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M Balls

Publications and source records attributed to M Balls.

At least 37 records · Page 2Linked to original sources

Impaired T cell functions during amphibian metamorphosis: IL-2 receptor expression and endogenous ligand production.

T cell functions are impaired during defined developmental stages of amphibian metamorphosis (Marx et al., 1987). Here we show, using a fluorescent anti-human IL-2 receptor antibody and flow cytometry, that during these stages, the splenocytes of Xenopus laevis, the South African clawed toad, have a progressively diminished capacity to express IL-2 receptors (IL-2R), after in vitro lectin stimulation. Preincubation with human rIL-2 specifically blocks binding of the anti-IL-2R antibody. Separation of an endogenous ligand bound to the IL-2R leads to a substantial increase in available epitope recognized by the anti-IL-2R antibody when pre- and postmetamorphic splenocytes are employed, but not when splenocytes of the prometamorphic stages are treated similarly. Thus, the cells from the prometamorphic stages are not producing significant quantities of the ligand. Finally, we demonstrate that human rIL-2 is not by itself mitogenic in the toad, but it can act as a co-stimulator of antigen-induced mitogenesis. Thus, an absence of an endogenous ligand (autologous IL-2?), coupled with a reduced capacity to express IL-2 receptors may be responsible for impaired T cell clonal expansion in metamorphosing Xenopus. Inhibition of T cell functions during this period is vital, since adult cells forming within the larval body bear surface proteins not found on larval cells (Flajnik et al., 1986).

Animals↗

Neuroendocrine regulation of immunity: the effects of noradrenaline in Xenopus laevis, the South African clawed toad.

A functional association between the peripheral nervous and the immune system in Xenopus laevis, the South African clawed toad, is demonstrated. This association involves the neurotransmitter noradrenaline (NA), produced and released by the sympathetic nerves of the spleen. Chemical sympathectomy prior to immunization reduces splenic NA, and decreases thymus-dependent (TD), but increases thymus-independent (TI), antibody responses. Immune challenge with representatives of the three antigen classes affects splenic NA levels differentially. Thus, the modulatory effect of NA on immunity will depend on the immunogen used. Carrier-priming of helper function in TD responses stimulates a transitory NA release in the spleen, while subsequent immunization activates a more prolonged release. The two types of challenge differ in the antigenic dose given. The effects of NA also depend on the time when it is applied. If used early in the in vivo TD response, antibody production is increased, but if given later, suppressor function is stimulated, thus decreasing antibody production. NA increases both amplifying and suppressing T cell functions in TD responses through stimulation of the alpha 2 adrenoceptor. Alpha 2 adrenoceptor stimulation decreases, and beta adrenoceptor stimulation increases, anti-TNP reactivity. Since an alpha 2 receptor agonist does not affect lectin-stimulated T cell mitogenesis, while a beta receptor agonist depresses it, NA appears to up-regulate T cell functions by affecting their maturation, rather than their clonal expansion.

Adrenergic alpha-Agonists↗

Alternatives to ocular irritation testing in animals.

The preliminary conclusions of a survey of possible non-animal alternatives to the Draize rabbit eye irritancy test, recently conducted for the Commission of the European Communities, are presented. The various types of alternatives to animal tests are reviewed in terms of their current state of development and validation, and also their potential in relation to the type of exposure, level of testing, type of testing, type of effect, location of effect, and type of test material. Various problems concerning the availability and quality of in vivo eye irritation data, and the use of this data in in vitro/in vivo comparisons, are highlighted. Finally, the use of step-wise and integrated animal/non-animal and non-animal/non-animal test systems and strategies are discussed.

Animal Testing Alternatives↗

Non-animal alternative toxicity tests for detergents: genuine replacements or mere prescreens?

Non-animal toxicity tests and testing strategies for use in identifying the potential toxic hazard of chemicals and products, and in providing information for use in risk and safety assessment, are in the course of development, validation and evaluation. Possible replacement alternatives to the rabbit Draize eye irritancy test are discussed, and results obtained for two in-vitro tests developed by FRAME (the kenacid blue test and the neutral red release test), applied to 19 surfactants and 32 formulations, are discussed. It is concluded that there are now legal and moral requirements that relevant and reliable non-animal tests should be developed and accepted for use whenever possible.

Animal Testing Alternatives↗

Why modification of the LD50 test will not be enough.

During the last 10 years, the 'Three Rs' (reduction, refinement and replacement) concept of alternatives has come to be widely accepted, and new national and international laws require that non-animal procedures should replace animal experimentation wherever possible. Some reduction and refinement of animal use in toxicity testing has been achieved, and non-animal methods are becoming widely used as prescreens. However, even replacing the LD50 test by a modified and validated animal test, the Fixed Dose Procedure, will be a major achievement. In this paper it is argued that this is not good enough, and that more effort must be put into the development, validation, acceptance and use of genuine replacement alternative tests.

