PubMed HealthSearch

SEARCH · PubMed Health

Results for “Chimera”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Studies on the mitogen responses of germfree allogeneic chimeras. II. Maturation of two cell types and partial restoration of responsiveness of the short-term chimeras.

Germfree allogeneic bone marrow chimeras (ABMC) were produced by the i.v. injection of approximately 10(7) bone marrow cells from germfree DBA/2 mice into lethally irradiated germfree C3H mice. In the germfree state, the short-term ABMC showed no histologic signs of graft-vs-host reactions (GVHR), yet splenic lymphocytes were unable to respond to PHA, Con A, or SRBC. Attempts to remove responsiveness by the implantation of a DBA/2 thymus under the host kidney capsule also resulted in failure. However, when the donor thymus was enclosed in a cell-impermeable chamber to eliminate a GVH reaction, responsiveness to Con A was restored. The PHA and SRBC responses were unaffected by this treatment. Daily injections of thymosin caused both an increased Con A response and increased numbers of PFC, although the PHA response was again unaffected. Thus, soluble substances from thymic tissue can be used to overcome partially the histocompatibility barrier present in the ABMC that affects at least two different functional cell populations.

Animals

Rat-mouse radiation chimeras: characterization of an antibody-mediated graft-vs-host reaction.

A modification of the Jerne hemolysis-in-agar technique was used to demonstrate antibody-mediated graft-vs-host (GvH) hemolytic activity in lymphoid tissues of rat-mouse radiation chimeras. Initial foci of hemolytic activity were detected on the 3rd day in spleens of lethally x-irradiated mice infused with rat spleen cells (950 R-RSp chimeras). The peak of GvH foci response occurred near the end of the 1st week when 70% of 950 R-RSp chimera spleens examined contained an average of 18 to 21 foci per spleen. GvH hemolytic activity was also detected in mice reconstituted with rat bone marrow (950 R-RBM chimeras); however, only 40% of these chimeras contained splenic foci (nine foci per spleen) on day 8, the peak day of response. Mesenteric lymph nodes from 950 R-RSp chimeras, but not 950 R-RBM chimeras, also contained GvH hemolytic foci. Specificity experiments demonstrated that the GvH hemolytic reaction could be inhibited with rabbit anti-rat IgM serum and host (C3BF) antigenic cell fragments. Indirect (IgG) hemolytic activity was also observed in spleens of 950 R-RSp chimeras 6 to 10 days after treatment. At least 90% of indirect foci appeared coincident with direct foci. Rat IgM and IgG containing cells beneath hemolytic foci were observed by combining the fluorescent antibody and foci techniques. To determine whether the foci response reflects and in vivo sensitization of donor cells, spleen cell transfer experiments were done. The results indicate that spleen cells from 950 R-RSp chimeras were more effective in acelerating mortality and anemia and induced a higher incidence of Coomb's positive red cells in lethally irradiated isogeneic recipients than spleen cells from 950 R-RBM chimeras; spleen cells from either chimera were more effective in accelerating GvH indices than spleen and marrow cells from normal rats.

Animals

Infusion of donor lymphocytes into stable canine radiation chimeras: implications for mechanism of transplantation tolerance.

Canine radiation chimeras were used to investigate further mechanism(s) responsible for maintaining the stable chimeric state. Chimeras were studied 7 to 46 months after 1200 R total body irradiation and transplantation of marrow from a littermate donor matched at the major histocompatibility complex. An attempt was made to perturb the stable chimeric state by infusion of large numbers (0.6 to 13.7 x 10(8)/kg) of donor peripheral blood lymphocytes into each respective chimera. Two groups were studied: donors in Group A were normal; donors in Group B had been specifically sensitized against minor histocompatibility antigens of the chimera by repeated skin grafts. None of the nine chimeras in Group A developed significant clinical or histologic evidence of graft-vs-host disease (GVHD) after donor lymphocyte infusion. Eight of the 12 chimeras in Group B, however, developed GVHD which was transient in three and fatal in five. The results in Group A are not consistent with classical theories of tolerance, i.e., elimination or inactivation of potentially reactive cell clones, but suggest the presence of an active mechanism suppressing recognition of host antigens by the infused donor lymphocytes and development of GVHD. The results in Group B indicate that this mechanism can be overcome by infusion of sensitized donor cells. In an attempt to elucidate the nature of this postulated active mechanism, the cytotoxicity of donor lymphocytes for fibroblasts of the chimera and the presence or absence of serum-blocking factors were assessed in vitro by using a cellular inhibition (CI) assay. The presence of serum-blocking factors did not protect against the development of significant GVHD in two chimeras (fatal in one). GVHD did not occur in four other chimeras after infusion of cytotoxic donor lymphocytes despite the absence of serum-blocking factors. These and previous results suggest that serum-blocking factors are not the mechanisms suppressing the development of GVHD in canine radiation chimeras, and raise the possibility that a suppressor cell population may be responsible for preventing GVHD.

