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[Ultrastructural organization of the hypothalamic medial preoptic area and its changes under the effect of pyrogens].

In order to study structural bases of central mechanisms of thermoregulation, a comparative electron microscopic analysis of various cellular groups in one of thermosensitive zones of the cat hypothalamic area--the medial preoptic area--have been carried out under conditions of experimental fever. The latter is produced by injection of pyrogen of bacterial origin--pyrogenal--to the animals. Pyrogenal, increasing the body temperature, produces a stimulatory effect on various cellular elements, first of all on leucocytes, monocytes and macrophages in the medial preoptic area, as well as on endotheliocytes of the terminal vessels. Under pyrogenal effect activation of microglial cells and pericytes also takes place, and as a result of the rearrangements, occurring in the structure, they change into macrophages. This is an evidence of their active participation in the immune protection of the brain. According to the data from other investigations, all these activated cells produce peptide interleukin-1, one of the mediators of fever and stimulator of the immune system. Pyrogenal is stated to produce a stimulating effect on the astroglia and on some neurons of the medial preoptic area, that respond with cytoplasm increase and accumulation of numerous organelles. The reactive changes at fever in some neurons of the medial preoptic area can demonstrate that they belong to the thermosensitive pool. A conclusion is made, concerning a complex effect of pyrogenal, that results in a cooperative response of a number of cellular systems of the organism.

Animals

Studies on the production of endogenous pyrogen by rabbit monocytes: the role of calcium and cyclic nucleotides.

Rabbit monocytes stimulated with endotoxin produced endogenous pyrogen, even under conditions of high or low extracellular calcium concentrations. Maximal production occurred when the concentration was in the near-physiological range. Prolonged incubation of cells with a calcium chelator prevented subsequent activation with endotoxin, an effect which was rapidly reversible by re-addition of calcium but not other cations. Addition of small amounts of lanthanum, which acts as a calcium channel blocker, prevented the restoration of pyrogen production, indicating that entry of the added calcium into the monocyte was required. Incorporation of a calcium ionophore into the cell membrane did not stimulate pyrogen production, and no measurable influx or efflux of calcium occurred during stimulation with endotoxin. These observations suggest that a slowly exchangeable calcium pool is necessary for the production of endogenous pyrogen, but that a rise in intracellular calcium is not by itself a necessary or sufficient stimulus. This stands in contrast to other biological systems in which Ca2+ directly couples stimulus and hormone secretion. Incubation of cells with agents shown to increase cyclic 3',5' AMP or cyclic 3',5' GMP levels in monocytes similarly did not stimulate pyrogen production or modulate its production by endotoxin stimulation. Thus, cyclic nucleotides also did not play a detectable role as intracellular messengers in this system. Future work is required to define more clearly the mechanism for the production of endogenous pyrogen, given its marked effects on the immune system through lymphocyte activation and temperature regulation.

Animals

Pyrogen tests of infusions, blood anticoagulant solutions, plastic materials and rubber products.

The methods of the pyrogen test in rabbit as adopted by the authors are presented. The test includes positive and negative controls. The conditions of using the same rabbits on two consecutive days are discussed. Methods of sampling of sterile infusions and the preparation for pyrogen test of anticoagulant solutions containing citrate, phosphate and/or edetate ions are presented. The necessity of pyrogen control of distilled water is stressed. Attention is called on the importance of testing for pyrogenicity of the plastic materials and the rubber-wares to be applied during the production of anticoagulant solutions and infusions. A pyrogen test highly sensitive for detecting traces of detergent is applied for washed glassware. It is emphasized that sensitive pyrogen tests are indispensable not only when new derivatives are being introduced, but also during routine control, because occasional changes in the manufacturer's technology may sometimes be demonstrable in this way.

Animals

Differences in endogenous pyrogen fevers induced by iv and icv routes in rabbits.

