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Biomedical subjects

W R Benjamin

Publications and source records attributed to W R Benjamin.

At least 19 recordsLinked to original sources

Administration of recombinant interleukin-12 to mice suppresses hematopoiesis in the bone marrow but enhances hematopoiesis in the spleen.

Although IL-12 has been reported to synergize with c-kit ligand (KL) in promoting hematopoietic stem cell proliferation in vitro, administration of recombinant mouse IL-12 (rIL-12) to normal mice caused a dose- and time-dependent anemia, leukopenia, and thrombocytopenia in vivo. Decreased numbers of bone marrow cells were recovered from the tibiae of IL-12-treated mice, and histologic examination of the marrow revealed a loss of mature neutrophils and red blood cell precursors. However, simultaneously with the suppression of hematopoiesis in the bone marrow, the IL-12-treated mice developed splenomegaly, which was largely caused by a marked enhancement of splenic extramedullary hematopoiesis of the erythroid, myeloid, and megakaryocytic lineages. These histologic observations were confirmed by colony-forming cell assays in which administration of IL-12 was shown to cause a time-dependent decrease in bone marrow CFU-GM, CFU-E, and BFU-E hematopoietic colony-forming cells while causing an increase in splenic CFU-GM and BFU-E colony-forming cells. All these effects were reversible upon cessation of IL-12 treatment. The observation that in IL-12-treated mice hematopoiesis was suppressed in the marrow but enhanced in the spleen suggests that myelosuppression was not caused by a direct effect of IL-12 on hematopoietic progenitors. It seems likely that myelosuppression was caused instead by an IL-12-induced alteration in the local environment of the marrow.

Anemia

Failure of IL-1 receptor antagonist and monoclonal anti-IL-1 receptor antibody to inhibit antigen-specific immune responses in vivo.

rIL-1R antagonist (rIL-1ra) and 35F5, a neutralizing mAb, have been shown to inhibit the ability of IL-1 alpha and IL-1 beta to bind to type I but not type II murine receptors. Additionally, IL-1ra and 35F5 inhibit a variety of inflammatory responses in vitro and in vivo. In the present report we have evaluated the activity of human IL-1ra and 35F5 in murine Ag-specific cell-mediated and humoral immune response models. Administration of IL-1ra, either twice daily or as a continuous infusion, did not inhibit the cytolytic T lymphocyte response to allogeneic splenocytes. The CTL response was also not inhibited by daily administration of 35F5. The delayed type hypersensitivity response to oxazolone was similarly refractory to administration of IL-1ra and 35F5. In the humoral immune response models, neither the splenic plaque response to SRBC nor the IgG or IgM response to TNP-keyhole limpet hemocyanin was inhibited by treatment with IL-1ra or 35F5. These data suggest that signaling through the type I IL-1R is not required for these Ag-specific immune responses.

Animals

Conversion of the interleukin 1 receptor antagonist into an agonist by site-specific mutagenesis.

Interleukin 1 (IL-1) receptor antagonist (IL-1ra) is a naturally occurring protein that binds to the IL-1 receptor present on T cells, fibroblasts, and other cell types and acts to block IL-1-induced responses. IL-1ra is a pure antagonist and has no agonist activity in in vitro or in vivo systems. By site-specific mutagenesis, an analog of IL-1ra was created that contained a substitution of a single amino acid, Lys-145----Asp. This analog, IL-1ra K145D, exhibited partial agonist activity in the D10.G4.1 cell proliferation assay. The newly acquired agonist activity could not be neutralized by antisera to IL-1 alpha or IL-1 beta, but it could be blocked by a monoclonal antibody to the T-cell IL-1 receptor. The analog also showed agonist activity as assayed by increased prostaglandin E2 synthesis from CHO cells expressing recombinant mouse IL-1 receptor. These results with IL-1ra K145D demonstrate the importance of the region surrounding the corresponding Asp-145 residue in IL-1 beta for triggering the biological response to IL-1.

Animals

Anti-Tac-H, a humanized antibody to the interleukin 2 receptor, prolongs primate cardiac allograft survival.