Animals

[Status of T- and B-lymphocytes in long living CBA--F1 (CBA X C57BL/6) chimeras].

Semiallogeneic chimeras were produced by injecting 3 X 10(7) spleen cells of mice CBA (H--2k, Mlsd) to lethally irradiated mice (CBA X C57BL/6)F1. Two days later recipients were given cyclophosphamide (CP), 2 mg per mouse, to prevent death of graft versus host reaction (GVHR). For 1.5--2 months after the creation of chimerism in 23 of 26 mice under study all cells producing antibodies to SRBC were represented by donor cells of H-2 phenotype; 3 mice were partial chimeras. Spontaneous blast transformation in the cultures of chimera spleen did not exceed the control level, and in the mixed lymphocyte culture chimera cells failed to proliferate on addition of irradiated lymphocytes (CBA X C57BL/6) F1. At the same time chimera gave intensive blast transformation to the irradiated lymphocytes of the third line of mice DBA/2 (H--2d, Mlsa). Among the chimera spleen cells no killers capable of destroying target cells of donor or recipient origin were revealed. Similar results were obtained in vivo: chimera cells gave no positive local GVHR after administration to mice (CBA X C57BL/6) F1. Prolonged chimerism was accompanied by a reactivity of donor T-lymphocytes to the recipient transplantation antigens. A blocking factor was revealed in the blood serum of chimeras. The substitution of donor lymphocytes for the recipient cells begins after 3 to 5 months. At the same period donor T-cell population reconstitutes partially the responsiveness to the recipient antigens and the blocking factor disappears from chimeras blood.

Animals

Immune competence of splenic lymphocytes following graft-vs-host disease in mouse allogeneic radiation chimeras.

The abnormal immune response of long-term mouse allogeneic chimeras is reflected by qualitative deficiencies in either T or B lymphocytes. The present study was undertaken to determine if a relationship existed between the severity of graft-vs-host disease (GVHD) that these animals had experienced and a functional defect in either the T or B cell population. The in vitro PFC response of chimera spleen cells to sheep red blood cells (SRBC) was evaluated in the presence of normal T or B lymphocytes 4 to 8 months after marrow transplantation and well beyond the GVHD period. In an analysis of several different allogeneic radiation chimeras, our results showed no relationship between the severity of GVHD experienced and the immunologic capacity of either T or B cells. Thus, different chimera combinations showing similar degrees of GVHD were functionally deficient in one or the other of these two cells types or both with no apparent predilection for abnormality in either population. In examining the quantitative in vitro PFC response to sheep RBC by spleen cells from individual chimeras, we found that the number of PFC formed was related to the severity of GVHD experienced by that animal. A general relationship between severity of GVHD and PFC capacity may also exist between chimeras of different genetic combinations. However, this relationship is not precise since gross exceptions occur. Our results, although documenting further the qualitative abnormalities in T and/or B lymphocytes of radiation chimeras, do not reveal the factor or mechanisms by which these cells are made unresponsive. It is suggested that the tolerance-inducing mechanism of these animals, whether it be humoral blocking factors or suppressor cells, is in some way interfering with the collaboration of T and B cells for antibody production.

Animals

Sex determination in germ line chimeras of Drosophila melanogaster.