We have compared the characteristics of fevers produced by endogenous pyrogen administered by the intravenous (iv) and by the intracerebroventricular (icv) routes in conscious rabbits. Fevers induced by the intracerebroventricular route have a longer latency to onset, a less steep rise in body temperature, and a longer time to peak elevation in body temperature than do fevers induced by the intravenous route. Furthermore, a dose of indomethacin (2 mg/kg) administered intravenously, which is effective in markedly attenuating fevers produced by the intravenous route, was completely without effect on fevers induced by the intracerebroventricular route. On the other hand, when indomethacin (500 micrograms) was infused intracerebroventricularly, it markedly reduced fevers induced by the subsequent injection of endogenous pyrogen into the contralateral cerebral ventricle, but such pretreatment had little effect on fevers elicited by intravenous injections of endogenous pyrogen. It is concluded that the sites of action of endogenous pyrogen in response to intravenous injections of pyrogen are different from those responding to intracerebroventricular injections of pyrogen and that this is manifest in several distinct differences in the characteristics of the two fevers. These results indicate that the intracerebroventricular model of fever production is not appropriate for the study of the normal pathogenesis of fever.

Animals

Lack of pyrogenic tolerance transmission between brain and periphery in the rabbit.

Successive injections of lipopolysaccharide (LPS) either intravenously (i.v.) or intracerebroventricularly (i.c.v.) induced pyrogenic tolerance to LPS in rabbits. Tolerance was shown by a decrease of the magnitude of the fever response to repeated doses of LPS, irrespective of the route of pyrogen administration. A significantly greater and more dramatic decrease of the fever index, however, was observed in rabbits made tolerant to pyrogen given i.v. than when the pyrogen was given i.c.v. Transmission of the pyrogenic tolerance between brain and peripheral tissues, however, has not been ascertained.

Animals

Interleukin-6 as an endogenous pyrogen: induction of prostaglandin E2 in brain but not in peripheral blood mononuclear cells.

Fever induced by endogenous as well as exogenous pyrogens is often prevented by cyclooxygenase inhibitors; endogenous pyrogens stimulate prostaglandin E2 (PGE2) in or near the thermoregulatory centers of the brain. The cytokines, interleukin-1 (IL-1) and tumor necrosis factor (TNF), are two pyrogens which stimulate brain PGE2 formation during fever and also increase PGE2 synthesis in human mononuclear cells in vitro. In the present study, we examined whether interleukin-6 (IL-6) stimulates PGE2 formation in a manner similar to IL-1 and TNF. Both glycosylated and non-glycosylated forms of recombinant human IL-6 were tested. Following intravenous injection into rabbits, the glycosylated IL-6 was more pyrogenic than the non-glycosylated form and there was no evidence of synergy in the production of fever when IL-6 and IL-1 were given simultaneously. IL-6 fever was blocked by prior administration of the cyclooxygenase inhibitor ibuprofen. IL-6 was also pyrogenic in the cat by either the systemic or the intraventricular route. However, in both species, IL-6 was less effective than IL-1 beta. When given intraventricularly to cats, IL-6 produced an increase in PGE2 levels of the cerebrospinal fluid in parallel with the rise in body temperature. In the latter respect, IL-6 imitated IL-1 beta; however, IL-6 from 0.15-15 micrograms/ml did not increase mononuclear cell PGE2 production in vitro whereas IL-1 beta induced 20-30-fold increases in PGE2 at 100 ng/ml.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Colchicine stimulation of pyrogen production by human blood leukocytes.

The effect of colchicine, an anti-inflammatory agent, on endogenous pyrogen (EP) production by human blood leukocytes in vitro was examined. Colchicine not only failed to suppress EP production by human leukocytes stimulated by phagocytosis, but, in the absence of other stimuli, micromolar concentrations of the drug induced pyrogen production and release by both polymorphonuclear (PMN) and mononuclear leukocytes. The response was dose related, occurring at concentrations above 0.1 muM. Colcemid and vinblastine, other agents which bind to microtubular protein, also induced pyrogen release from human leukocytes, whereas lumicolchicine, a light-alerted derivative of colchicine without affinity for microtubules, was ineffective. Colchicine did not induce EP production by rabbit leukocytes, even at 100 muM concentration. Studies of the mechanism of PMN leukocyte activation by Colcemid indicated that although the time required for contact between drug and leukocyte was brief, pyrogen production and release did not begin for 6 or more hours. If added during this time, puromycin prevented subsequent production and release of pyrogen. These results indicated that agents which interfere with the assembly of microtubules induce EP production and secretion by human leukocytes in vitro.

