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Decrease in neutrophil migration induced by endotoxin and suppression of interleukin-1 production by macrophages in lactic dehydrogenase virus-infected mice.

Neutrophil (PMN) migration into the peritoneal cavity after intraperitoneal injection of lipopolysaccharide (LPS), chemotactic activity of PMN, interleukin-1 (IL-1) production by macrophages (M phi) and its ability to attract PMN in mice chronically infected with lactic dehydrogenase virus (LDV) were compared with those in uninfected control mice. PMN migration into the peritoneal cavity decreased in infected mice when LPS was injected intraperitoneally. PMN chemotactic activity did not show any difference following infection. To assess the mechanism of this decreased PMN migration, IL-1 production, which is responsible for PMN attraction, was studied in LDV-infected mice. IL-1 production by M phi derived from infected mice decreased and its ability to attract PMN was weak. IL-1 production by M phi from control and infected mice increased after treatment by indomethacin and LPS. PMN migration into the peritoneal cavity increased after treatment with indomethacin and LPS in both control and infected mice. However, the rate of increase of IL-1 production and PMN migration was greater in infected mice. These results suggest that the excess activation of cyclo-oxygenase-derived products (prostaglandins) in infected mice might be responsible for the suppression of IL-1 production by M phi, resulting in decreased PMN migration induced by endotoxin.

Animals↗

Lactic dehydrogenase virus infection prevents development of anti-nuclear antibody in (NZB x NZW)F1 mice; role of prostaglandin E2 and macrophage Ia antigen expression.

Persistent lactic dehydrogenase virus (LDV) infection prevents the development of antinuclear antibody (ANA) in (NZB x NZW)F1 mice. To assess the suppressive mechanisms, we focused on the role of the E series of prostaglandin(PGE), since previously we have shown enhanced production of PGE by macrophages from chronically LDV-infected mice. Treatment with PGE2 suppressed ANA titres more markedly in non-infected mice than in LDV-infected mice. Indomethacin enhanced ANA titres more markedly in LDV-infected mice than in non-infected mice. The number of Ia antigen positive(Ia+) macrophages was less in LDV-infected mice than in uninfected mice. The number of Ia+ macrophages was decreased in non-infected mice by PGE2 treatment and increased in LDV-infected mice by indomethacin treatment. These results suggest that the low ANA production in LDV-infected (NZB x NZW)F1 mice may be related to the decreased number of Ia+ macrophages and that one of the factors responsible for suppression of Ia+ macrophages may be the enhanced PGE2 production in the LDV-infected mice.

Animals↗

[The LDH virus and changes in cellular immunity in schizophrenics and their relatives].

In a long-term investigation the authors investigated in a group of schizophrenics and their grade 1 relatives the immunological response to schizophrenic cortex (from the frontal and temporal lobe) and to LDH viral antigen (lactate dehydrogenase virus). In the group of 261 subjects (84 patients, 60 parents, 37 siblings) a significant increase of a certain type of cytophil antibodies was detected, manifested by positive reactivity to gray matter of the schizophrenic and healthy brain, not only in patients but also in their parents and siblings who were healthy from the clinical and psychiatric aspect. At the same time a highly positive immune response to the LDH viral antigen was found not only in patients but also in their relatives. In some positive subjects, in particular as regards the viral antigen, the number of non-adhered cells in the LAI test (Leucocyte adherence inhibition) exceeded 100% which suggest leucocyte proliferation. Microscopic examination revealed repeatedly that during two-hour leucocyte incubation with antigen at 37 degrees C in these subjects enhanced mitotic leucocyte division occurs. This finding was recorded in 22% of all positive schizophrenics and in 13% of the parents; in healthy siblings (although they had a positive immune response to the viral antigen) direct cell division did no occur in any of the cases. Assessment of circulating immune complexes revealed positive values in a total of 93% of all investigated subjects. As compared with controls (80 mentally and physically healthy blood donors), the mean levels are more than double and the difference is highly significant (P less than 0.0001).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Suppression of development of diabetes in NOD mice by lactate dehydrogenase virus infection.

It has been reported that lactate dehydrogenase virus (LDV) selectively infects a subpopulation of macrophages, thereby affecting the immune system. We studied the effects of LDV infection on the development of diabetes in non-obese diabetic (NOD) mice. Five-week-old female NOD mice were infected with LDV (10(8) ID50/mouse) and observed until 23 weeks of age. None of the 21-LDV-infected mice developed diabetes, whereas 10/14 (71.4%) uninfected mice did. Although the subpopulations of T cells and the percentage of Mac1-positive cells in the NOD murine spleen and the number of harvested peritoneal macrophages were unaffected by LDV infection, the proportions of Ia-positive peritoneal macrophages were significantly decreased in LDV-infected compared with uninfected mice (1.1 +/- 0.2%, 6.5 +/- 2.9%; P < 0.01). In LDV-infected NOD mice, insulitis of the same grade as that seen in uninfected NOD mice was observed. In another experiment, 3, 5, 10 or 16-week-old female NOD mice were infected with LDV. None of the mice infected with LDV at 3, 5 or 10 weeks of age developed diabetes and only one of six infected at 16 weeks of age did. These findings indicate that LDV infection suppresses the development of diabetes in female NOD mice by reducing the capacity of Ia-positive macrophages, and suggest that the development of human type 1 diabetes may be suppressed by certain viral infections.

