
A bidirectional flow of informations exists between the central nervous system and the immune system. Cytokines play a crucial role in this communication and exert several neuromodulatory actions. This short review considers some data concerning the effects of several cytokines, interleukin (IL)-1, IL-2, IL-6 and granulocyte-macrophage colony-stimulating factor on scopolamine-induced amnesia for a passive avoidance response, and on hippocampal neurotransmitter amino acid levels in mice. We interpret these behavioral and biochemical observations to indicate that the cytokine-to-brain communication can result in alterations in brain functions.
The effect of Freund's adjuvant injection on 24-hour variation in circulating ACTH, prolactin, growth hormone (GH) and thyroid-stimulating hormone (TSH) levels, and of hypothalamic norepinephrine (NE) content and dopamine (DA) and serotonin (5HT) turnover was examined in adult rats. In control rats, serum ACTH and prolactin exhibited peak values at the light-dark transition while the maximum in TSH was found in the late afternoon. GH levels did not vary on a 24-hour basis. In Freund's-adjuvant-injected rats, 24-hour variations in TSH levels became blunted while 24-hour variations in prolactin and ACTH persisted. Freund's adjuvant treatment augmented serum ACTH and prolactin levels, and decreased GH and TSH levels. Hypothalamic NE content, and turnover of DA and 5HT varied on a 24-hour basis in rats receiving adjuvant's vehicle. The NE content of the anterior, medial and posterior hypothalamus peaked at 04.00 h, while that of the median eminence attained its maximum at 16.00-20.00 h. Maxima in hypothalamic DA and 5HT turnover occurred at 04.00 h regardless of the region examined. In Freund's-adjuvant-injected rats, reduced amplitude of daily variations of NE content in the median eminence and anterior and medial hypothalamus, as well as a phase advance in the 24-hour rhythm of the posterior hypothalamic NE content were seen. Mycobacterial adjuvant injection also reduced the amplitude of circadian rhythm in hypothalamic 5HT turnover, shifted the maximum in median eminence DA turnover towards light-dark transition, and decreased the amplitude of DA turnover rhythm in the anterior, medial and posterior hypothalamus. Administration of the immunosuppressant drug cyclosporine restored the augmented ACTH and prolactin levels and the depressed GH and TSH levels found in Freund's-adjuvant-injected rats. Cyclosporine was also effective to restore 24-hour rhythmicity of serum ACTH and TSH, but not of prolactin levels. Immunosuppression restored rhythmicity of NE content and of DA and 5HT turnover in anterior, medial and posterior hypothalamic regions. Cyclosporine did not modify the effect of Freund's adjuvant on median eminence but in was able to counteract the changes in the DA and 5HT turnover in the median eminence found after immunization. The results are in accord with a significant effect of immune-mediated inflammatory response at an early phase after Freund's adjuvant injection on ACTH, GH, prolactin and TSH release mechanisms, which was partially sensitive to immunosuppression induced by cyclosporine.
The data reviewed in this study show that immune-active molecules, such as infectious agents and their components, and cytokines, may induce profound alterations in several neurotransmitters in the CNS. The activation of the immune system elicits fever, behavioral and neuroendocrine changes and may be involved in neuropathological changes occurring in CNS conditions. These effects may be achieved through and accounted for by the changes induced in central neurotransmitters and in the neuroendocrine system by immune challenges. The present review will summarize the available evidence of the reciprocal interactions between cytokines and neurotransmitters in the CNS.
The most studied endocrine product of the pineal gland, melatonin, has been reported to be involved in the feedback between neuroendocrine and immune functions and to exert oncostatic action, at least in certain experimental conditions. Melatonin seems to be an integral part of the immune system, by exerting direct and/or indirect stimulatory effects on both cellular and humoral immunity. Likewise, an antitumor activity of melatonin has been shown in several experimental models in vivo and in vitro. The means by which melatonin exerts its effects on immunity and neoplastic growth have not been elucidated. The different putative mechanisms of action of melatonin investigated so far are here briefly discussed.