Animals

Tumor necrosis factor (cachectin) is an endogenous pyrogen and induces production of interleukin 1.

Recombinant human tumor necrosis factor (rTNF alpha) injected intravenously into rabbits produces a rapid-onset, monophasic fever indistinguishable from the fever produced by rIL-1. On a weight basis (1 microgram/kg) rTNF alpha and rIL-1 produce the same amount of fever and induce comparable levels of PGE2 in rabbit hypothalamic cells in vitro; like IL-1, TNF fever is blocked by drugs that inhibit cyclooxygenase. At higher doses (10 micrograms/kg) rTNF alpha produces biphasic fevers. The first fever reaches peak elevation 45-55 min after bolus injection and likely represents a direct action on the thermoregulatory center. During the second fever peak (3 h later), a circulating endogenous pyrogen can be shown present using passive transfer of plasma into fresh rabbits. This likely represents the in vivo induction of IL-1. In vitro, rTNF alpha induces the release of IL-1 activity from human mononuclear cells with maximal production observed at 50-100 ng/ml of rTNF alpha. In addition, rTNF alpha and rIFN-gamma have a synergistic effect on IL-1 production. The biological activity of rTNF alpha could be distinguished from IL-1 in three ways: the monophasic pyrogenic activity of rIL-1 was destroyed at 70 degrees C, whereas rTNF alpha remained active; anti-IL-1 neutralized IL-1 but did recognize rTNF alpha or natural cachectin nor neutralize its cytotoxic effect; and unlike IL-1, rTNF alpha was not active in the mitogen-stimulated T cell proliferation assay. The possibility that endotoxin was responsible for rTNF alpha fever and/or the induction of IL-1 was ruled-out in several studies: rTNF alpha produced fever in the endotoxin-resistant C3H/HeJ mice; the IL-1-inducing property of rTNF alpha was destroyed either by heat (70 degrees C) or trypsinization, and was unaffected by polymyxin B; pyrogenic tolerance to daily injections of rTNF alpha did not occur; levels of endotoxin, as determined in the Limulus amebocyte lysate, were below the minimum rabbit pyrogen dose; and these levels of endotoxin were confirmed by gas chromatography/mass spectrometry analysis for the presence of beta-hydroxymyristic acid. Although rTNF alpha is not active in T cell proliferation assays, it may mimic IL-1 in a T cell assay, since high concentrations of rTNF alpha induced IL-1 from epithelial or macrophagic cells in the thymocyte preparations. These studies show that TNF (cachectin) is another endogenous pyrogen which, like IL-1 and IFN-alpha, directly stimulate hypothalamic PGE2 synthesis. In addition, rTNF alpha is an endogenous inducer of IL-1.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

The pyrogenicity of the synthetic adjuvant muramyl dipeptide and two structural analogues.

The pyrogenic efect of the synthetic adjuvant N-acetylmuramyl-L-alanine-D-isoglutamine, also known as muramyl dipeptide (MDP), was studied in rabbits. MDP induced biphasic fevers in rabbits, but two structural analogues, N-acetylmuramyl-L-alanine-D-glutamic acid (MDPA) and the dimethylester of MDPA, were 10 times less pyrogenic. This finding was supported by studies in which MDP and its analogues released leukocytic pyrogen (LP) from rabbit phagocytic cells in vitro. In addition, MDP released LP from human phagocytes. Human phagocytes, however, required a 10-fold greater concentration of MDP than did rabbit cells. The structural analogues were similarly less effective than the parent molecule in releasing LP from human cells. All preparations of MDP were negative in the limulus amebocyte lysate test and failed to show pyrogenic cross-tolerance with bacterial endotoxin. Thus MDP, which is a pyrogenic molecule, is also able to release LP from rabbit phagocytes and to a lesser degree from human phagocytes, but does not cause gelation of limulus amebocyte lysate.

