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Migration of Schistosoma mansoni in normal and passively immunized laboratory rats.

Normal and passively immunized Fischer rats were infected with 75Se-selenomethionine-labeled cercariae of Schistosoma mansoni. Migration of the parasites from skin to lungs to liver was monitored by autoradiographic analyses of these sites. Labeled parasites migrated from skin to lungs with high efficiency in normal and immune rats; disappearance of labeled parasites from the lungs was slower in immune rats. Labeled parasites accumulated in the liver, reaching maximal values by 11 days post-infection in both groups and remaining constant through day 21. Half the number of labeled parasites were detected in the liver of immune rats. The total number of labeled parasites detected in the skin, lungs, and liver was constant through day 5, then declined to about 60% of this value by day 11 in both groups. Over the next 10 days, the rate of decline decreased significantly in normal rats but did not change in immune rats. By day 21 post-infection, nearly 50% fewer labeled parasites were detectable in immune rats. We conclude that a subpopulation of parasites in the lungs is the target of protective antibody in the serum used for passive immunization. Target parasites, retained longer in the lungs, were probably prevented from migrating successfully to the liver. Another parasite subpopulation migrated to the liver with normal kinetics. Lung schistosomula isolated from normal and passively immunized rats were transferred by intravenous injection into recipient rats and their continued migration from lungs to liver compared. No differences in portal perfusion worm yields were detected in normal recipients; equally reduced yields were detected in passively immunized recipients. We conclude that the effects of antibodies during week 1 post-infection were insignificant or reversible.

Autoradiography↗

Involvement of the complement system in the protection of mice from challenge with respiratory syncytial virus Long strain following passive immunization with monoclonal antibody 18A2B2.

Passive immunization of mice with 131 micrograms of the non-neutralizing monoclonal antibody (mAb) 18A2B2, directed against the A subgroup epitope of the G glycoprotein of respiratory syncytial virus Long strain (RSV), confers protection against viral i.n. challenge. The role of the Fc fragment of this antibody as well as the involvement of antibody-dependent cellular cytotoxicity (ADCC) and complement-mediated cytolysis towards protection was evaluated in vivo. Passive immunization with the Fab fragment alone (618-907 micrograms mouse-1) was unable to confer protection in mice. Furthermore, we passively immunized with the mAb 18A2B2 SCID beige mice, which are deficient in natural killer (NK) cell activity, to ascertain the role of NK cells in the protective mechanism. These mice were free of virus 5 days following viral challenge, indicating that NK cells do not contribute significantly towards the protective action of this antibody. Moreover, passively immunized BALB/c mice decomplemented with 8-10 U of cobra venom factor (CoVF) and DBA/2J mice (C5 deficient) were only partially protected. These findings suggest that in mice the alternative and classical pathways of the complement system are involved in the passive protection mechanism conferred by the non-neutralizing mAb 18A2B2. To our knowledge, it is the first description of a protective mechanism in mice that involves a non-neutralizing antibody and the complement system.

Animals↗

[Active and passive immunization in the extremely preterm infant].

OBJECTIVE: A review of the indications, contraindications, ideal timing, immunogenic efficacy and reactogenicity (adverse events) of active and passive immunization for extremely preterm infants. SOURCES OF DATA: Research in classic textbooks on pediatric infectology and in the electronic databases MEDLINE, Lilacs, PubMed and Akwanmed, using the following health sciences descriptors: premature, very low weight newborn, immunization, active immunization, passive immunization, vaccines, immunoglobulin. SUMMARY OF THE FINDINGS: The immunization of extremely premature very low birth weight infants is a huge challenge for pediatricians because there is insufficient knowledge about the efficacy of immune responses and undesirable reactions. Possibly for this reason, it is common that such children are found to be behind schedule with their immunizations or to have been incompletely immunized. Notwithstanding the scarcity of publications on the theme, in principal young gestational age and low birth weight should not be considered limiting factors to clinically stable premature newborns being immunized at the same chronological age indicated for full term children. CONCLUSION: Based on the available evidence it not possible to propose vaccine and immunoglobulin administration practice for extremely premature or very low weight newborn babies that is definitive. With rare exceptions however, such as the BCG vaccine, the tendency is to maintain the same active immunization program as for babies born full term, irrespective of weight or gestational age at birth. Passive immunization merits special attention, having more liberal indications in this group of newborn babies.

