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Selection of Glyphosate-Tolerant Tobacco Calli and the Expression of this Tolerance in Regenerated Plants.

From nonmutagenized haploid suspensions of Nicotiana tabacum L. cv Wisconsin 38 cells, 51 cell lines capable of growth in the presence of 1 millimolar glyphosate (N-phosphonomethyl glycine) were initially isolated at a frequency of 2.3 x 10(-8). Eighteen cell lines retained tolerance when grown on selective medium for 3 years. Tolerance persisted for at least 14 months in six cell lines cultured in the absence of glyphosate. Some plants regenerated from four glyphosate-tolerant cell lines were tolerant. Glyphosate-tolerant tissue was isolated from some sensitive as well as some tolerant regenerated plants. Six of the tolerant cell lines were also tolerant to the herbicide amitrole (3-amino-1,2,4-triazole). Five cell lines selected for amitrole tolerance were glyphosate tolerant. Some plants regenerated from three of these five cell lines were glyphosate tolerant and glyphosate-tolerant tissue was obtained from several of these regenerated plants. Amitrole uptake in suspension cultures of several variants was assessed in terms of influx rate constants. This parameter was not sufficiently different indicating that altered membrane properties could not account for the herbicide tolerance.

Journal Article↗

Tolerance to class I major histocompatibility complex antigens in chicken B cell chimeras. Effect of B cell depletion on transferability of tolerance.

B cells from bursa of Fabricius of newly hatched chickens are able to reconstitute the B cell compartment of chemically bursectomized chickens. The resulting B cell chimerism can be detected with monoclonal antibodies against donor B cell alloantigen. Chimeric chickens accept donor-type skin grafts and are unresponsive to donor major histocompatibility complex (MHC) antigens in graft-vs.-host splenomegaly assay and mixed lymphocyte reaction. To study the capability of B cells to induce tolerance to selected MHC antigens, we transplanted class I or total MHC-incompatible bursa cells into cyclophosphamide-treated recipients. The recipients of class I or total MHC-incompatible bursa cells were equally tolerant of donor-MHC antigens. To further analyze the mechanisms of tolerance to class I antigens vs. total MHC, spleen cells from tolerant chickens were transferred to irradiated, histocompatible secondary hosts. The secondary recipients were also unresponsive to bursa cell donor-strain MHC antigens. However, if the chimeric B cells were depleted before the spleen cell transfer, the transfer of tolerance to total MHC was severely inhibited. Instead, most recipients of B cell-depleted spleen cells tolerant of class I antigens were still tolerant of bursa cell donor MHC. Our results indicate differences in the transferability of tolerance to class I antigens vs. entire MHC, although in primary recipients of bursa cells the tolerance is similar. These data suggest that a mechanism that is not dependent on the presence of donor cell chimerism contributes to the maintenance of tolerance to donor class I antigens. The transfer of tolerance to total MHC disparity requires the presence of chimeric cells indicating that donor alloantigen expression is needed for induction of tolerance in the secondary hosts.

Animals↗

Loss of tolerance to morphine after a change in route of administration: control of within-session tolerance by interoceptive conditioned stimuli.

Tolerance to morphine analgesia (tail-immersion test) was examined after manipulation of two aspects of a tolerance test: 1) the route of drug administration and 2) the time interval between the test dosing and the tolerance test. The intravenous (IV) and intraperitoneal (IP) routes were used, together with a novel test for tolerance in which the test morphine was infused IV just 2 min before measuring the opiate effect. The first experiment validated this test as an assay for tolerance by examining the log dose-response (LDR) curve changes produced by daily IP injection with 0, 20 or 200 mg/kg morphine; the IV test confirmed the expected parallel shift to the right and flattening of the LDR curve. In the second experiment, all rats of two groups were injected once daily for 3 weeks with 20 mg/kg morphine and with saline except that one group received the morphine IV (and saline IP), the other morphine IP (saline IV). The results indicated route-specific tolerance. On a test using 20 mg/kg given IV morphine, tolerance was significantly greater in rats treated with IV morphine than in those treated IP. However, a larger effect on tolerance was produced by a pretest application of 5 mg/kg morphine 30 min before the actual tolerance test. This manipulation was designed to "prime" short-term, adaptive processes hypothesized to occur within a normal tolerance test session as morphine is taking effect. The tolerance on the test increased (equivalent to 2 to 3 fold shift in the LDR curve) when the pretest morphine was given with the same route as the chronic morphine, regardless of treatment group. It was concluded that opiate tolerance may be modulated by conditioned stimuli produced by morphine acting through different routes. These interoceptive cues appear to modulate rapidly acquired and short-lived adaptive processes taking place within a given test session.

Analgesics, Opioid↗

Sensory irritation tolerance and cross-tolerance in F-344 rats exposed to chlorine or formaldehyde gas.