Immune system alterations coexist with modifications in the reproductive axis. The bacterial endotoxin lipopolysaccharide (LPS) has inflammatory effects and stimulates cytokine release in the hypothalamus where LHRH neurons are located. LPS inhibition of LHRH release at hypothalamic level appears to be associated with modifications in the cerebral immune system. Central and peripheral LPS administration induces the expression and release of several cytokines in the central nervous system. Hence the present study was designed to investigate a possible function of the interleukin-6 (IL-6) stimulated by LPS in the regulation of LHRH secretion. Male rats were decapitated, and the preoptic mediobasal hypothalamic area (PO/MBH) was dissected and superfused with Earle's balanced salt solution. Superfusate fractions were collected at 15-min intervals after a 60-min stabilization superfusion period. LPS (100 ng/ml) and IL-6 receptor antagonist (IL-6ra) were then added to the superfusion medium over 1 h in two different experimental designs: (1) LPS only and (2) LPS followed by IL-6ra, performed in different experiments. This was followed by a washout period. The PO/MBH fragments were then subjected to a 56 mM K+ stimulus. Control PO/MBH fragments were continuously superfused with Earle's solution. As expected, LHRH release was significantly reduced (p < 0.05) during and following exposure to LPS. At the same time, IL-6 concentrations significantly increased in the superfusion medium compared with the control group. IL-6ra significantly (p < 0.01) potentiated the inhibitory effect of LPS on LHRH secretion. On the bases of previous papers indicating a stimulatory effect of IL-6 on LHRH release it could be considered that the potentiation of IL-6ra of the inhibitory effect of LPS on LHRH could be the consequence of the lack of the stimulatory effect of IL-6 on LHRH produced by the receptor antagonist. IL-6ra also increased IL-6 levels measured in medium probably due to a decrease in the metabolization induced by the blockage of the receptors and the consequent accumulation of IL-6 in the media. These results could indicate that IL-6 partly attenuates the inhibitory effect of LPS on LHRH release. These observations indicate that there is an increase in IL-6 release that becomes significant at the same time when LHRH release is decreased. Also, depolarizing concentrations of K+ (56 mM) did not increase IL-6 release, while LHRH release from the hypothalamic fragments was significantly increased. These data suggest that the inhibitory effect of LPS on LHRH release may be explained by the stimulation of other cytokines than IL-6, meanwhile the augmented levels of IL-6 probably released via a nonneuronal source was shown to be higher when LHRH was decreased. This could confirm the stimulatory role of IL-6 on LHRH release.
To obtain further information on the mode of action of interleukin (IL)-1 in modulating gonadotropin secretion, a series of in vivo and in vitro studies has been performed with the beta-isoform of IL-1. IL-1 beta injected in a lateral ventricle of 3-week-castrated female rats resulted in the expected decrease in serum levels of gonadotropins luteinizing hormone (LH), and follicle-stimulating hormone (FSH), accompanied by a decrease in the number of LH-releasing hormone (LHRH) receptors. These results may indicate that the inhibition of gonadotropin release may result from a decrease in the number of LHRH pituitary receptors either through a direct effect on the pituitary or by modulating the release of LHRH from hypothalamic neurons able to induce a reduction in pituitary LHRH receptors. In vitro studies using the GT1-1 cell line, which specifically produces and secretes LHRH, demonstrated that IL-beta stimulates LHRH release but does not influence intracellular levels of LHRH mRNA. These results seem to indicate that IL-1 beta may act at several levels of the nervous machinery leading to gonadotropin secretion, with a series of effects more complex than previously anticipated.
Male rats were grafted an anterior pituitary within breast muscles or received a sham operation on day 5 of life. At the 60th day of life, the sympathetic denervation of rat submaxillary lymph nodes was achieved by a bilateral sympathetic superior cervical ganglionectomy (SCGx; at 15.00 h). Rats were killed either 18 h later (acute SCGx) or after 12 days (chronic SCGx) to measure lipopolysaccharide (LPS)- and concanavalin A (ConA)-induced cell proliferation in submaxillary lymph nodes, submaxillary lymph node cellularity and serum prolactin levels. In control rats, acute SCGx significantly augmented LPS or ConA activity on lymph cells while chronic SCGx had no effect. In pituitary-grafted rats, acute SCGx depressed the mitogenic effect of LPS or ConA whereas chronic SCGx augmented it. A global inhibitory effect of surgical stress on submaxillary lymph node cellularity was found in rats subjected to SCGx or its sham operation 18 h earlier. Serum prolactin levels increased significantly in pituitary-grafted rats, particularly in those subjected to chronic SCGx. In pituitary-grafted rats, a significant effect of acute SCGx was apparent, with serum prolactin levels augmenting about twice in sham-SCGx rats, and to a significantly less extent in acute SCGx rats. The results provide further evidence of the immunomodulatory role of local sympathetic nerves in submaxillary lymph nodes.