Humans↗

Effect of passive immunization or maternally transferred immunity on the antibody response to a genetic vaccine to rabies virus.

A plasmid vector, termed pSG5rab.gp, expressing the glycoprotein of rabies virus was tested in young adult or neonatal mice in the presence of maternally transferred immunity or passively administered antibodies to rabies virus for induction of an antibody response. Mice born to rabies virus-immune dams developed an impaired antibody response to genetic immunization at 6 weeks of age, as had been previously observed upon vaccination with an inactivated viral vaccine. Similarly, mice passively immunized with hyperimmune serum showed an inhibited B-cell response upon vaccination with the pSG5rab.gp vector, resulting in both cases in vaccine failures upon challenge with a virulent strain of rabies virus. In contrast, the immune responses of mice vaccinated as neonates in the presence of maternal immunity or upon passive immunization to rabies virus with the pSG5rab.gp construct were only marginally affected.

Animals↗

Efficiency of protection of guinea pigs against infection with Bacillus anthracis spores by passive immunization.

The efficacy of passive immunization as a postexposure prophylactic measure for treatment of guinea pigs intranasally infected with Bacillus anthracis spores was evaluated. Antisera directed either against the lethal toxin components (PA or LF) or against a toxinogenic strain (Sterne) were used for this evaluation. All antisera exhibited high enzyme-linked immunosorbent assay titers against the corresponding antigens, high titers of neutralization of cytotoxicity activity in an in vitro mouse macrophages cell line (J774A.1), as well as in vivo neutralization of toxicity when administered either directly to Fisher rats prior to challenge with the lethal toxin or after incubation with the lethal toxin. In these tests, anti-LF antiserum exhibited the highest neutralization efficiency, followed by anti-Sterne and anti-PA. The time dependence and antibody dose necessary for conferring postexposure protection by the various antibodies of guinea pigs infected with 25 50% lethal doses of Vollum spores was examined. Rabbit anti-PA serum was found to be the most effective. Intraperitoneal injections of anti-PA serum given 24 h postinfection protected 90% of the infected animals, whereas anti-Sterne and anti-LF were less effective. These results further emphasizes the importance of anti-PA antibodies in conferring protection against B. anthracis infection and demonstrated the ability of such antibodies to be effectively applied as an efficient postexposure treatment against anthrax disease.

Animals↗

Implicating a role for immune recognition of self in tumor rejection: passive immunization against the brown locus protein.

The immune system can recognize differentiation antigens that are selectively expressed on malignant cells and their normal cell counterparts. However, it is uncertain whether immunity to differentiation antigens can effectively lead to tumor rejection. The mouse brown locus protein, gp75 or tyrosinase-related protein 1, is a melanocyte differentiation antigen expressed by melanomas and normal melanocytes. The gp75 antigen is recognized by autoantibodies and autoreactive T cells in persons with melanoma. To model autoimmunity against a melanocyte differentiation antigen, mouse antibodies against gp75 were passively transferred into tumor-bearing mice. Passive immunization with a mouse monoclonal antibody against gp75 induced protection and rejection of both subcutaneous tumors and lung metastases in syngeneic C57BL/6 mice, including established tumors. Passive immunity produced coat color alterations but only in regenerating hairs. This system provides a model for autoimmune vitiligo and shows that immune responses to melanocyte differentiation antigens can influence mouse coat color. Immune recognition of a melanocyte differentiation antigen can reject tumors, providing a basis for targeting tissue autoantigens expressed on cancer.

Animals↗

Influence of environment on passive immunity in calves.