High-affinity interleukin 2 receptors (IL-2Rs) are expressed by T cells activated in response to foreign histocompatibility antigens but not by normal resting T cells. To exploit this difference in IL-2R expression, anti-Tac-M, a murine monoclonal antibody specific for the IL-2R alpha chain, was used to inhibit organ allograft rejection. However, the use of murine anti-Tac as an immunosuppressive agent was limited by neutralization by human anti-murine antibodies and by weak recruitment of effector functions. To circumvent these difficulties, a humanized antibody to the IL-2R, anti-Tac-H, was prepared. This molecule is human with the exception of the hypervariable segments, which are retained from the mouse. In vivo survival of anti-Tac-H is 2.5-fold longer than simultaneously administered anti-Tac-M (terminal t1/2, 103 hr vs. 38 hr). In addition, anti-Tac-H is less immunogenic than anti-Tac-M when administered to cynomolgus monkeys undergoing heterotopic cardiac allografting. Specifically, all monkeys treated with anti-Tac-M developed measurable anti-anti-Tac-M levels by day 15 (mean onset, 11 days). In contrast, none of the animals receiving anti-Tac-H produced measurable antibodies to this monoclonal antibody before day 33. Finally, there was a prolongation of graft survival in the cynomolgus heterotopic cardiac allograft model in animals receiving anti-Tac. In animals that received anti-Tac-M, the allograft survival was prolonged compared to that of the control group (mean survival, 14 +/- 1.98 days compared to 9.2 +/- 0.48 days; P less than 0.025). Graft survival was further prolonged by anti-Tac-H with a mean survival of 20.0 +/- 0.55 days (compared to controls, P less than 0.001; compared to anti-Tac-M, P less than 0.02). There was no toxicity attributable to the administration of either form of anti-Tac. Thus, anti-Tac-H significantly prolonged allograft survival in primates, without toxic side effects, and may be of value as an adjunct to standard immunosuppressive therapy in humans.

Animals

Inhibition of interleukin 1 (IL-1) binding and bioactivity in vitro and modulation of acute inflammation in vivo by IL-1 receptor antagonist and anti-IL-1 receptor monoclonal antibody.

Recombinant human interleukin 1 receptor antagonist (IL-1ra) and 35F5, a neutralizing monoclonal antibody (mAb) to the type I mouse IL-1 receptor, were examined for their ability to bind to IL-1 receptors (IL-1Rs) on various types of mouse cells and to block immune and inflammatory responses to IL-1 in vitro and in mice. IL-1ra competed for binding of 125I-IL-1 alpha to type I IL-1R present on EL-4 thymoma cells, 3T3 fibroblasts, hepatocytes, and Chinese hamster ovary cells expressing recombinant mouse type I IL-1R. The IC50 values for IL-1ra binding (ranging from 2 to 4 ng/ml) were similar to those of IL-1 alpha. In contrast, IL-1ra bound with very low affinity (IC50 values ranging from 10 to 200 micrograms/ml) to cells expressing type II IL-1R, i.e., 70Z/3 pre-B cell line and polymorphonuclear leukocytes (PMN) derived from bone marrow and acute inflammatory exudates. The mAb 35F5 bound specifically to type I IL-1R; no inhibition of 125I-IL-1 alpha binding to cells having type II IL-1R was observed with very high concentrations of antibody. While neither IL-1ra nor 35F5 had intrinsic activity in bioassays using T helper D10.G4.1 cells and mouse thymocytes, both agents blocked the ability of IL-1 to stimulate proliferation of these cells. The effects of IL-1ra and 35F5 on acute inflammatory responses in mice were also evaluated. IL-1ra and 35F5 blocked the local accumulation of PMN after intraperitoneal injection of rIL-1 alpha. The response to IL-1 was inhibited when IL-1ra or 35F5 was administered simultaneously with or before administration of IL-1. IL-1ra and 35F5 also blocked PMN accumulation after intraperitoneal injection of lipopolysaccharide or proteose peptone, suggesting IL-1 is important in mediating responses to these agents. In addition, IL-1ra and 35F5 significantly blocked the ability of IL-1 to stimulate egress of PMN from bone marrow, to induce a transient neutrophilia, and to elevate serum levels of hepatic acute phase proteins, IL-6, and corticosterone. Thus, IL-1ra and 35F5 competitively inhibit the binding of IL-1 to the IL-1R on certain cell types. These two IL-1 receptor antagonists act to inhibit biological responses induced by IL-1 and other inflammatory agents.

Acute-Phase Reaction

Antiproliferative effect of interleukin-1 on human ovarian carcinoma cell line (NIH:OVCAR-3).