Acetylmuramyl-Alanyl-Isoglutamine

The production of antibody against human leukocytic pyrogen.

Human peripheral blood leukocytes were stimulated with killed staphylococci in vitro to release leukocytic pyrogen (LP). Supernates from these stimulated leukocytes were concentrated, emulsified in Freund's complete adjuvant, and injected intradermally into rabbits. After seven monthly booster injections, rabbit antiserum destroyed the pyrogenic activity of human LP, and the titer of this neutralizing ability increased in the subsequent 7 mo. The pyrogen-neutralizing capacity of the rabbit antiserum was recovered in the globulin fraction, the IgG and IgM peaks of Sephadex G-200, and the acid-eluted fraction of a goat anti-rabbit IgG immunoadsorbant. The neutralizing antibody was specific for human LP inasmuch as it had no effect on rabbit, guinea pig, or monkey LP. When coupled to Sepharose, this antibody bound human LP; after acid elution from this immunoadsorbant, LP was recovered without loss of biologic or chemical characteristics. The antiserum was also absorbed with stimulated leukocyte supernates which did not contain LP, and this had no effect on the titer of anti-LP. Crude human LP, eluted from immunoadsorbant columns prepared from absorbed antiserum, contained significantly reduced contaminating protein when evaluated by polyacrylamide gel electrophoresis. These studies have established that specific antibody to human leukocytic pyrogen can be produced. This antibody is useful in the further study and purification of leukocytic pyrogen and its role in the pathogenesis of human fever.

Animals

Characterization of the pyrogenicity of two different lipopolysaccharides and their lipid A-bovine serum albumin complexes.

In order to elucidate the dependency of pyrogenicity of lipopolysaccharide (LPS) on the lipid A structure, we investigated the pyrogenicity of both LPS and lipid A prepared from Mima polymorpha var. oxidans which is deficient in 3-hydroxymyristic acids linked to the 3-hydroxy group of other fatty acids. LPS and lipid A were also prepared as reference compounds from Escherichia coli UKT-B. Furthermore, the establishment of reliable indices for pyrogenicity was undertaken. The following results were obtained. The correlation in linearity was demonstrated between maximal increase in body temperature (delta Tmax) and dose of LPS or lipid A complexed with bovine serum albumin (BSA). The dose-response curves based on delta Tmax were more reliable statistically than the Fever Index-4h representing the area under fever curves for 4 h. The minimum pyrogenic dose (MPD) of E. coli LPS was 1.6 X 10(-3) micrograms/kg i.v. In contrast, the MPD of M. polymorpha LPS was 7.0 X 10(-3) micrograms/kg i.v. By intracisternal injection, the MPD of E. coli LPS was 2.5 X 10(-6) micrograms/kg and that of M. polymorpha LPS 1.0 X 10(-4) micrograms/kg. The end points of Limulus amoebocyte lysate gelation were 10(-5) micrograms/ml in E. coli LPS and 10(-3) micrograms/ml in M. polymorpha LPS. The MPDs of lipid A/BSA complexes by i.v. injection were 0.15 micrograms/kg in E. coli and 2.5 micrograms/kg in M. polymorpha. The rabbits immunized with E. coli lipid A/BSA complex acquired pyrogenic tolerance to the parent LPS but the cross tolerance to M. polymorpha LPS was not observed.(ABSTRACT TRUNCATED AT 250 WORDS)

Acinetobacter

Pyrogen from mouse macrophages causes fever in mice.

Mouse peritoneal macrophages, after phagocytosis, release an endogenous (leucocyte) pyrogen. Intravenous injection of stimulated cell culture supernatant produces a prompt, monophasic fever in mice maintained in a 35 degree environment. The pyrogen is distinct from endotoxin, and resembles cell pyrogens of other species in heat-lability and pronase sensitivity. Human leucocyte pyrogen produces identical responses in mice. Measurement of fever in mice appears to provide a sensitive biological assay for endogenous pyrogens.

Animals

[Effect of cytostatic drugs on fever development following administration of bacterial pyrogen].