Animals↗

Distribution along the axon and into various subcellular fractions of molecules labeled with (3H)leucine and rapidly transported in the garfish olfactory nerve.

The distribution of molecules labeled with [3H]leucine by fast axoplasmic transport in vivo has been studied in the garfish olfactory nerve after incorporation of the amino acid by the olfactory mucosa. Owing to the size of the nerve, it has been possible to follow the fate of the labeled molecules in 10 different subcellular fractions of 6 consecutive nerve segments. Each segment represents a different part of the profile developed by the transported radioactive molecules. In order to determine the influence of the perikaryon (rate of protein synthesis and rate of protein release into the axon) transport was studied under 3 different conditions: (1) intact nerves (simply labeled with [3H]leucine); (2) nerves cut from the cell bodies 6 h after application of [3H]leucine; and (3) nerves pulse-chase labeled for 1 h. Several conclusions can be drawn. (1) The bulk of the rapidly transported molecules are membranous axonal proteins, as determined by enzyme markers. Most are found in subcellular fractions representing 17% of the total axonal protein. They are synthesized very rapidly in the cell bodies (less than 1 h after isotope deposition) and exhibit the highest specific activities measured. These high specific activities were found in the same axonal membrane fractions in both plateau and crest, suggesting that the membrane precursors are transported as particles rather than as subunits. (2) The majority of these proteins are released into the axon immediately after synthesis; however, at least 30% of the labeled axonal membranous proteins are not released with the fast wave itself but progressively over a long period of time. (3) The majority of the moving material, particularly in membranous fractions, is left behind the fast wave and is deposited in the axon. When the front base of the fast wve has covered 70% of the total nerve length, only 19% of the labeled material of the main axonal membranous fraction appears still to be moving. (4) Proteins with high specific activities are found near the cell bodies and may be the result of early axonal transport of amino acids, diffusing later into the surrounding cells and being incorporated into proteins. Some free amino acids are also transported along the axon.

Acetylcholinesterase↗

Effect of prostaglandin E2 on plasma lactic dehydrogenase activity in (NZB x NZW)F1 mice with a chronic infection of lactic dehydrogenase virus.

The effect of prostaglandin E2(PGE2) on blood LDH values was investigated in (NZB x NZW)F1 mice with or without an established infection with lactic dehydrogenase virus (LDV). Plasma LDH decreased in infected mice treated with PGE2, but increased in infected mice treated with indomethacin, an inhibitor of PGE2. However no significant effect on LDH occurred in uninfected mice treated with PGE2 or indomethacin. To investigate the mechanisms of decreased LDH activities resulting from treatment with PGE2, clearance tests were performed. Clearance of LDH-5, but not LDH-1, was faster in PGE2-treated mice than in non-treated mice, whether or not they were infected with LDV. The results suggest that enhanced clearance of LDH-5 in mice treated with PGE2 may account for the fall in plasma LDH in LDV-infected mice.

Animals↗

Enhanced clearance of lactic dehydrogenase-5 in severe combined immunodeficiency (SCID) mice: effect of lactic dehydrogenase virus on enzyme clearance.

The lactic dehydrogenase (LDH) level in plasma and the clearance of LDH in C.B-17 scid (severe combined immunodeficiency; SCID) mice were compared with those in C.B-17 or BALB/cCrSlc mice with or without lactic dehydrogenase virus (LDV) infection. The resting enzyme level in SCID mice showed little difference from that in C.B-17 or BALB/cCrSlc mice. The degree of increased plasma LDH level in SCID mice was lower than that in C.B-17 and BALB/cCrSlc mice after LDV infection. To assess the mechanisms of decrease in LDH elevation in SCID mice infected with LDV, virus replication was compared in SCID and BALB/cCrSlc mice. The infectivity titre of plasma in SCID mice was higher (more than 10 times) than that in BALB/cCrSlc mice. Moreover, the percentage of virus antigen positive Kupffer cells was higher in SCID mice than that in BALB/cCrSlc mice. The level of endogenous LDH release as a result of carbon tetrachloride treatment was similar in the SCID and BALB/cCrSlc mice. The clearance rate of endogenous LDH was greater in SCID mice than in BALB/cCrSlc mice with or without LDV infection. The rate of clearance of intravenously injected porcine LDH-5, but not porcine LDH-1, was enhanced in SCID mice as compared with that in BALB/cCrSlc mice. Furthermore, carbon clearance was higher in SCID mice than that in BALB/cCrSlc mice. These results suggest that the smaller increase of plasma LDH after infection might be due, at least in part, to the enhanced LDH-5 clearance function by macrophages in SCID mice.