Of 55 flies developing from blastoderms which had received male or female pole cell transplants, 15 (7 females and 8 males) wer shown by progeny testing to be germ line chimeras. Since donor and host pole cells were genetically marked with contrasting X- or Y-linked alleles, the progeny testing scheme enabled the genotypic sex of the donor component undergoing gametogenesis to be identified as either the same as ('homosexual' chimeras) or opposite ('heterosexual' chimeras) that of the host. All seven of the female chimeras were identified as 'homosexual' chimeras carrying only chromosomally female XYX donor and XX host germ cells. Similarly, all eight males were shown to be 'homosexual' chimeras with chromosomally male XY donor and XY host germ cells. The chromosomal sex of the donor component undergoing gametogenesis was in every case the same as the phenotypic sex of the host. Since there is an equal probability of constructing either a 'homosexual' or a 'heterosexual' chimera during pole cell transplantation, the ability of pole cells to differentiate functional gametes in hosts of the opposite sex was tested 50% of the time even if sex reversal of these donor pole cells could not be demonstrated. Thus the absence of 'heterosexual' chimerism strongly supports the interpretation that the phenotypic sex of a germ cell in Drosophila is determined entirely by its own chromosome constitution, not by that of the gonadal mesoderm.

Animals

Nature of T-cell macrophage interaction in helper-cell induction in vitro. II. Two stages of T-helper-cell differentiation analyzed in irradiation and allophenic chimeras.

The genetic restriction in the T-cell-macrophage-like cell interaction in helper cell induction was investigated with allophenic and irradiation chimeras of various types. Using T cells from P leads to F1 chimeras, there was a restriction of cooperation with the parental haplotype accessory cells, unless the chimeric mice were repopulated with macrophages of the opposite haplotype before priming. T cells from primed or unprimed F1 leads to P chimeras only cooperated with recipient type accessory cells. These observations led to the hypothesis that there are two stages in the genesis of immunocompetence of T helper cells, one dependent on the thymus, and the other on peripheral macrophage-like cells. Purified T cells from P1 + P2 leads to F1 irradiation chimeras behaved in an unexpected manner in the unprimed state, preferring to cooperate with their own haplotype macrophages. This self preference was lost after antigen priming in vivo and was not noted in allophenic chimeras. This loss of self preference was restricted to the haplotypes represented in the chimeras, and did not extend to third party haplotypes. While these in vitro induced helper cells from chimeric mice show clear genetic restrictions at the T-cell macrophage-like cell interaction, there was no evidence for a matching T-B genetic restriction.

Animals

Lymphoid function in F1 leads to parent chimeras: lack of evidence for adaptive differentiation of B cells or antigen-presenting cells.

Information was sought on whether B cells undergo abnormal differentiation in F1 leads to parent chimeras (irradiated parental-strain mice reconstituted with F1-hybrid bone marrow cells). As assessed by collaborative responses to sheep erythrocytes in vivo, three different types of T cells restricted to interaction with strain a H-2 determinants were shown to collaborate as effectively with heterologous F1 leads to b chimera B cells as with homologous F1 leads to a chimera B cells. This applied to both primed and unprimed B cells, to IgM- and IgG-antibody formation and to production of Ig allotype. Thus, unlike T cells, B cells from F1 leads to parent chimeras behaved indistinguishably from normal F1 B cells. F1 leads to parent chimeras were also examined for their capacity to present antigen to normal F1 T cells in vivo. The results suggested that the antigen-presenting cells in these chimeras were no different than in normal F1 mice. Collectively these data imply that, at least in the situation studied, raising F1 stem cells in a parental-strain environment has a marked effect on T-cell specificity but does not discernably influence the differentiation of B cells or macrophage-like cells.

Adaptation, Physiological

Failure to detect anti-group-specific murine leukemia virus activity in tetraparental AKR-CBA chimeras.