A study was made of the development of pyretic reaction to the administration of a bacterial lipopolysaccharide (pyrogenal) after preliminary treatment of rabbits with actinomycin D and cortisone. Such treatment failed to change the reactivity of thermoregulating centres to the endogenous pyrogen. Intravenous injection of bacterial pyrogen was followed by marked shortening of pyretic reaction; the reaction was markedly inhibited in response to its intracysternal administration. An important role played by polymorphonuclear leukocytes in the formation of endogenous pyrogens in the mechanism of pyrexia induced by bacterial pyrogens was shown in this work.

Animals

[The effect of leukocyte pyrogen on thermosensitive neurons of the anterior hypothalamus].

Impulse activity of neurons of the medial preoptic and septal brain areas of rabbits caused by variations in the local temperature and systemic injections of the leukocytic and bacterial pyrogens was studied. The firing rate of the warmsensitive neurons decreased and that of the cold thermodetectors was activated as a result of pyrogen action. As compared with the bacterial pyrogen, leukocytic pyrogen caused a more rapid decrease of the warmthermodetector activity. Thermoneutral neurons failed to react considerably either to the leukocytic or to the bacterial pyrogen.

Animals

[The place of pyrogen therapy in the modern treatment of schizophrenia patients].

The author analyses experience gained with the use of the pyrogenic drugs sulfazin and pyrogenal in the treatment of schizophrenic patients. Pyrogenal and sulfazin were administered to 26 patients with different forms of schizophrenia to overcome psychopharmacotherapeutic resistance and to 11 patients to enhance the sensitivity to insulin during insulin coma therapy. Based on the clinical analysis the author demonstrates the efficacy of the use of the pyrogenic drugs, particularly pyrogenal, in schizophrenic patients in order to overcome the resistance to pharmacotherapy and insulin.

Convulsive Therapy

Further studies on the antipyretic action of polymyxin B in pyrogen-induced fever.

A study of the antipyretic effect of polymyxin B was undertaken to determine how this agent reduces fever in rabbits. It involved the effects of the drug: (1) on fever induced by exogenous pyrogenes (E. coli lipopolysaccharide, synthetic double-stranded ribonucleic acid, sodium nucleinate from yeast) and leucocytic pyrogen, (2) on the release of endogenous pyrogen in vivo and in vitro, and (3) on leucocytic and exogenous pyrogens in vitro. The results indicate that polymyxin B produces an antipyretic effect in endotoxin-induced fever primarily by an interaction of this cationic macromolecule with the anionic endotoxin molecule. Further it is likely that polymyxin B inhibits endogenous pyrogen synthesis and/or release from polymorphonuclear leucocytes.

Animals

[Body temperature and the reaction to pyrogenal in germ-free and ordinary animals].

Body temperature, as well as pyrexia in response to pyrogenal in germfree and conventional mice and miniature piglets were studied. A decrease of the mean body temperature in the intact germ-free mice and miniature piglets in comparison with conventional animals of the corresponding species was revealed. The absence of marked pyretic response to pyrogenal after intraperitoneal injections of 10 minimal pyrogenic doses to mice and after intramuscular injections of 500 minimal pyrogen doses of pyrogenal to miniature piglets was observed in germfree animals. The data obtained indicated an important role of autoflora in the development of the organism capacity to temperature reaction and pyrexia.

Animals

Production of endogenous pyrogen.

The production and release of endogenous pyrogen by the host is the first step in the pathogenesis of fever. Endogenous pyrogen is a low-molecular-weight protein released from phagocytic leukocytes in response to several substances of diverse nature. Some of these agents stimulate production of endogenous pyrogen because they are toxic; others act as antigens and interact with either antibody or sensitized lymphocytes in order to induce its production. Some tumors of macrophage origin produce the molecule spontaneously. Whatever the mechanism involved, endogenous pyrogen is synthesized following transcription of new DNA and translation of mRNA into new protein. Once synthesis is completed, the molecule is released without significant intracellular storage. Recent evidence suggests that following release, molecular aggregates form which are biologically active. In its monomer form, endogenous pyrogen is a potent fever-producing substance and mediates fever by its action on the thermoregulatory center.

Animals