins by an immature human cell line (HL60) that can be induced to differentiate along monocytic or granulocytic pathways. The cells failed to synthesize collagenase under any culture condition tested. However, upon exposure to 1,25-dihydroxyvitamin D3 or phorbol esters (PMA), both of which promote monocytic differentiation of HL60, these cells synthesized and released CI in a dose-dependent manner. Furthermore, the extent of CI expression was paralleled by the acquisition by such cells of the monocytic marker 63D3, indicating that inhibitor production and differentiation are closely correlated. This CI was immunologically and functionally identical to that produced by human macrophages and human skin fibroblasts. The quantity of CI synthesized by PMA-stimulated cells was 3- to 5-fold greater than produced by human alveolar macrophages, approximately equal to 1 microgram per 10(6) cells per day. In contrast, undifferentiated HL60 cells produced little or no detectable CI (less than or equal to 10-20 ng per 10(6) cells per day). Interestingly, when HL60 cells were stimulated to undergo granulocytic differentiation by dimethyl sulfoxide or retinoic acid, they also produced the "monocytic" CI.

Animals↗

Human alveolar macrophages produce a fibroblast-like collagenase and collagenase inhibitor.

Human macrophages have been implicated in connective tissue remodeling; however, little is known about their direct effects upon collagen degradation. We now report that human alveolar macrophages in culture produced both a collagenase and a collagenase inhibitor. The collagenase was secreted in latent form and could be activated by exposure to trypsin. Collagenase production could be increased three- to fourfold by incubating the cells with lipopolysaccharide, but synthesis was largely unaffected by exposure to phorbol myristate acetate. By several criteria, macrophage collagenase was the same as the collagenase secreted by human skin fibroblasts: (a) they were antigenically indistinguishable in double immunodiffusion; (b) both degraded type III collagen preferentially to type I, had little activity against type II collagen, and none against types IV and V, and (c) their affinity for susceptible collagens was equivalent, Michaelis constant = 1-2 microM. Collagenase inhibitory activity was also present in the macrophage-conditioned medium, and was accounted for by an antigen that showed immunologic and functional identity with the collagenase inhibitor secreted by human skin fibroblasts. The amount of inhibitor released by unstimulated cells, approximately 100 ng/10(6) cells per 24 h, was substantially augmented by both phorbol and lipopolysaccharide, although considerable variability in response to these agents was observed between macrophage populations derived from different subjects. As negligible quantities of collagenase or collagenase inhibitor were detectable intracellularly, it appeared that both proteins were secreted rapidly after synthesis. Thus, human macrophages have the capacity to modulate collagen degradation directly by production of collagenase and collagenase inhibitor.

Cells, Cultured↗

Treatment of congenital osteopetrosis with high-dose calcitriol.

We administered high doses of calcitriol (up to 32 micrograms per day) to an infant with malignant osteopetrosis, in an attempt to stimulate bone resorption. The patient was placed on a low-calcium diet to prevent hypercalcemia. Measures of bone turnover increased during calcitriol therapy; hydroxyproline excretion rose from 140 to 1358 micrograms per milligram of creatinine per 24 hours, with parallel increases in the ratio of calcium to creatinine in the urine, urinary gamma-carboxyglutamic acid, serum osteocalcin, and serum alkaline phosphatase. A pretreatment bone-biopsy specimen contained no osteoclasts with ruffled borders, a feature of active osteoclasts. After 11 days of calcitriol, ruffled borders were noted. After three months, numerous osteoclasts with ruffled borders and associated bony disruption were evident. Before therapy, the patient's monocytes were incapable of in vitro bone resorption, but after calcitriol, their resorptive capacity was increased to 3.3 times control levels. These data demonstrate that calcitriol increased bone mineral and matrix turnover in our patient. However, during the three months of calcitriol therapy there was only slight clinical improvement in her severe disease. Early and sustained treatment with calcitriol may be useful in osteopetrosis.

1-Carboxyglutamic Acid↗

Glucocorticoids modulate macrophage surface oligosaccharides and their bone binding activity.