Animal Experimentation↗

Amphibian metamorphosis: an immunologic opportunity!

Anuran amphibian metamorphosis is an immunologically interesting period. For the investigator, it provides an unusual opportunity for analyzing both humoral regulation of the immune response and the development and maintenance of self-tolerance. Some of the questions one can ask are: Why don't immunocompetent larvae destroy antigenically disparate adult cells as they differentiate within them during metamorphosis? Do the dramatic hormonal changes occurring during this period regulate immunological function? How do animals in metamorphosis protect themselves from their immunologically hostile environment?

Amphibians↗

Differential cyclophosphamide sensitivity of suppressor function in Xenopus, the clawed toad.

Thymocyte and Splenocyte cultures from in vivo immunised Xenopus were assayed to test their suppressive capacity. Immunisation with TNP-Polyvinylpyrrolidone induced suppression. Suppression induced by the haptenated antigens, TNP-Red blood cells, TNP-Lipopolysaccharide, and TNP-Ficoll affected the anti-TNP antibody response of splenocytes from TNP-PVP immunised animals. Pretreatment with cyclophosphamide revealed both a sensitive and insensitive suppression capacity in Xenopus laevis.

Animals↗

The stimulation of EL-4 cells to produce interleukin-2 and its potential use in immunocytotoxicity testing.

The ability of EL-4 thymoma cells to produce interleukin-2 (IL-2) following exposure to phorbol-12-myristate 13-acetate (PMA) and Concanavalin A (Con A) has been studied in vitro using medium containing either 10% or 1% fetal calf serum (FCS). The potent stimulatory effect of PMA on IL-2 production by EL-4 cells has been confirmed by measuring 3H-thymidine incorporation by the IL-2-dependent T cell line, CTLL-2, in the presence of conditioned medium (CM) from stimulated cultures. EL-4 cells produced several times more IL-2 when cultured in medium containing 10% FCS than when only 1% FCS was present. Added together, PMA and Con A acted synergistically in some EL-4 cell cultures. The ability of E:-4 cells to produce IL-2 was maintained after further incubation without stimulants. CM with IL-2 activity from stimulated EL-4 cells could prove useful in immunotoxicity testing.

Animals↗

Responses in Xenopus to the thymus independent antigen polyvinylpyrrolidone (PVP) and its haptenated derivative, trinitrophenylated PVP (TNP-PVP).

Xenopus laevis (the South African clawed toad) can respond to thymus dependent (TD) and thymus independent (TI) antigens. However, the response to trinitrophenylated Ficoll (TNP-Ficoll), a TI-2 antigen in mammals, is thymus dependent in Xenopus. Polyvinylpyrrolidone (PVP), classed as a TI antigen in mammals, is also a TI antigen in Xenopus, but responses to PVP and TNP-PVP are thymus regulated. As with TNP-Ficoll, capacity to respond to TNP-PVP diminishes during metamorphosis, and tolerance can be induced via the stimulation of TD suppression with trinitrobenzene sulphonic acid. Animals treated with N-methyl-N-nitrosourea and adult-thymectomised Xenopus, which lack certain TD responses, can nevertheless respond to TNP-PVP. Based on this and other information, it is concluded that TNP-PVP should be classed as a TI-2 antigen in Xenopus.

Aging↗

The detection of cytotoxicity produced by short-lived reactive intermediates: a study with bromobenzene.

1. A V79 cell incubation incorporating rat liver 9000 g supernatant (S9) fractions, used previously to detect the toxicity due to long-lived, stable metabolites of cyclophosphamide, has been used to study the toxicity of short-lived, reactive metabolites generated from bromobenzene. 2. Cytotoxicity was observed in the presence of S9 fractions from rats treated with phenobarbitone but not in the presence of S9 fractions from untreated or beta-naphthoflavone-treated animals. This toxicity was enhanced by depletion of the glutathione in the S9 fraction by prior treatment of the animals with diethyl maleate and was reduced by SKF 525 A, in agreement with results in vivo on the mechanism of bromobenzene-induced hepatotoxicity. 3. This study demonstrates that cytotoxicity due to the generation of short-lived, reactive metabolites can be detected in this system in vitro provided that procedures are used to modify the activating and detoxifying enzyme systems within the S9 fraction.

7-Alkoxycoumarin O-Dealkylase↗

Signals provided in vivo by human rIL-2 and Con A can switch hapten-specific tolerance from unresponsiveness to responsiveness in the South African clawed toad.