The human ovarian carcinoma cell line, NIH:OVCAR-3, possesses high affinity receptors for interleukin-1 (IL-1). Binding experiments with 125I-IL-1 alpha indicate a dissociation constant of approximately 55 pM and the presence of approximately 7800 receptors/cell. These receptors bind both IL-1 alpha and IL-1 beta and internalize IL-1. Proliferation is NIH:OVCAR-3 cells is inhibited by IL-1. Half-maximal inhibition is observed with 2-3 units/ml of IL-1 alpha or IL-1 beta. A maximal effect (80% inhibition of cell proliferation) is achieved by treatment of cells with greater than or equal to 10 units/ml of IL-1 for 3 days. The antiproliferative effect of IL-1 is blocked by IL-1 receptor antagonist. Light and electron microscopy studies show that IL-1 treatment causes cytopathological changes and a reduction in the number of mitotic figures in NIH:OVCAR-3. IL-1 stimulates prostaglandin E2 release by NIH:OVCAR-3 cells, but this response is unrelated to the antiproliferative effect of IL-1. Interferon-alpha A (IFN-alpha A) also inhibits growth of NIH:OVCAR-3 cells in a concentration-dependent manner. Combination of IFN-alpha A and IL-1 gives synergistic inhibition of NIH:OVCAR-3 cell proliferation. IL-1 alone or in combination with IFN-alpha A or other agents may be useful for treatment of human ovarian cancer.

Carcinoma

Differential cytokine induction by doses of lipopolysaccharide and monophosphoryl lipid A that result in equivalent early endotoxin tolerance.

The phenomenon of early endotoxin tolerance, which is induced by sublethal injection of lipopolysaccharide (LPS), results in a protracted period of hyporesponsiveness that is most profound at 3 to 4 days after injection and is marked by reduced cytokine production after a challenge injection of LPS. Early endotoxin tolerance is also induced by the nontoxic LPS derivative monophosphoryl lipid A (MPL), although much more of the monophosphoryl derivative is required to produce a state of tolerance equivalent to that evoked by LPS. In this study, equivalent tolerance-inducing doses of LPS and MPL were tested, and the levels of cytokines induced by LPS and MPL were compared. Although induced levels of colony-stimulating factor were comparable following doses of LPS and MPL that elicited an equivalent state of early endotoxin tolerance, levels of tumor necrosis factor, interleukin-6, and interferon were significantly lower in MPL-injected animals. These results suggest that the lowered toxicity of MPL may be related to its elicitation of significantly lower levels of potentially toxic intermediaries such as tumor necrosis factor, interferon, and interleukin-6.

Animals

Increased levels of interleukin-1 in bronchoalveolar washings from children with bacterial pulmonary infections.

To investigate its role in pulmonary infections, concentrations of interleukin-1 were measured in 22 bronchoalveolar lavage fluid (BALF) samples from 19 children with cystic fibrosis (CF), and in 13 disease controls by enzyme-linked immunosorbent assay (ELISA) for IL-1 beta and the D10.G4.1 proliferation assay for IL-1 activity. Significantly higher levels of IL-1 beta and IL-1 activity were found in BALF from patients with bacterial pulmonary infections than in those without such infection. There was no significant difference between the levels in patients with CF and pulmonary infections and those in children with bacterial infections complicating other diseases. High performance liquid chromatography showed that most of the IL-1 beta was associated with a molecular weight peak of 17 to 18 kD. Pulmonary inflammation reflected by the number of polymorphonuclear leukocytes (PMN) in the sample correlated significantly with the IL-1 concentration.

Bacterial Infections

Regulation of hemopoiesis in myelosuppressed mice by human recombinant IL-1 alpha.

Human rIL-1 alpha was shown to be a potent stimulus of granulopoiesis in mice that have been myelosuppressed with cyclophosphamide. Stimulation of granulopoiesis was demonstrated in IL-1-treated mice by an accelerated recovery of granulocyte-macrophage colony-forming cells, bone marrow and splenic granulocytic hyperplasia, and a profound granulocytosis. Granulopoiesis was stimulated by IL-1 in a dose-dependent manner at doses ranging from 0.5 to 50 micrograms/kg. Maximal increases in granulocytes were observed after 4 days of IL-1 treatment. Mice treated with IL-1 also exhibited increased splenic megakaryopoiesis with a resultant increase in the number of peripheral blood platelets. In contrast to these positive effects on hemopoiesis, bone marrow, but not splenic, erythropoiesis was depressed in IL-1-treated mice. IL-1 effects were observed in mice treated with a wide dose range (50 to 300 mg/kg) of cyclophosphamide, with optimal effects occurring at a dose of 200 mg/kg. The doses of IL-1 leading to enhanced granulopoiesis caused only minor and transient changes in selected clinical chemistry parameters and caused no toxicities that were evident by histologic examination of tissues. The stimulation of granulopoiesis in the absence of overt toxicity suggests that IL-1 may be useful clinically to enhance the recovery of granulocytes in myelosuppressed patients.