Passive immunity in neonatal calves is influenced by environment. Placing newly born Holstein calves (108 head) in three different housing environments (shade, cooled shade, hutch) during hot weather produced differences in body temperature, serum cortocosteroids, immunoglobulin IgG1 concentrations, and mortality. Experimental design permitted examination of effects due to treatments, time, differences in colostrum, and climatic environment in an analysis of variance. Calves exposed to the hotter, less desirable environment responded by having a higher mortality, higher serum corticosteroid concentration, and lower serum immunoglobulin IgG1 at 2 and 10 days after birth. All of these were correlated. Calves that died had serum immunoglobulin IgG1 falling below the mean for all experimental calves.

Adrenal Cortex Hormones↗

Combined active-passive immunization against tetanus in man.

A schedule for the prevention of tetanus in the injured, which has been in operation in the emergency department of a large hospital for over two years, is proposed. For the majority of nonimmunized persons, it is recommended that a dose of toxoid and 50 units tetanus immune globulin (human) (TIGH) be given, in separate sites, to be followed later by additional doses of toxoid for the completion of active immunization. Combined active-passive immunization with tetanus toxoid and 50 units TIGH gives a low level of passive immunity and stimulates early onset of active immunization. In combined active-passive immunization, adsorbed tetanus toxoid produced a significantly higher response than the fluid toxoid. The injection of 400 units TIGH somewhat suppressed the induction of immunity following the first dose of AlPO(4)-tetanus toxoid.

Antibody Formation↗

Intracerebroventricular passive immunization with anti-Abeta antibody in Tg2576.

Current Alzheimer's disease (AD) research has established the fact that excessive genesis of Abeta derived from amyloidogenic processing of beta-amyloid (Abeta) precursor protein is fundamental to AD pathogenesis. There has been considerable interest in using immunization strategies for clearing excessive Abeta. Studies in animal models of AD have shown that active immunizations or systemic passive immunizations reduced cerebral plaque load and improved behavioral deficits. However, clinical translation of an active immunization strategy was interrupted because of evidence for meningoencephalitis produced in some patients who received Abeta vaccine. Studies in animal models have shown perimicrovascular hemorrhages and inflammation after sustained systemic immunizations in animals with vascular amyloid. In this light, our data showing the effects of a single intracerebroventricular (ICV) injection of anti-Abeta in the Alzheimer's Swedish mutant model Tg2576 are intriguing. We have previously demonstrated that a single ICV injection of anti-Abeta into the third ventricle of 10-month-old Tg2576 mice reduced cerebral plaques, reversed Abeta-induced depletion of presynaptic SNAP-25, and abolished astroglial activation as seen 1 month post-injection (Chauhan and Siegel [2002] J. Neurosci. Res. 69:10-23). The present report demonstrates that a single ICV injection of 10 microg anti-Abeta in 10-month-old Tg2576 mice reduced cerebral plaques, with decreased inflammation at this stage as evidenced by a reduced number of interleukin-1beta-positive microglia surrounding Congophilic plaques. Moreover, at this particular age, no microhemorrhage was discernible, as evidenced by the absence of hemosiderin deposition after a single ICV injection of anti-Abeta. This is the first report demonstrating absence of microhemorrhage and reduced inflammation after the ICV introduction of anti-Abeta in Tg2576 mice at 10 months of age. These facts indicate that, although invasive, ICV injection of anti-Abeta may be a safer method of vaccination in AD, possibly through reducing the vascular exposure to antibody. Further studies are warranted to determine the lasting effects of a single ICV anti-Abeta injection in animals with and without abundant plaque burden and at older ages.

Alzheimer Disease↗

Passive immunization and hypothalamic peptide secretion.