The circumstantial evidence that indicates that glucocorticoids (GC) may stimulate osteoclastic resorption in vivo has recently found support in observations that demonstrate that these compounds effectively increase the activity of isolated resorptive cells (osteoclasts, macrophage polykaryons, and elicited macrophages [MO] ) in vitro. Data are presented here that indicate that this stimulation by GC is due to an enhancement of the initial stage of the resorption process, the attachment of cells to bone, and that this is caused by alterations of cell surface oligosaccharides. Specifically, dexamethasone and cortisol enhance by 80% the attachment of MO to bone surfaces in a dose dependent manner but do not alter or reduce the binding of these cells to other surfaces (plastic, collagen, and hydroxyapatite crystals). The effect of GC on cell-bone attachment is blocked by the glycosylation inhibitor, tunicamycin, and the glycosylation modifier, swainsonine; this demonstrates that asparagine-linked oligosaccharides are involved in the stimulatory process. Flow cytometric analysis of GC-treated cells using a panel of fluoresceinated lectins confirms this by indicating a selective, enhanced exposure of plasma membrane-associated N-acetylglucosamine and N-acetylgalactosamine residues, sugars we have previously shown to be pivotal in MO-bone binding. Finally, progesterone, a known GC antagonist, blocks GC-stimulated resorption, macrophage-bone binding, and membrane oligosaccharide modification, presumably by competing for the GC receptor. Progesterone alone alters none of these processes. Thus, GC stimulates the resorptive activity of macrophages by enhancing the initial events in the degradative process (cell-bone binding) and does so, apparently, via receptor-mediator alteration of cell surface glycoproteins.

Animals↗

Neurotensin modulates human neutrophil locomotion and phagocytic capability.

Neurotensin (NT) was found to induce oriented locomotion and augment the phagocytic capability of human blood neutrophils over 10(-11) - 10(-7) M. The tridecapeptide also causes Ca2+ extrusion from neutrophils, very likely as a result of intracellular Ca2+ mobilization. It is suggested that the NT-mediated functional modulation of neutrophils correlates with the capacity of NT to affect the intracellular compartmentalization of Ca2+. Peripheral NT-elicited phenomena such as vasodilation, enhanced vascular compartmentalization of Ca2+. Peripheral NT-elicited phenomena such as vasodilation, enhanced vascular permeability, mast cell degranulation and the enhancement of directional migration and phagocytosis of neutrophils described here, classify NT as a typical mediator of inflammation.

Calcium↗

Induction of monocytic differentiation and bone resorption by 1,25-dihydroxyvitamin D3.

1,25-Dihydroxyvitamin D3 [1,25(OH)2D3] stimulates bone resorption in man and other vertebrates, in part, by increasing the number of osteoclasts, the principal resorbing cells of bone. Because osteoclasts are very likely derived from a member(s) of the mononuclear phagocyte family, we determined if 1,25(OH)2D3 promotes maturation of these cells by studying its effects on the human promyelocytic leukemia cell line HL-60. Of the vitamin D3 metabolites tested, only 1,25(OH)2D3, at 10(-10) to 10(-7) M, induces the differentiation of HL60 into mono- and multinucleated macrophage-like cells. Phenotypic change is evident within 24 hr and reaches a plateau between 72 and 96 hr of incubation. The changes are metabolite-specific and include (i) adherence to substrate, (ii) acquisition of the morphological features of mature monocytes, (iii) a 4- to 6-fold enhancement in lysozyme synthesis and secretion, (iv) increase in the fraction of alpha-naphthyl acetate esterase-positive cells from approximately 2% to 100% of the population, and (v) the acquisition of several monocyte-associated cell surface antigens. More importantly, treated HL-60 cells acquire the capacity to bind and degrade bone matrix, two of the essential, functional characteristics of osteoclasts and related bone-resorbing cells. These results, considered together with the reported action of 1,25(OH)2D3 on nontransformed mononuclear cells, are consistent with the view that vitamin D3 enhances bone resorption and osteoclastogenesis in vivo by promoting the differentiation of precursor cells.

Animals↗

Saccharides mediate the attachment of rat macrophages to bone in vitro.