Inhalation of chlorine (Cl2) or formaldehyde (HCHO) stimulates the trigeminal nerve endings in the nasal mucosa and results in respiratory rate depression in a concentration-dependent manner. To determine tolerance and cross-tolerance, the concentration-response curves of respiratory depression were compared between naive rats and rats pre-exposed to Cl2 or HCHO. Chlorine tolerance development was time and concentration dependent, being significant following a 1-day (6 hr/day), 10 ppm exposure, and reaching the maximum in 4 days. At 2.5 ppm of Cl2, tolerance was significant only after 10 days of exposure. Rats tolerant to Cl2 also showed cross-tolerance to HCHO. Tolerance to HCHO was observed in rats exposed to 28 ppm for 4 days, but not in groups exposed to 15 ppm for 1, 4, or 10 days. However, significant cross-tolerance to Cl2 was evident following a 1-day exposure to 15 ppm HCHO, with greatest effect seen in the group exposed for 10 days. Tolerance was reduced after a 7-day recovery following a 4-day exposure. Cross-tolerance was reduced also, but to a much lesser extent. These results suggest a common mechanism for tolerance and cross-tolerance development, but different reactive sites may exist for Cl2 and HCHO at the trigeminal nerve endings.

Animals↗

Induction of tolerance across major barriers using a two-step method with genetic analysis of tolerance induction.

Using a murine skin allograft tolerance induction system that consists of intravenous injection of 1 x 10(8) allogeneic spleen cells followed by intraperitoneal (i.p.) injection of 200 mg/kg cyclophosphamide (CP) 2 days later, sensitivity to tolerance induction was examined across various histocompatibility (H) barriers. Although each group of class I, class II or multiminor H antigens was not by itself a prohibitively strong barrier, resistance to tolerance induction increased when the three types of barriers were combined in various ways. When the donor-recipient combinations were disparate at the entire spectrum of both H-2 plus non H-2 antigens (fully allogeneic), profound tolerance to skin allografts was not induced by this method in any of the combinations examined. Based on these results, induction of tolerance across fully allogeneic barriers was attempted in C57BL/10SnJ (B10; H-2b) mice against C3H/HeSnJ (C3H; H-2k) strain by addressing the 11 barriers as two separate challenges. B10 mice were first given B10.BR/SgSnJ (B10.BR; H-2k) spleen cells plus CP to make them tolerant to the H-2k component represented among C3H antigens, and then later were given C3H spleen cells plus CP to establish a tolerant state to the remainder of the disparate antigens of the C3H donors. After these two separate manipulations, C3H skin was accepted in the B10 mice, and normal hair growth was observed in the grafted C3H skin. By contrast, B10 mice given C3H spleen cells plus CP and then again another injection of C3H spleen cells plus CP were not rendered tolerant to C3H skin. In B10 mice, tolerance to C3H induced with B10.BR spleen cells plus CP and then C3H spleen cells plus CP was specific to C3H, and the tolerant B10 mice rejected third-party skin from DBA/2J (DBA; H-2d) strain in a normal fashion. In transfer experiments, the mechanism of tolerance was found to be based largely on reduction of the effector cells rather than on a mechanism involving active suppression. Assays for chimerism revealed that maintaining the tolerant state required persistence of cells of donor origin. These data indicate that in a primary immune response to a certain dose of allogeneic cells (tolerogen), the existence of a relatively large proportion of potentially reactive clones in the host may trigger proliferation of only a part of the population and some of the potentially reactive cells may differentiate rapidly without a prolonged period of proliferation.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Mechanisms of transplantation tolerance in B-cell-chimeric chickens. Impairment of tolerance by T cell growth factor.

Transplantation tolerance was induced in cyclophosphamide-treated, B-cell-depleted chickens by transfer of allogeneic bursal cells. To study the presence of specific suppressor cells in tolerant birds, mitomycin-C-treated peripheral blood lymphocytes (PBL) from tolerant recipients were cocultured in mixed lymphocyte cultures of normal syngeneic responder and allogeneic stimulator cells. No evidence of suppression was detected, since responses in cultures with tolerant cocultured cells were on the same level as the mixed lymphocyte reaction (MLR) of normal responders without cocultured cells. However, responses in cultures with normal cocultured cells were significantly higher. If cocultured cells were not treated with mitomycin C, responses to tolerizing alloantigen were equally high in cultures with tolerant cocultured cells as in cultures with normal cocultured cells. Likewise, when lymphocytes from tolerant chickens were mixed with normal syngeneic cells in graft-versus-host (GVH) splenomegaly assay, no suppression was detected, but the GVH reaction was even stronger than the reaction induced by the mixture of cells from two normal chickens. Furthermore, administration of chicken T cell growth factor (TCGF) into the cultures enhanced considerably the MLR of tolerant cells against the tolerizing alloantigen, but not against syngeneic or third-party stimulator cells. These results indicate that the transplantation tolerance in B-cell-chimeric chickens is due to lack of alloantigen-specific helper cells. When exogenous help is offered to tolerant cells either by normal syngeneic cells or by exogenous TCGF, the reactivity of tolerant cells against the tolerogen is reestablished.

Animals↗

Similarity and difference in the mechanisms of neonatally induced tolerance and cyclophosphamide-induced tolerance in mice.