Passive immunization is a common approach used to eliminate the biological activity of an endogenous substance by its binding to a specific antibody (Ab). Surprisingly little information has been gathered on the mechanisms involved. Moreover, the possibility that immunoneutralization could affect also the secretion of the antigen itself has been mostly ignored. To study hypothalamic neuropeptide secretion under the condition of passive immunization, labeled and unlabeled monoclonal antibody (MoAb) against arginine vasopressin (AVP) was injected intravenously. After 2 h a similar amount of 125I-MoAb was found in hypophyseal portal and peripheral (femoral artery) plasma, showing a distribution volume of 73.2 ml/kg. Assessment of the MoAb dilution in the same plasma samples from the binding studies revealed substantially higher dilutions (800-5,700 ml/kg). Such a MoAb dilution (saturation) would be attained by the binding of 130-290 pmol AVP/ml plasma. The calculated amount of plasma AVP decreased by one half within the interval from 2 to 24 h after Ab injection, similarly as did the 125I-MoAb content. Intravenous injection of polyclonal corticotropin-releasing hormone (CRH) Ab resulted in a decrease of plasma adrenocorticotropin and corticosterone levels. After 24 h the dilution of the Ab in portal plasma exceeded two times that in peripheral plasma. CRH concentrations of 0.6-2.5 pmol/ml were found by specific radioimmunoassay after its dissociation from the Ab in plasma. The CRH concentration was higher in portal than in peripheral plasma and was related to the amount of the Ab injected. CRH mRNA levels in the paraventricular nucleus were significantly increased in CRH Ab as compared with normal rabbit serum injected rats.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Passive immunization of mice pups through oral immunization of dams with a plant-derived vaccine.

Passive immunization plays an important role in protecting young mammals against pathogens before the maturation of their own immune systems. Although many reports have shown active immunization of animals and human through the use of plant-derived vaccines, only one report has given evidence of passive immunization of offspring through oral immunization of parents using plant-derived vaccines. In this case, a challenge alone provided the evidence of passive immunization and the mechanism through which this occurred was not investigated. This report describes the first step in elucidating the mechanism of passive immunization of offspring through actively immunizing the female parent through an orally delivered, plant-derived vaccine. The authors found passive immunization of offspring was caused by transfer of antigen-specific IgG through either transplacental transfer or ingesting colostrum. Future studies will investigate the roles of transplacental antibody transfer and ingesting colostrum in passive immunization and the possible involvement of IgA in this immunization route.

Administration, Oral↗

Gonadotrophin concentrations and ovulation rates in Suffolk ewes actively or passively immunized against inhibin alpha.

Mature Suffolk ewes were either actively or passively immunized against the synthetic fragment of porcine inhibin alpha, pI alpha(1-30), to determine the effects on gonadotrophin secretion and ovulation rate. Thirteen control ewes were immunized against human serum albumin, 12 ewes were actively immunized against pI alpha(1-30) and 36 ewes were passively immunized with pI alpha(1-30) antiserum. Blood samples were collected at 4-h intervals for 72 h from oestrus-synchronized ewes following the withdrawal of the progestagen pessaries. Mean gonadotrophin concentrations measured during the oestrous cycle of control ewes, ewes actively immunized against pI alpha(1-30) and ewes passively immunized against pI alpha(1-30) were similar, but their secretory profiles differed. Serum concentrations of follicle-stimulating hormone (FSH) were highest in ewes which had received antiserum at the time of pessary withdrawal; FSH concentrations did not decrease during the follicular phase of the oestrous cycle in ewes given antiserum 24 h after pessary withdrawal. Subtle but significant increments in serum FSH concentrations were observed in all passively immunized ewes in which sampling commenced at the time of treatment. The amplitude of the preovulatory luteinizing hormone (LH) peak, but not of the FSH peak, and the postovulatory secondary rise in FSH were lower (P less than 0.05) in actively immunized ewes than in control ewes. The mean (+/- s.e.) ovulation rate for actively immunized ewes (6.6 +/- 1.0) was 3 times higher (P less than 0.05) than that for control ewes (2.0 +/- 0.2), but was unaffected by passive immunization (range, 1.8-2.3).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Pharmacologic response to pentobarbital in passively immunized mice.

Rabbits were actively immunized using a barbiturate--BGG conjugate as the immunogen. The antiserum obtained from actively immunized rabbits was administered intravenously to mice to accomplish passive immunization. The antibody binding capacity for 3H-phenobarbital was shown to be sustained in passively immunized mice for periods of up to three weeks. Serum levels of 3H-phenobarbital in passively immunized mice and control mice were compared following drug administration and found to be altered in the antibody-containing mice. There was a 4-fold higher amount of 3H-phenobarbital present in the serum of passively immunized mice compared to control animals. The higher barbiturate levels were due to binding of 3H-phenobarbital to globulin fraction of serum in passively immunized mice. Additionally, decreased pentobarbital-induced ataxia was demonstrated in passively immunized mice. The decreased responsiveness was selective for barbiturates in passively immunized mice and did not modify the ataxia produced in these animals by another depressant agent, ethanol.