Male rats were grafted an anterior pituitary within breast muscles on day 5 or under the kidney capsule on day 30 or 60 of life. On the 70th day of life (rats operated on the 5th or 30th day) or on the 100th day of life (rats operated on the 60th day), rats were injected subcutaneously with Freund’s complete adjuvant, being killed 2 days later. Rats that had received a pituitary graft on the 30th day showed a greater degree of hyperprolactinemia than rats grafted on the 5th or 60th day. Analyzed as main factors in a factorial analysis of variance (ANOVA), pituitary transplants augmented splenic natural killer (NK) activity and lipopolysaccharide (LPS)- and concanavalin A (Con A)-induced cell proliferation, and decreased splenic cell number. As indicated by significant interactions between treatment and age of transplantation in a factorial ANOVA, splenic NK activity augmented in rats grafted on the 30th day of life, while LPS and Con A splenic cell proliferation augmented in rats grafted neonatally. Spleen cellularity decreased after pituitary transplants in 30- and 60-day-old rats. In a second study, the effect of cyclosporine on spleen immune responses was tested by administering cyclosporine (5 mg/kg) or vehicle to rats grafted as in experiment 1 for 5 days before sacrifice. Cyclosporine decreased splenic NK activity and LPS- and Con A-induced cell proliferation regardless of the presence of a pituitary graft. In rats grafted on the 30th day of life, cyclosporine reversed the effect of pituitary grafts on splenic NK activity, and ectopic pituitary augmenting NK activity in vehicle-treated rats while decreasing it in cyclosporine-injected rats. Cyclosporine reversed the inhibitory effect of pituitary transplants on spleen cell number. The high circulating prolactin levels found in rats with pituitary grafts were decreased by cyclosporine administration. The results are compatible with age-dependent promoting and inhibitory effects of hyperprolactinemia on the immune responses of the spleen, which were antagonized by cyclosporine immunosuppression.
Eukaryotic initiation factor 5A (eIF-5A) is the only cellular protein known to contain the unusual amino acid hypusine, a modification that appears to be required for cell proliferation. This hypusine-modified protein stimulates synthesis of methionylpuromycin in an in vitro assay which mimics the formation of the first peptide bond during protein synthesis, although the exact role of eIF-5A in vivo is still unknown. The unexpected finding that eIF-5A is a cellular cofactor of the HIV-1 Rev trans-activator protein may, however, provide a novel opportunity to reveal precisely what function eIF-5A performs in eukaryotic cells. In this review article, we first present a brief description of HIV-1 Rev function, followed by an overview of the data that identified eIF-5A as a Rev cofactor and, finally, discuss novel findings with respect to cellular eIF-5A activities.
The pineal gland conveys photoperiodic information to the brain through its daily pattern of melatonin (MEL) secretion. The duration of MEL secretion is proportional to the duration of the night. To determine the mechanism by which MEL transduces photoperiod, we used a protocol of daily MEL infusion given to sexually active pinealectomized Syrian hamsters. A long MEL signal (10 h) inhibited sexual activity, whereas a 5-hour infusion had no effect. However, animals given a 2.5-hour infusion twice separated by an interval of 3 h produced complete gonadal atrophy. Changes in the time interval between infusions blocked the potency of the MEL infusion, suggesting a tight temporal relationship between MEL signals. Additionally, the infusions were as effective whether applied during the day or during the night, in both long and short photoperiods. These data suggest that there is a rhythm of sensitivity to MEL involved in the photoperiodic response which is entrained by MEL itself.
Pineal and retinal melatonin has an important role in the control of avian circadian rhythms. In order to study the mechanisms of circadian rhythms of melatonin synthesis in the pineal and in the eye, in vivo microdialysis was applied to these organs. In both pigeons and Japanese quails, pineal and ocular melatonin levels were high during the dark and low during the day under light-dark (LD) cycles. These rhythms persisted under constant dim light (LLdim) conditions indicating the circadian nature of pineal and ocular melatonin release. Light has two effects on melatonin synthesis. One is acute inhibition of melatonin synthesis and the other is entrainment of circadian melatonin rhythms. We have examined photoreceptors mediating these effects in the pigeon. The results have indicated that the eyes are not involved in light-induced suppression and photic entrainment of pineal melatonin release, and pineal photoreceptors themselves are likely to mediate these effects. Concerning ocular melatonin, retinal photoreceptors seem to mediate light-induced suppression and photic entrainment and no evidence supporting mediation of extraretinal photoreceptors was obtained. Because dopamine is implicated in retinal melatonin synthesis, we measured dopamine and melatonin release simultaneously from the eye of pigeon. In contrast to melatonin rhythms, dopamine increased during the day and decreased during the dark. This antiphase relationship between melatonin and dopamine persisted in LLdim, suggesting an interaction between these two rhythms. The results of an intraocular injection of dopamine or melatonin in the phase of melatonin and dopamine rhythms indicated that the interaction is required for maintaining the antiphase relationship between the two rhythms.