Macrophages (M phi) are multipotential cells capable of giving rise to osteoclasts and of resorbing bone. Since both of these processes are ultimately dependent upon the attachment of cells to a mineralized bone surface, we have examined in this study the mechanism by which such attachment is achieved. The data show that elicited rat peritoneal M phi bind to bone in a temperature-dependent and -saturable manner with half-maximal attachment occurring within 10 min at 37 degrees C and reaching a plateau by approximately 60 min. The kinetics of binding are essentially the same whether devitalized bone particles or viable calvaria are used as a substrate. The attachment of M phi to bone is inhibited by some sugars (e.g., N-acetyl-galactosamine, thiogalactoside, beta-lactose), fetuin and asialofetuin, and by pretreating the bone with periodate. Binding is also significantly reduced when M phi are preincubated with tunicamycin and swainsonine at nontoxic concentrations sufficient to inhibit or alter glycosylation. On the other hand, exposing the cells to neuraminidase increases the capacity of M phi to bind to bone. Collectively, our observations indicate that the attachment of M phi to bone is a highly regulated process and is mediated, at least in part, by saccharides located on both the cell and the bone surface.

Animals↗

Defective binding of macrophages to bone in rodent osteomalacia and vitamin D deficiency. In vitro evidence for a cellular defect and altered saccharides in the bone matrix.

In the osteomalacic as well as normal skeleton, few osteoclasts are associated with osteoid-covered bone surfaces. The reason for this particular cellular deficit is not clear, but may relate to the inability of osteoclasts and/or osteoclast precursors (monocyte-macrophages) to attach to immature, unmineralized bone matrix, a step apparently essential for normal resorptive activity and osteoclast differentiation. In this study, we have examined cell-bone binding using macrophages (M phi) and bone isolated from vitamin D-deficient rats and hypophosphatemic, osteomalacic mice and from their normal counterparts. The data show that M phi-bone attachment is greatly reduced (P less than 0.001) in both vitamin D deficiency and hypophosphatemia, but that the mechanisms responsible for this reduction are apparently different in the two disorders. In hypophosphatemia, the reduction in binding appears solely attributable to the absence or inaccessibility of bone matrix oligosaccharides or glycoproteins essential to the attachment process. In vitamin D deficiency, on the other hand, not only is the bone matrix defective as a binding substrate, but the M phi, per se, is limited in its capacity to attach to normal, vitamin D-deficient, and hypophosphatemic bone.

Animals↗

Enhancement of phagocytosis by neurotensin, a newly found biological activity of the neuropeptide.

Specific binding of neurotensin (NT) to mouse peritoneal thioglycollate-elicited macrophages and macrophages differentiated in vitro from bone marrow cells was demonstrated and characterized. NT binding to these phagocytes modulated their phagocytic capacity in a biphasic manner. At concentrations of 10(-14) to 10(-9) M NT, a dose-dependent augmentation of phagocytosis (up to 2-fold) was observed. Further increases in the concentration of NT resulted in a gradual decrease of the augmented response until the basal phagocytic activity (in the absence of NT) was reached. Three partial sequences of NT, NT (8-13), NT (6-13) and NT (1-10), were also effective in augmenting the phagocytic response of thioglycollate elicited macrophages, but the maximal effect was attained at about 10(-7) M and stayed at that level up to a concentration of 10(-5) M. The activity of the three NT partial sequences was comparable to that of substance P and tuftsin. Scatchard analysis of (3H)NT binding to macrophages suggested the existence of two populations of binding sites, a major population of relatively low affinity binding sites and a small population of high affinity binding sites. NT (8-13), NT (6-13), substance P and tuftsin competed with (3H)NT binding to the low affinity sites with a comparable KI to that of NT. NT (1-10) did not compete for the binding at the low affinity sites. It is suggested that NT binding to the high affinity sites leads to enhancement of phagocytosis, whereas its binding to the low affinity sites leads to inhibition of the augmented response. However, the low affinity sites are the sites of interaction of NT (8-13), NT (6-13), substance P and tuftsin with the phagocytes and their saturation with the peptides leads to augmentation of phagocytosis.

Amino Acid Sequence↗

1,25-dihydroxyvitamin D3 and the regulation of macrophage function.