Animals

Presence of IL-1 receptors on human and murine neutrophils. Relevance to IL-1-mediated effects in inflammation.

Inflammatory responses are characterized by the infiltration of polymorphonuclear neutrophils (PMN) at the involved site. IL-1 may have an important role in mediating this response, but whether IL-1 acts directly on PMN is controversial. In this study, we examined PMN for the presence of IL-1R and determined the effect of IL-1 on PMN migration in vivo. Thioglycollate, proteose-peptone, or IL-1 elicited peritoneal exudate cells were found to bind 125I-IL-1 alpha in a specific and saturable manner. This binding was localized to the PMN in the exudate. Scatchard plot analysis indicates the presence of approximately 1700 receptors per PMN and an apparent dissociation constant of 3.0 x 10(-10) M. Binding sites for 125I-IL-1 alpha were also found on human PMN prepared from peripheral blood. There are approximately 900 receptors per cell on human PMN with a dissociation constant similar to that observed for elicited murine PMN. Binding of 125I-IL-1 alpha to the mouse and human PMN is inhibited by both recombinant human IL-1 alpha and IL-1 beta, indicating that both IL-1 proteins bind to the same receptor on these cells. Human PMN were able to internalize radioiodinated IL-1. We conclude that PMN possess receptors for IL-1 and that these binding sites may be important in mediating IL-1 effects on granulocytes that are involved in the inflammatory response.

Animals

Stimulation of hematopoiesis and antibacterial resistance by interleukin-1.

The beneficial effects of IL-1 and other cytokines on hematopoiesis and on resistance to infection are profound. IL-1 stimulates proliferation of bone marrow cells in normal mice and potentiates the recovery of peripheral blood neutrophils in mice with drug-induced neutropenia. Prophylactic cytokine administration provides an elevated level of natural resistance to infections which is correlated with increased numbers of phagocytic leukocytes. These studies suggest that IL-1 has potential clinical application as a therapy to limit bone marrow dysfunction and immunosuppression and to augment hematopoiesis and natural immunity. Further research will continue to elucidate the mechanisms whereby interleukins and colony-stimulating factors act, and interact, to promote restoration of leukocyte production and to enhance host resistance.

Animals

A sensitive technique to monitor gene transfer and expression in bone marrow stem cells.

The polymerase chain reaction technique (PCR), a primer-mediated enzymatic amplification of specific target sequences, was used to monitor gene transfer into hematopoietic progenitor stem cells. A gene coding for human interleukin 1 alpha (IL-1 alpha) was cotransfected with the rous sarcoma virus (RSV) CAT plasmid into mouse bone marrow cells by electroporation. Individual chloramphenicol (CAM)-resistant bone marrow progenitor colonies (granulocyte-macrophage colony-forming units; CFU-GM) containing 50-100 cells were analyzed by PCR for the presence and expression of IL-1 alpha and CAT sequences. Amplified IL-1 alpha DNA sequences were detected from a 50-cell CFU-GM colony. CAT and IL-1 alpha RNA expression was demonstrated from the CAM-resistant CFU-GM colonies.

Animals

Inhibition of spontaneous proliferation of human leukemic B cells from patients with chronic lymphocytic leukemia by anti-mu antibodies.

In a monoclonal system, F(ab')2 fragments of rabbit anti-mu antibody (anti-mu) were found to inhibit the proliferation and differentiation of highly purified E-rosette-negative largely leukemic B cells from two patients with chronic lymphocytic leukemia (CLL). Leukemic B cells from these two patients, in contrast with the majority of patients with CLL, exhibited high spontaneous proliferation in culture medium alone. This spontaneous proliferation was significantly inhibited by moderate concentrations of anti-mu (10-50 micrograms/ml). In contrast, lower concentrations of anti-mu (0.6-1.2 micrograms/ml) induced proliferation of leukemic B cells. Conditioned media (CM), derived by stimulation of human peripheral blood mononuclear leukocytes with phytohemagglutinin, induced significant proliferation of these leukemic B cells. This induced proliferation at optimal CM concentrations was inhibited by anti-mu. However, at high CM concentrations, which did not cause significant proliferation, synergism between CM and anti-mu in inducing proliferation was observed. Stimulation of spontaneously proliferating leukemic B cells with CM resulted in differentiation into cells synthesizing and secreting immunoglobulin M (IgM) but not IgG. This IgM production was also inhibited by anti-mu.