Animals↗

Flow cytometry to identify cell types to which enzymes bind. Effect of lactic dehydrogenase virus on enzyme binding.

Flow cytometry was used to measure the binding of enzymes (i.e. lactate dehydrogenases 1 and 5, malate dehydrogenase, and asparaginase) to cells. Of the four enzymes studied, asparaginase showed the greatest binding. Single color analysis revealed that asparaginase bound best to preparations enriched in macrophages, and dual color analysis showed that the binding was to macrophages. Studies on continuous cell lines revealed that asparaginase bound to one mouse macrophage line, but not to another or to murine fibroblasts. Inoculation of mice with lactic dehydrogenase virus, a virus that infects macrophages, decreased the in vivo clearance of asparaginase from the circulation and the in vitro binding of asparaginase to peritoneal macrophages. It is concluded that flow cytometry can be used to study the binding of enzymes to cells, to identify the cell type to which the enzyme binds, and to measure changes in the capacity of cells to bind enzymes.

Animals↗

Matching of chemotherapy to mouse strain and lymphoid tumor type to prevent tumor-induced suppression of specific T- and B-cell functions.

Specific immunological and hematopoietic functions were studied during treatment with antineoplastic agents in mice bearing syngeneic lymphoid tumors: 70Z/2, a B-cell lymphoma of C57BL X DBA/2 F1 (hereafter called (BD2F1) mice; EL4, a T-cell lymphoma of C57BL/6 mice; or J774, a macrophage tumor of BALB/c mice. Both B- and T-lymphocyte function (antibody-forming cells and cell-mediated lymphocyte lympholysis toward alloantigens) were suppressed in spleen cells of mice bearing these tumors. Other hematopoietic functions (granulocyte, macrophage, and megakaryocyte progenitor cells) were variably influenced by growth of these lymphoid tumors. J774 enhanced, but 70Z/2 suppressed, megakaryocyte progenitor cells. J774 and 70Z/2 increased levels of granulocyte-macrophage progenitor cells. EL4, the T-cell lymphoma, did not influence either cell type. Significant variation in strain sensitivity to drug toxicity and drug effectiveness in different tumor-host systems was observed. Increased median survival time with reversal of tumor-induced immune dysfunction, without toxicity to hematopoietic progenitor cells, was realized in two tumor-host-drug combinations. Polyinosinic-polycytidylic acid was effective against J774, while actinomycin D was active against 70Z/2. Mitomycin C effectively reduced tumor load, as evidenced by loss of splenic tumor colony-forming cells for all three tumors. This agent prolonged survival and concomitantly restored immunological responsiveness in hosts immunosuppressed by growth of 70Z/2 or J774. Paralleling tumor reduction with mitomycin C therapy, the splenic hematopoietic progenitor and colony-forming B-cells were reduced in tumor-bearing and tumor-free mice, thus compromising its therapeutic effectiveness. 1-beta-D-Arabinofuranosylcytosine reduced tumor load with marginal toxicity toward hematopoietic progenitor and colony-forming B-cells. However, immune responsiveness was only partially restored, and median survival was not increased. The results presented show the diversity of therapeutic drug effectiveness in increasing mean survival time and influencing other life-sustaining parameters (immunological and hematopoietic functions).

Animals↗

Correlation of extracts obtained by high efficiency gel chromatography of lactic dehydrogenase virus infected mouse serum and cytosol from human tumors using leukocyte adherence inhibition assay.

Immunochemically active fractions were obtained using Separon Hema-300-glc(R) from serum of lactic dehydrogenase virus (LDV) infected mice and from homogenates of human tumors. The mixture of proteins of tumorous origin from the cytosol giving a positive reaction in the leukocyte adherence inhibition (LAI) test was found in the same fractions showing maximum of absorbance at 340 nm in the spectrophotometer and a corresponding peak in the refractometer. Analogous peaks were not proved in material obtained from healthy controls, but they were found in some human placentas and fetal organs. The LDV fraction obtained from mouse serum served as a "control" antigen in LAI test for human tumor testing, and results corresponded with those obtained using cytosol specific for the tumor under study.

Animals↗

Immunodepression, ascites tumour and lactate dehydrogenase virus.

The delayed hypersensitivity (DH) response to picryl chloride was studied in Ehrlich ascites tumour-bearing and normal control mice. A significant depression of the DH response was found in the tumour-bearing mice, which was associated with a marked elevation of serum lactate dehydrogenase (LDH). Depression of DH was also observed in mice receiving cell-free ascitic fluid. These mice also showed an elevated serum LDH which is assumed to be associated with the lactate dehydrogenase virus. A method for assaying DH in vivo is described.

Animals↗