Tetraparental AKR-CBA/H-T6 chimeras were primarily derived and investigated to determine whether factors associated with the tumor resistance of the CBA/H-T6 could overcome the innate lymphoma susceptibility of the AKR. Evidence has since shown that, on comparison with the AKR, lymphomas were not only delayed but were also less common in a group of 18 early embryo aggregation derived AKR-CBA/H-T6 tetraparental chimeras. Evidence here has shown other clear differences between the AKR and AKR-CBA/H-T6 chimeras. Whereas murine group-specific murine leukemia viral antigens were detected in the sera in both situations, immunoabsorption studies showed that, in the AKR, the antigens exist complexed to the corresponding antibodies. The situation in the chimeras was in complete contrast, since here antigens exist as a "free" form. This in turn has led us to suggest that the advantage in respect to tumor immunity in the AKR-CBA/H-T6 chimeras is due to the tolerance to oncogenic virus being maintained. In this situation and in contrast to the AKR, in the absence of "masking" antibody-viral antigenic complexes, "normal" tumor immunity can be effected. It has to be assumed that tolerance to the oncogenic Gross virus in the AKR-CBA/H-T6 chimeras reflects the influence of the CBA component. How this has possibly been achieved is discussed.

AKR murine leukemia virus

Synthetic multifunctional proteins: isolation of covalently linked tryptophan synthetase alpha-subunit-lac-repressor-beta-galactosidase chimeras.

Several E. coli mutants were isolated which produce triple chimeras between one of the trp enzymes lac, repressor and beta-galactosidase. The mutants were isolated as TonB- Lac+ derivatives of a phenotypically Lac- TrpR- strain carrying a lac I+ -Z+ fusion on a phi80dlac phage. The phage is integrated into the chromosome in such a way that the lac and the trp genes are transcribed in the same direction. Of a total of 58 candidates 2 TrpA- and 3 Trp- strains produce triple chimeras. The chimeras from the two TrpA- strians were further examined. They consist of tryptophan synthetase alpha-subunit, lac repressor and beta-galactosidase. In crude extracts of these strains the tryptophan synthetase alpha-subunit part can be identified by its ability to aggregate with the beta-subunit since some of the beta-subunit activity can be precipitated with antiserum against beta-galactosidase. Furthermore beta-galactosidase precipitates with antiserum against tryptophan synthetase alpha-subunit. The lac repressor part is able to bind IPTG, but not lac operator DNA in vitro. The beta-galactosidase part is as unaffected as in the original lac repressor-beta-galactosidase chimera. The molecular weights of both chimeras are 175,000 when determined by SDS gel electrophoresis. The chimeras are partially degraded giving rise to fragments of distinct molecular weights.

Bacterial Proteins

Primary anti-viral cytotoxic T-cell responses in semiallogeneic chimeras are not absolutely restricted to host H-2 type.

Chimeras produced by reconstitution of 950 rads irradiated type A or type B host mice with (AXB)F1 fetal liver stem cells were examined in primary (in vivo) and secondary (in vitro) Tc-cell responses to ectromelia virus infection. Of 33 individual chimeras which gave primary responses, 26 produced significant specific lysis of infected targets of both A and B type, though host type targets were invariably lysed more efficiently (host bias). The other 7 chimeras gave lysis of infected host type targets only (absolute restriction). 12 individual chimeras were used in secondary responses. Nine showed host bias, and three showed absolute restriction. Whether an individual chimera showed host bias or absolute restriction seemed to be unrelated to whether the response was primary or secondary, to the time after reconstitution (ranging from 4 to 22 wk), to strain of mouse, or to the batch of fetal liver stem cells used.

Animals

Patterns of virus-immune T-cell responsiveness. Comparison of (H-2k X H-2b) leads to H-2b radiation chimeras and negatively selected H-2b lymphocytes.