Vitamin D3 deficient (D-) mice show a depressed inflammatory response and both inflammatory peritoneal macrophages and bone marrow polymorphonuclear leukocytes of D- mice exhibit a decreased spontaneous migration under agarose. The impaired phagocytic response of peritoneal macrophages from D- mice can be corrected by incubation with 1,25-dihydroxyvitamin D3 and is not affected by interaction with other vitamin D3 metabolites. Transfer of mice from the D- to the D+ state results in correction of both the inflammatory and the phagocytic response. Intactness of phagocyte function is thus directly dependent on vitamin D3 metabolism.

Animals↗

Functional tuftsin binding sites on macrophage-like tumor line P388D1 and on bone marrow cells differentiated in vitro into mononuclear phagocytes.

Mouse bone marrow cells, differentiated in vitro into mononuclear phagocytes (BMDMP), posess functional tuftsin binding sites, i.e. both tuftsin binding capacity and augmented phagocytic response related to tuftsin binding. The binding capacity of BMDMP was shown to be higher by a factor of about three than that exhibited by mouse monocytes and by normal, thioglycollate and Corynebacterium parvum induced peritoneal macrophages. The relatively high binding capacity did not depend on experimental variations in the in vitro culture of these populations (i.e. length of in vitro cultivation, source of serum or presence of conditioned medium leading to cell proliferation). The macrophage-like line, P388D1, was also shown to possess functional tuftsin binding sites and its binding capacity was comparable to that of the peritoneal macrophage populations.

Animals↗

On the mechanism of action of the phagocytosis-stimulating peptide tuftsin.

Incubation of human polymorphonuclear leukocytes (PMNL) or thioglycollate-stimulated mouse peritoneal macrophages with the phagocytosis-stimulating peptide, tuftsin (2.5 X 10(-7) M, at 37 degrees C), caused an increase of 80-90% in intracellular cGMP levels, accompanied by a decrease of 20-25% in intracellular cAMP levels. Significant changes in cyclic nucleotide levels were detectable after 4 min of incubation, were maximal at 10-20 min and persisted for at least 60 min. The concentration dependences of the stimulatory effect of tuftsin on modulation on intracellular levels of cyclic nucleotides and on phagocytosis are similar, suggesting a cause and effect relationship between the two phenomena. This notion is further supported by the finding that 8-Br-cGMP and 8-Br-cAMP elicit stimulatory and inhibitory effects on macrophage phagocytosis, respectively. Measurement of 45Ca2+ influx into PMNL and macrophages in the presence and absence of tuftsin did not reveal any change in 45Ca2+ uptake from the media. However, tuftsin did enhance release of 45Ca2+ from cells preloaded with the isotope. Results suggest that modulation of both the amount of cell-associated 45Ca2+ and the intracellular levels of cyclic nucleotides are key steps in the mechanism by which tuftsin augments phagocytosis.

Animals↗

Mannose-binding activity of Escherichia coli: a determinant of attachment and ingestion of the bacteria by macrophages.

Recently, it was suggested that a mannose-specific lectin on the bacterial cell surface is responsible for the recognition by phagocytic cells of certain nonopsonized Escherichia coli strains. In this study we assessed the interaction of two strains of E. coli at different phases of growth with a monolayer of mouse peritoneal macrophages and developed a direct method with [(14)C]mannan to quantitate the bacterial mannose-binding activity. Normal-sized bacteria were obtained from logarithmic and stationary phases of growth. Nonseptated filamentous cells were formed by growing the organisms in the presence of cephalexin or at a restrictive temperature. Attachment to macrophages of all bacterial forms was inhibited by methyl alpha-d-mannoside and mannan but not by other sugars tested. The attachment of stationary phase and filamentous bacteria to macrophages, as well as their mannose-binding activity, was similar, whereas in the exponential-phase bacteria they were markedly reduced. The results show a linear relation between the two parameters (R = 0.98, P < 0.001). The internalization of the filamentous cells attached to macrophages during 45 min of incubation was much less efficient (20%) compared to that of exponential-phase, stationary-phase, or antibody-coated filamentous bacteria (90%). The results indicate that the mannose-binding activity of E. coli determines the recognition of the organisms by phagocytes. They further suggest that administration of beta-lactam antibiotics may impair elimination of certain pathogenic bacteria by inducing the formation of filaments which are inefficiently internalized by the host's phagocytic cells.

Animals↗