In neonatal rat gonadotrophs, melatonin acts through the high-affinity membrane-bound receptors to inhibit GnRH-induced [Ca2+]i increase. GnRH increases [Ca2+]i primarily by mobilization from the inositol trisphosphate-sensitive pool followed by Ca2+ influx through the voltage-sensitive channels. Melatonin inhibits the GnRH-induced [Ca2+]i increase. When added after the GnRH-induced spike, melatonin decreases [Ca2+]i in 52% of the gonadotrophs. The effect of melatonin is dependent on extracellular Ca2+ and may be mimicked by Ca2+-free medium or verapamil. When added before GnRH, melatonin inhibits the [Ca2+]i spike. This effect of melatonin is independent of extracellular Ca2+ as it persists in Ca2+-free medium. These findings indicate that melatonin blocks Ca2+ mobilization as well as Ca2+ influx in the gonadotrophs.
In an attempt to define the role of the pineal hormone melatonin and two analogues (5-methoxytryptamine, 5MT, and 6-hydroxymelatonin, 6HM) in limiting oxidative stress, the present study investigated the changes in glutathione, lipid peroxidation, and the activity of the antioxidant enzyme glutathione peroxidase after exercise (swimming for 60 min) with or without treatment with the indolamines mentioned. Lipid peroxidation was measured by estimating tissue levels of malondialdehyde and 4-hydroxyal-kenals; the experimental animals in these studies were male Sprague-Dawley rats. In the liver, swimming exercise increased the levels of reduced glutathione (GSH) and also significantly increasing oxidized glutathione (GSSG), while decreasing the GSH/GSSG ratio, an index directly related to oxidative stress. When the animals were treated with melatonin, the concentrations of GSH and GSSG were also increased after swimming; however, no reduction in the GSH/GSSG ratio appeared. In the animals treated with 6HM the changes were the same as in those treated with melatonin. In muscle as well, the concentration of GSH and the GSH/GSSG ratio were decreased following 60 min of swimming. Pretreatment of the rats with melatonin prevented these effects. Pretreatment of the rats with both 5MT and 6HM also prevented the changes. Brain GSH/GSSG ratio was not affected by either exercise or indolamine administration. Swimming enhanced lipid peroxidation in the liver, muscle and brain; however, this was prevented in animals treated with melatonin or 6HM before swimming. Glutathione peroxidase was significantly elevated after exercise in the brain but not in the liver and muscle. It is concluded that swimming imposes a severe oxidative stress and suggests that melatonin and, to a lesser degree, 5MT and 6HM confer protection against the oxidative damage associated with swimming for 60 min. This mechanism may be reasonably attributed to their indole structure, which possibly allows these molecules to act as free-radical scavengers.
The pineal gland, via the daily pattern of melatonin (MEL) secretion, is directly involved in the conduction of photoperiodic information. The duration of MEL secretion is proportional to the duration of the dark period and, whatever the photoperiod is, MEL synthesis occurs 3 or 4 h after the dark onset in Syrian hamsters. In order to determine the relative importance of the duration or the coincidence hypothesis, a daily infusion protocol was used in sexually active pinealectomized hamsters. Long duration of MEL infusion (10 h) completely inhibit testes whereas short duration infusion (5 h) had no effect. When the animals were infused twice within 2 h 30 min separated by 3 h, they presented a complete gonadal atrophy, similar to the one observed with the 10 h infusion. Measurement of plasma MEL during the infusion and seperation periods revealed that MEL reached physiological nighttime values during the infusion period and fell to daytime values 1 h after the end of an infusion period. Thus, the results could not be due to a time additive action of the two MEL pulses. An intermediate response was observed when the 2 signals were applied across the light/dark transition. Gonadal regression did not occur when the 2 periods of infusion were separated by 5 h 30 min. The efficiency of this type of infusion was not dependent on the ambiant photoperiod since similar results were obtained in long and short photoperiods. The infusion was also as effective during the day as well as during the night. These results suggest that there is a rhythm of sensitivity to MEL, based on the coincidence hypotheses, that are important for transmission of photoperiodic information. This rhythm of sensitivity to MEL seems to be entrained by MEL itself, since the efficiency of the two pulses of MEL is not dependent of time of application and/or of photoperiod.