Negatively selected H-2K(b)D(b) TDL can be induced to respond strongly to vaccinia virus presented in the context of both H-2K(k) and H-2D(b) when stimulated in irradiated H-2K(k)D(b) recipients. Addition of excess (H- 2K(k)D(b) x H-2K(b)D(b))F1 TDL, which are low responders to H-2D(b)-vaccinia virus, does not obviously suppress the reactivity pattern of the H-2K(b)D(b) T cells. However, lymphocytes from chimeras made by reconstituting H- 2K(b)D(b) mice with (H-2K(k)D(k) x H-2K(b)D(b))F(l) bone marrow cells make little, if any, cytotoxic T-cell response to vaccinia virus when sensitized in H-2K(k)D(b) recipients. We have thus documented one instance where the responder phenotype of T ceils from an F(l) {arrow} parent chimera is not equivalent to that associated with the H-2 type of the parental thymus. Lymphocytes from both the chimera and the H-2K(b)D(b) parent (after negative selection) are tolerant to the H-2K(k) and I-A(k) alloantigens encountered in the recipient, but the chimera T cells are also defective in their response to a neoantigen (vaccinia virus) presented in the context of H-2K(k) which the parental T cells invariably recognize. It is thus possible that at least part of the phenomenology associated with the F(l) {arrow} parent radiation chimeras reflects deletion of repertoire in the context of H-2 antigens present during thymocyte ontogeny on other than radiation-resistant thymic epithelium.

Animals

Specific inhibition of the graft-versus-host reaction in fetal or neonatal liver chimeras.

The fetal liver chimera system was used as a model to study the nature of transplantation tolerance in radiation chimeras. A permanent state of tolerance was induced in (C3H/eb times C57BL/6)F1 irradiated mice after reconstitution with parental C57BL/6 fetal or neonatal liver cells. It was found that although enough host hemopoietic cells were present in such chimeras to provide antigenic stimulation, subsequent inoculation of these chimeras with C57BL/6 immunocompetent cells syngeneic to liver donor cells specifically abolished their response against the host. In addition, cells obtained from liver chimeras after their challenge with C57BL cells were unable to produce a graft-versus-host response upon transfer to (C3H/eb times C57BL/6)F1 newborn mice. Transfer of serum of these mice could not prevent immune reactivity of syngeneic C57BL/6 cells neither in the graft-versus-host nor in the mixed lymphocyte culture assays. These observations are compatible with the hypothesis that suppressor cells may differentiate within the fetal liver, which specifically inhibits the immune reactivity of syngeneic cells, and thus leads to the establishment of tolerance.

Animals

Lewis lung tumor system as a model for studying the immune function in syngeneic in equillibrium allogeneic chimeras.

Lewis lung tumor (LLT) passaged in F1 hybrids of the original C57B1/6 strain, where it arose spontaneously, is rejected by allogeneic SWA (Swiss albino) mice. However, aggregation chimeras derived from these SWA mice and the F1 hybrids of C57B1/6 developed an increased growth of primary tumor and reduced number of metastases when compared with the F1 hybrids. In the present study LLT passaged in C57B1/6 mice is not rejected by SWA mice. It is demonstrated that in aggregation chimeras now derived from two strains both taking the tumor, primary tumor growth was enhanced and the number of metastases reduced as in the former experiment. The tendency of reactions of lymphatic orgains in chimeras to tumor burden was comparable with the SWA and F1 hybrid (C57B1/6 multiplied by SWA and SWA multiplied by C57B1/6) recipients' response. Furthermore, chimeras had the highest spleen enlargement. Possible alternations in immune functions of chimeras due to their differing genotype combination are discussed in the LLT model.

Animals

Histocompatibility and T-B cell cooperation in mouse radiation chimeras.

Cooperative interaction between histocompatible as well as histoincompatible T and B cells in vivo was studied with B cell-bearing syngeneic radiation chimeras receiving syngeneic, semiallogeneic, or allogeneic A and T cells in various combinations. The results indicated the following: i) Histoincompatible T and B cells normally did not cooperate successfully for generation of antibody-forming cells. ii) Semiallogeneic (C3BF1) T cells cooperated successfully with parent-type (C3H) B cells developed in parent-type syngeneic chimeras (C3H/C3H), whereas parent-type (C3H as well as C57BL) T cells failed to cooperate with F1 (BC3F1) B cells developed in F1 syngeneic chimeras (BC3F1/BC3F1). iii) T cells obtained from C57BL/C3H or C57BL/C3BF1 chimeras, which were most likely donor (C57BL)- derived, cooperated successfully with C3H-derived B cells developed in C3H/C3H chimeras. iv) Evidence was obtained suggesting that stimulation of antibody response by allogeneic effect in the absence of syngeneic or semisyngeneic helper T cells did not take place in this experimental system. v) With the use of congenic resistant strains, it was shown that alloantigens controlled by H-2 loci, in particular by the K-I region of this gene complex, constituted the barrier of cooperative interaction between histoincompatible T and B cells. vi) Cooperation between H-2 compatible, non-syngeneic T and B cells was also disturbed in varying degrees depending on the strain combinations, thus indicating that cell surface antigens controlled by non-H-2 loci also had a significant role for the cooperative interaction between T and B cells. Problems associated with these findings were discussed.