Antibodies, Anti-Idiotypic

Induction of differentiation of the human leukemia cell line, KU812.

We treated KU812 cells from different passage levels with compounds which induce differentiation of other leukemic cell lines. Early passages contained small subpopulations of basophil and erythrocyte-like cells, but later passages consisted of more uniform cells with a myelomonocytic phenotype. When cultured with 1 nM actinomycin D, the cells became nonproliferative, developed pale cytoplasm and segmented nuclei, and lost nonspecific esterase activity. Thus, KU812 cells can be induced to mature to cells with a myelomonocytic phenotype. However, their expression of previously reported basophil characteristics diminishes with continued passage, and may be a capability of only a subpopulation of the cells.

Cell Differentiation

Interleukin 1 alpha and interleukin 1 beta bind to the same receptor on T cells.

Pure, E. coli-derived recombinant murine interleukin 1 alpha (IL 1 alpha) was labeled with 125I and used for receptor binding studies. The 125I-IL 1 binds to murine EL-4 thymoma cells in a specific and saturable manner. Scatchard plot analysis for binding studies carried out at 4 degrees C reveals a single type of high affinity binding site with an apparent dissociation constant of approximately 2.6 X 10(-10) M and the presence of approximately 1200 binding sites per cell. The rate of association of the 125I-IL 1 with EL-4 cells is slow, requiring more than 3 h to reach apparent steady state at 4 degrees C. Cell-bound 125I-IL 1 cannot be dissociated from EL-4 cells upon removal of unbound 125I-IL 1 and incubation of the cells at 4 degrees C in the presence or absence of unlabeled IL 1. Unlabeled recombinant murine IL 1 competes for 125I-IL 1 binding in a dose-dependent manner, whereas interferon-alpha A, interleukin 2 (IL 2), epidermal growth factor, and nerve growth factor have no effect. The 125I-IL 1 binding site is sensitive to trypsin, suggesting that it is localized on the cell surface. We have also examined the ability of purified recombinant human IL 1 alpha and IL 1 beta to compete for binding of the radiolabeled murine IL 1 to its receptor and to stimulate IL 2 production by EL-4 cells. Previous reports have shown that human IL 1 alpha is approximately 60% homologous in amino acid sequence with murine IL 1, but that human IL 1 beta is only about 25% homologous with either murine IL 1 or human IL 1 alpha. Despite these marked differences, however, we report here that both human IL 1 proteins are able to recognize the same binding site as mouse IL 1. In addition, murine as well as both human IL 1 proteins stimulate IL 2 production by EL-4 cells.

Animals

Recombinant human interleukin 1 alpha: purification and biological characterization.

Interleukin 1 (IL 1) is a polypeptide hormone produced by activated macrophages that affects many different cell types involved in immune and inflammatory responses. The cloning and expression of a murine IL 1 cDNA in Escherichia coli encoding a polypeptide precursor of 270 amino acids has been reported, and expression of the carboxy-terminal 156 amino acids of this precursor in E. coli yields biologically active IL 1. By using the murine IL 1 cDNA as a probe, we have isolated its human homolog from cDNA generated to lipopolysaccharide-stimulated human leukocyte mRNA. Nucleotide sequence analysis of this cDNA predicts a protein of analysis of this cDNA predicts a protein of 271 amino acids (termed IL 1 alpha) which shows congruent to 61% homology to its murine counterpart but only 27% homology to a recently characterized human IL 1 precursor (IL 1 beta). We have expressed the carboxy-terminal 154 amino acids of IL 1 alpha in E. coli, purified this protein to homogeneity, and have compared it with pure recombinant murine IL 1 in several different IL 1 assays based on murine and human cells. Recombinant IL 1 is capable of stimulating T cell and fibroblast proliferation and inducing fibroblast collagenase and prostaglandin production, thus proving that a single molecule has many of the activities previously ascribed to only partially purified IL 1 preparations. Our results indicate that there exists a family of at least two human IL 1 genes (alpha and beta) whose dissimilar protein products have similar biological activities.

Amino Acid Sequence