PubMed Health⌕ Search

Biomedical subjects

C Aguila

Publications and source records attributed to C Aguila.

8 recordsLinked to original sources

Cross-reactivity between Anisakis simplex sensitization and visceral larva migrans by Toxocara canis.

The aim of this work was to study cross-reactivity in the diagnosis of two related ascaridosis. Nineteen patients diagnosed with recidivous acute urticaria (RAU) caused by Anisakis simplex and 26 patients diagnosed with visceral larva migrans (VLM) caused by Toxocara canis were studied employing commercial diagnostic kits and "in house" assay kits. Cross-reactivity observed was greater when using "in house" assay kits, suggesting that T. canis excretory-secretory antigens were not only recognized by antibodies from patients with RAU but with greater intensity compared to the A. simplex excretory-secretory antigens.

Animals↗

Cross-reactivity induced by Anisakis simplex and Toxocara canis in mice.

The aim of this study was to verify whether cross-reactivity appeared between Toxocara canis and Anisakis simplex in an experimental rodent model. No cross-reactions were detected using sera from mice infected with T. canis eggs. When responses obtained against T. canis ES antigen using sera from BALB/c and C57BL/10 mice infected with T. canis eggs were compared with those obtained by testing sera from mice infected with one A. simplex L3, an increase in cross-reactions was observed using the C57BL/10 strain.

Animals↗

Idiotypic replica of a Toxocara canis excretory/secretory antigen epitope.

This study describes the production, characterization and use of an anti-idiotype serum raised against the monoclonal antibody TC-1 which recognizes a T. canis excretory/secretory antigen (ES Ag) epitope. Anti-idiotypic (anti-Id or Ab2) antibodies were produced in rabbits using TC-1 F(ab')2 fragments; these anti-Id inhibited ES Ag binding to biotinylated TC-1, and also inhibited a larval microprecipitation assay using TC-1. Assays show that the Ab2 beta or "internal image" of a T. canis ES Ag epitope was obtained. The antibodies have been used as an idiotypic copy of ES Ag in a diagnostic ELISA for murine toxocariosis. Affinity-purified anti-Id antibodies were used to raise a homologous anti-anti-Id (Ab3) response in rabbits. Antibody formation was followed in the sera of BALB/c mice inoculated with embryonated eggs of T. canis during a 12-month infestation. A 3-week latency period was observed before specific anti-TC-1 epitope antibodies were detected. High levels were reached at 7 weeks post-inoculation with a maximum at the ninth month, and were then maintained until the end of the experiment. The results show the possible utility of anti-Id antibodies as an ES Ag molecular replica.

Animals↗

Persistence of immune response in human toxocariasis as measured by ELISA.

The antibody titer was followed in a group of patients, clinically diagnosed with toxocariasis, during a 5 year period. We observed that larvae can survive for at least 5 years in humans. Antigenic stimulation was enough to keep high levels of immunoglobulins over this period. Antibody levels decreased slowly and this pattern is similar to that shown by animal models.

Animals↗

Evaluation of chemotherapy in experimental toxocarosis by determination of specific immune complexes.

Parasitism by the larval phase of Toxocara canis is a chronic process in which the larvae survive in the tissues, resulting in the constant stimulation of the immune system. As a result, the detection of specific antibodies may not reflect the active state of the parasite. We have studied the dynamics of the production of specific immune complexes by ELISA with the monoclonal antibody TC-1 in rabbits inoculated with single and multiple doses of T. canis eggs. We also compared this with the production of specific antibodies and their possible modification after treatment with mebendazole. The specific antibodies against excretory-secretory antigen were detected with peaks at 10 and 12 weeks depending on the dose and remained positive during the entire experiment (62 weeks). Treatment caused an increase in the level of detectable antibodies dropping to similar levels to the controls. Specific immune complexes were detected only in multiple doses, and were then positive during the entire experiment. From the beginning of treatment the values of immune complexes fell quickly, remaining at undetectable levels during the rest of the experiment. For this reason the detection of specific immune complexes is a valid technique for monitoring the efficiency of treatment.

Animals↗

Comparative study of assays detecting circulating immune complexes and specific antibodies in patients infected with Toxocara canis.

A sandwich ELISA method using previously described E/S antigen-specific monoclonal antibodies has been developed to detect circulating immune complexes in patients infected with Toxocara canis. This technique could be used for the study of the dynamics of the parasite-host relationship, as we believe the detection of immune complexes and/or soluble antigen to be an improvement over detection of antibodies only. In this parasitosis, antibodies may be present in residual levels for prolonged periods after active infection.

Animals↗

The role of brain peptides in neuroimmunomodulation.

Since neuroimmunomodulation is brought about in part, at least, by secretion of pituitary hormones involved in stress and immune responses, we review briefly the hypothalamic control of the release of ACTH, growth hormone, and prolactin. The release of ACTH is controlled particularly by corticotropin-releasing factor (CRF), but vasopressin has intrinsic releasing activity and potentiates the action of CRF at both hypothalamic and pituitary levels. Oxytocin may even potentiate the action of CRF, but has little, if any, ACTH-releasing activity by itself. In addition, epinephrine may augment responses to the CRFs. In contrast, growth hormone is under dual control by growth-hormone-releasing factor (GRF) and somatostatin, and prolactin is under multifactorial control by a series of inhibitors and stimulators. Dopamine is accepted as a physiological prolactin-inhibiting factor (PIF), but probably GABA and possibly acetylcholine as well are PIFs. There is good evidence for a peptide PIF as well. There are a number of prolactin-releasing factors (PRFs) which include oxytocin, vasoactive intestinal polypeptide, PHI and TRH. Several other peptides can also release prolactin, including angiotensin II. In response to stress there is a complex interaction of peptides intrahypothalamically. CRF augments its own release by an ultra short-loop positive feedback, and there is negative ultra short-loop feedback of GRF and somatostatin. Vasopressin appears to augment CRF release as well as to act directly on the pituitary, and there are complex interactions of various peptides to influence prolactin and GH release.

Adjuvants, Immunologic↗