Animals↗

Preventing infectious disease with passive immunization.

Antibodies can prevent infectious diseases by providing passive immune protection. Here we review successful clinical trials of passive immunization and consider some of the unique qualities monoclonal antibodies are now beginning to offer for developing methods for passive immunization against a wide range of infectious diseases.

Antibodies, Monoclonal↗

Active and passive immunization against oral Candida albicans infection in a murine model.

BACKGROUND/AIMS: Clinical and laboratory studies are consistent with a major role for cell-mediated immunity in recovery from oral infection with Candida albicans, but the role of humoral immunity remains controversial. The purpose of this study was to establish the relative contributions of cellular and humoral immunity to protection against oral candidiasis in a murine model, and to determine whether host responses could be enhanced by different immunization strategies. RESULTS: Active oral immunization was protective in BALB/c and CBA/CaH mice, reducing both fungal burden and duration of infection after secondary challenge, whereas systemic immunization failed to protect against subsequent oral challenge. Candida-specific IgM was the predominant antibody detected in serum following both primary and secondary oral challenge; however, Candida-specific salivary IgA was not detectable. Immunization by passive transfer of either lymphocytes or immune serum did not confer any significant protection against oral infection in either susceptible or resistant mouse strain. CONCLUSION: The data demonstrate a possible role for mucosa-associated immunity following active immunization by the oral route, most likely exerted by local T lymphocytes resident in the oral mucosa, but there was no evidence to support a role for humoral immunity in protection against oral candidiasis.

Animals↗

Biological half-life of ovine antibody in neonatal lambs and adult sheep following passive immunization.

Neonatal lambs and adult wethers were passively immunized with ovine antibody directed against ovalbumin or Brucella abortus. Estimates for the biological half-lives of the antibodies ranged from 18 to 24 days in neonatal lambs and 12 to 17 days in adult wethers. The evidence suggested that both normal and immunosuppressed wethers which were passively immunized with serum antibody catabolized this antibody at a faster rate than did neonatal lambs. The data provided no support for the hypothesis that the growth factors and immunomodulatory factors, which are known to be present in colostrum, can influence the biological half-life of homologous antibody following passive immunization.

Animals↗

Acute lethal toxicity following passive immunization for treatment of murine cryptococcosis.

Passive immunization with monoclonal antibodies (MAbs) specific for the major capsular polysaccharide of Cryptococcus neoformans alters the course of murine cryptococcosis. During studies of passive immunization for treatment of murine cryptococcosis, we noted the occurrence of an acute, lethal toxicity. Toxicity was characterized by scratching, lethargy, respiratory distress, collapse, and death within 20 to 60 min after injection of antibody. The toxic effect was observed only in mice with a cryptococcal infection and was reduced or absent in the early and late stages of disease. The clinical course and histopathology were consistent with those for shock. There was considerable variation between mouse strains in susceptibility to toxicity. Swiss Webster mice from the Charles River colony were most susceptible, followed by C3H/He, BALB/c, and C57BL/6 mice. DBA/2 mice and Swiss Webster mice from the Simonsen colony were resistant. Acute toxicity was mimicked by injection of preformed complexes of MAb and purified polysaccharide. The toxic effect was also produced by injection of MAbs into mice that were preloaded with polysaccharide. The toxic effect was not blocked by treatment of mice with chloropheniramine or anti-tumor necrosis factor alpha antibodies or by depletion of complement components via pretreatment with cobra venom factor. Toxicity was reduced by treatment of mice with high doses of epinephrine, dexamethasone, or chlorpromazine. Finally, the toxic effect was completely blocked by treatment of mice with the platelet-activating factor antagonist WEB 2170 BS or by pretreatment of mice with the liposome-encapsulated drug dichloromethylene diphosphonate, a procedure which depletes macrophages from the spleen and liver.

Animals↗