Injection in vivo of trinitrobenzene sulphonic acid (TNBS) will conjugate trinitrophenyl (TNP) to the cells and proteins of rodents, and induce hapten-specific tolerance to this epitope. However, the induction of hapten-specific tolerance by this method in the South African clawed toad, Xenopus laevis, is restricted to its subsequent presentation on Ficoll or polyvinylpyrrolidone (PVP). This restricted tolerance depends on the stimulation of an N-methyl-N-nitrosourea (NMU)-insensitive, cyclophosphamide (CyP)-sensitive hapten-specific (suppressor) population that is functionally demonstrable in vitro. Unresponsiveness to TNP-Ficoll can be switched to responsiveness by injection in vivo of recombinant DNA-produced human IL-2 (rIL-2) or the plant-derived lectin, concanavalin A (Con A). Responsiveness to TNP-Ficoll requires thymic presence, although thymic extracts from rIL-2- or Con A-injected toads will suffice. Unresponsiveness to TNP-PVP can also be broken by these reagents, but thymic presence is not required with this immunogen. TNP-Ficoll responses are thymus requiring, while those to TNP-PVP are not, in the toad. Since TNBS failed to stimulate hapten-specific tolerance to a secondary challenge to TNP-Ficoll, we suggest that the suppressor function involved in the establishment of the unresponsive state may act on the differentiation, rather than on the function, of the relevant B cells.

Animals↗

Transfer of antibiotic resistance genes between yeast and mammalian cells under conditions favoring cell fusion.

Antibiotic resistance to G418 has been transferred into Chinese hamster cell lines via a plasmid vector. The same plasmid, which also contained the Leu2 gene, has been used to transform Leu2- yeast (strain MC16) to leucine prototrophy. Subsequent fusion between transformed yeast and untransformed hamster cells demonstrated that plasmid DNA could be transferred and its genes expressed within the mammalian cell genome. The fusion of transformed hamster cells with untransformed MC16 yeast cells demonstrated that DNA integrated within the mammalian cell genome could be transferred to correct the Leu2 deficiency and also confer G418 resistance on some yeast colonies.

Animals↗

Two cellular pathways regulate the response to TNP-Ficoll in Xenopus laevis.

The initiation of the anti-TNP response to TNP-Ficoll in the amphibian Xenopus laevis has been studied. Although the response to this antigen is thymus independent in mammals, it is thymus dependent for the first three days following immunization in Xenopus. This thymus regulation is not MHC restricted, since it can be substituted for by thymus xenografts, and by prior or co-injection of heterologous red blood cells or Concanavalin A. The pathway which is activated by the Con A to substitute for the thymus is NMU sensitive, unlike the thymic pathway. The peripheralised alternative pathway is activated by particulate but not soluble TNP-Ficoll. The thymus-dependent and alternative pathways are discussed in terms of their possible nature, regulation and evolutionary significance.

Animals↗

Thymic involvement in memory responses after primary challenge with TNP-Ficoll in Xenopus laevis, the South African clawed toad.

Memory to TNP-Ficoll in Xenopus laevis is demonstrable as a more rapid secondary response rather than an augmented response. While adult thymectomy abrogates ability to respond to both primary and secondary challenge with soluble TNP-Ficoll, memory to this antigen can be revealed in thymectomized animals by challenge with TNP-Ficoll on bentonite beads. Memory to TNP-Ficoll cannot be revealed by secondary challenge with TNP-LPS or TNP-RBC, but memory to TNP-LPS is revealed by TNP-Ficoll challenge. These results are consistent with the hypothesis that, whereas B1 cells (capable of responding to TI-2 antigens) can develop from a pool of B1 and B2 memory cells (generated in response to TD or TI-1 antigens), initial challenge with TI-2 antigen does not produce a pool containing both B-cell subsets.

Animals↗

Murine and human interleukin 2 can substitute for the thymus in immune responses to TNP-Ficoll in Xenopus laevis, the South African clawed toad.

Extirpation of the thymuses of Xenopus laevis abrogates the capacity to respond to trinitrophenol (TNP)-Ficoll regardless of the age of the animal. This thymus requirement can be substituted for by a variety of treatments which stimulate thymus-derived (T)cell activity in the periphery, such as the rejection of allogeneic skin grafts, immunologic challenge with thymus-dependent immunogens, (e.g., heterologous erythrocytes), or plant-derived lectins (e.g., concanavalin A). Here we report that interleukin 2 (IL-2), a T-cell-produced hormone of mammalian origin also substitutes for this thymus requirement in thymectomized toads.

Animals↗