NADH dehydrogenase in the plasma membrane transfers electrons from NADH to external oxidants like ferricyanide, through pathways which are linked to metabolic processes in the cell. Hormone binding to specific sites (receptors) can modify the enzyme activity, suggesting a direct or indirect coupling between the redox system and the hormone receptors. Reduction of external ferricyanide to ferrocyanide by human erythrocytes was stimulated by beta-adrenergic agonists (adrenaline, ritodrine and isoxsuprine), this effect being dependent upon concentration and pH. The agonist-stimulatory effect was attenuated in the presence of metoprolol (10(-4) M), a beta-adrenergic antagonist, and was not modified in the presence of prazosin, an alpha-adrenergic antagonist, suggesting that modification of the redox activity is mediated by binding of the agonists to beta-adrenergic receptors present in the human erythrocytes. Basal and agonist-dependent activities were inhibited in the presence of sulfhydryl reagents p-chloromercuribenzoate (PCMB, 10(-5) M) and N-ethylmaleimide (NEM, 10(-3) M), indicating the involvement of -SH groups. Inactivation by NEM was reversed by washing the cells with GTP (10(-3) M) and GTP gamma S (10(-4) M), suggesting that the specific alkylated -SH group(s) is located on a G protein in the hormone-receptor-G-protein complex. The human erythrocytes contain G proteins, displaying both guanine-nucleotide-binding properties and GTPase activity. Fluoride (10(-2) M) and fluoroaluminate (AlF4- (F-, 10(-2) M + Al3+, 10(-5) M), G protein activators, enhanced the basal and agonist-dependent activities, suggesting the involvement of G proteins in this system. The overall results indicated that one of the coupling components between the hormonal receptors and the redox system is probably a G protein, and the mechanism of enzyme activation after hormone binding to the receptor is based on the redox state of cysteine residues probably within the receptor-G-protein complex.
Effects of guanosine 5'-O-(3-thiotriphosphate) (GTP gamma S) and cations on 2-[125I]iodomelatonin binding were investigated in membrane preparations of the chicken spinal cord. At concentrations of 10 and 50 mumol/l, GTP gamma S dose-dependently increased (p < 0.05) the equilibrium dissociation constant (Kd) and depressed (p < 0.05) the maximum number of binding sites (Bmax). Na+ at a concentration of 125 mmol/l significantly increased (p < 0.05) the Kd and decreased (p < 0.05) the Bmax, and Mg2+ (2.5 mmol/l) significantly increased (p < 0.05) the Bmax without changes in Kd. In addition, Na+ and Mg2+ affected the interactions of GTP gamma S with melatonin receptors. In the spinal cord explants, melatonin (10 nmol/l) attenuated forskolin-stimulated cyclic AMP production by 53.1%, and preincubation with pertussis toxin abolished this effect of melatonin. These results suggest that the melatonin receptors in the chicken spinal cord are linked to its second messenger via a pertussis-toxin-sensitive guanine-nucleotide-binding protein, and that cations modulate these receptors. Our studies further support a previous hypothesis that melatonin exerts a direct action on spinal cord functions.
Intronless mRNAs were classified into two classes based on the sensitivities of their expression to the inhibitory effect of TAgRex, a dominant-negative mutant of the Rex protein of human T cell leukemia virus type I, and their abilities to express the genes encoded in the intron of the human immunodeficiency virus (HIV) genome. Interferon-alpha mRNA could not induce the expression of the env gene of HIV, and its expression was resistant to TAgRex. In contrast, the posttranscriptional regulatory element (PRE), necessary for the nucleo-cytoplasmic export of mRNAs of hepatitis B virus, induced expression of the chloramphenicol acetyl transferase gene located within the intron of the HIV genome. PRE-mediated expression was inhibited by TAgRex. Thus, these results suggest that there are at least two distinct pathways for intronless mRNA expression, one related to and the other unrelated to Rev and Rex functions.
Free-running circadian rhythms in melatonin secretion persist in dissociated chick pineal cells. Calcium and cyclic AMP interact at several levels in the regulation of melatonin biosynthesis and secretion. Extracellular Ca2+ is required for optimal stimulation of melatonin secretion by cAMP analogues and protagonists. Increased Ca2+ influx during the circadian night is thought to play a role in the circadian clock regulation of melatonin secretion. We have recently described a nonselective cationic channel, ILOT, in chick pineal cells that is regulated by the intrinsic circadian oscillator. Active ILOT channels are detected only during the nighttime and may explain the nocturnal increase in Ca2+ influx. The mechanism by which the activity of ILOT is regulated by the circadian oscillator is not known. In the present study, the effect of the translational inhibitor anisomycin (10(-6) M) on the nighttime activity of ILOT channels was examined. The results show that protein synthesis is required for the detection of ILOT channel activity during the nighttime in cells maintained on light-dark cycles or constant dark conditions.