Animals

Allogeneic bone marrow transplantation in conventional mice: I. Effect of antibiotic therapy on long term survival of allogeneic chimeras.

In the present communication the beneficial effect of long term antimicrobial treatment with poorly absorbable antiboitics on the survival of allogeneic bone marrow chimeras was investigated. The combination of C57Bl mice as bone marrow donors and CBA/CA mice as irradiated recipients (800 rad) was used because of their strong histoincompatibility on the H-2 loci. All allografted recipients received 10 X 10(6) bone marrow cells. The majority of the recipients, which were rendered gnotobiotic by an antimicrobial treatment, achieved stable long term chimerism. In contrast, the conventional chimeras died from secondary disease within 9 weeks after transplantation. As early as 14 days after allogeneic bone marrow grafting the gnotobiotic recipients tolerated the reassociation with a conventional microflora without a change in the rate of mortality. Bone marrow cells (8 X 10(6) i.v.) and spleen cells (2 X 10(6) i.v.) collected from allogeneic chimeras failed to induce graft-versus-host-reaction (GVH) in a second lethally irradiated host. The data indicate, that the high rate of mortality in murine allogeneic bone marrow chimeras results from delayed GVH-reaction and systemic infection. The marrow graft, once established seems to exert tolerance against the allogeneic host. The pathogenesis of the systemic infection has not yet been worked out. It is assumed that it originates from bacteremia, induced by radiation dependent lesions of the epithelial integrity and defected lymphatic tissue in the gut.

Animals

Genetic analysis of developmental mechanisms in hydra. V. Cell lineage and development of chimera hydra.

Chimeric hydra were produced by making use of a strain (nf-1) which lacks interstitial cells, nerve cells and nematocytes. This strain arises by spontaneous loss of interstitial cells from its parental strain (sf-1) (Sugiyama & Fujisawa, 1978). Reintroduction of interstitial cells from other strains into nf-1 leads to the creation of chimeric strains that consisted of epithelial cells derived from strain sf-1 and interstitial cells and their derivatives (nerves and nematocytes) from other strains. In chimeras, interstitial or epithelial cells apparently maintain very stable cell lineages; no indication was obtained that suggested interstitial cell differentiation into epithelial cells or dedifferentiation in the opposite direction during the long courses of chimera cultures (up to one year). Developmental characters of chimeras were examined and compared to those of the epithelial cell (sf-1) and the interstitial cell donors. Almost all of the chimera's characters examined (growth rate, budding rate, tentacle numbers, polyp size, regenerative capacity, etc.) closely resembled those of the epithelial cell donor, but not of the interstitial cell donors. This suggests that epithelial cells, rather than interstitial or nerve cells, are the primary determinant of most, if not all, of hydra developmental characters.

Animals

[Organ tolerance and incomplete bone marrow chimera in dogs].

Cyclophosphamide-induced chimeras develop organ tolerance as do radiation chimeras, as long as hemopoietic cells of donor origin are detectable, independent of the degree of chimerism (n = 7). 4 of 7 dogs with reversion of chimerism rejected their kidney grafts within 11 to 29 days. Three of them, however, retained their kidney grafts permanently indicating that a transient chimerism of a few months duration may be sufficient for induction of tolerance to marrow donor organs in Cy-chimeras. The results suggest that the reversion of chimerism in Cy-chimeras may be due to different mechanisms either immunological rejection or a non-immunological substitution of the grafted marrow by the host's own hemopoiesis.

Animals