The mechanisms of cyclophosphamide (CP)-induced tolerance were investigated by comparing with those of neonatally induced tolerance. When C3H/He Slc (C3H; H-2k, Mls-1b) mice were given i.v. either AKR/J Sea (AKR; H-2k, Mls-1a) or (AKR x C3H)F1 (AKC3F1; H-2k, Mls-1a/b) spleen cells and treated i.p. with CP 2 days later, a long-lasting skin allograft tolerance to AKR was induced in each case without any signs of graft-vs-host disease (GVHD). However, typical signs of GVHD were observed in the C3H mice neonatally tolerized with AKR spleen cells, but not in those tolerized with AKC3F1 spleen cells. The expression of TCR V beta 6, which is strongly correlated with the reactivity to Mls-1a Ag (of donor AKR origin), in the periphery was quite different between the two types of tolerant C3H mice. Namely, in the lymph nodes of the C3H mice tolerized with AKR spleen cells and CP, only CD4(+)-V beta 6+, but not CD8(+)-V beta 6+, T cells selectively disappeared, whereas both of them were abrogated in the lymph nodes of the C3H mice neonatally tolerized of AKR. By contrast, in the thymus of the two types of tolerant C3H mice, both CD4+CD8- and CD4-CD8+ single-positive thymocytes expressing TCR V beta 6 were clonally deleted, suggesting that the thymic involvement was the same in each type of tolerance. These results suggest that the preferential disappearance of the CD4(+)-V beta 6+ T cells (of host origin) and the effector T cells of GVHD (of donor origin) occurred only in the periphery of the C3H mice tolerized with AKR spleen cells plus CP and was attributable to the destruction of Ag-stimulated T cells by the CP treatment. In contrast, the intrathymic clonal deletion of immature V beta 6+ T cells was a common mechanism for both of the tolerance induction systems.

Animals↗

Analysis of neonatally induced tolerance of H-2 alloantigens. I. Adoptive transfer indicates that tolerance of class I and class II antigens is maintained by distinct mechanisms.

Neonatal inoculation of mice with semi-allogeneic lymphohematopoietic cells produces a state of highly specific allograft tolerance. Phenotypically, by both in vivo and in vitro criteria, antigen-reactive cells specific for the tolerated antigens appear to be clonally deleted from intact, tolerant mice. However, a series of adoptive transfer experiments using mice rendered tolerant of various H-2 alloantigens revealed that tolerance of Ia (class II) antigens is maintained by a different mechanism than tolerance of K/D (class I) antigens. Long-term acceptance of Ia-disparate grafts by recipients of Ia-tolerant lymphoid cells suggested that an active process (rather than passive clonal deletion) mediates and maintains this type of tolerance. No comparable success was achieved when tolerance of isolated class I or entire H-2 haplotype disparity was examined, suggesting that clonal deletion might be operative in these combinations. Modest prolongation of skin-graft survival was observed in adoptive transfer recipients of lymphoid cells from donors tolerant of I-JECSD disparity. These data are compatible with the hypothesis that the central I region (JE) promotes tolerance induction to associated strong IA- and D-region alloantigens by activating a suppression mechanism.

Animals↗

Role of serotonin in tolerance to ethanol and barbiturates: evidence for a specific vs. non-specific concept of tolerance.

The results of our recent investigations have suggested that tolerance and cross-tolerance development to motor-impairing and hypothermic effects of ethanol was slowed when brain serotonin (5-HT) was extensively depleted by treatment with p-chlorophenylalanine (p-CPA). These findings have been extended by the observation that p-PCA also slowed the development of tolerance to motor-impairing effects of barbital whether tolerance was tested repeatedly in the same animal or in separate subgroups being tested only once. Additional support was provided by the demonstration that intracerebral injection of 5,7-dihydroxytryptamine (-DHT), which is known to deplete 5-HT markedly, also slowed the development of tolerance to motor-impairing and hypothermic effects of ethanol. In addition, when brain 5-HT level was elevated by administration of L-tryptophan, the rate of tolerance development to ethanol, as measured by motor impairment and hypothermia, was accelerated. In contrast to 5,7-DHT, intracerebral injection of 5,6-DHT was surprisingly found to accelerate the development of tolerance to ethanol. Upon further investigation, however, it was determined that the 5,6-DHT treatment depleted brain 5-HT levels by only 20% and, in addition, resulted in the development of supersensitivity. These results further confirm and extend the generality of our observations that 5-HT may be involved in the development of tolerance and cross-tolerance to sedatives. The possibility of a non-specific vs. specific effect of the serotoninergic system (as well as other aminergic systems) in tolerance and neuroplasticity deserves further investigation. The possible significance of these findings and the role of 5-HT (and noradrenaline) in the mechanism of tolerance are discussed in terms of analogy to enzyme or receptor mechanism.

5,6-Dihydroxytryptamine↗

Differences in the mechanism of tolerance to dinitrophenylated bovine gamma globulin when induced in normal adult mice or in reconstituted irradiated mice: dependence of the mechanism of tolerance on the structural organization of the lymphoid system.

Tolerance can be induced in adult mice by a single intravenous injection of 0.5 mg dinitrophenylated bovine gamma globulin. The cellular mechanism of the unresponsive state is different depending upon whether the tolerance is induced in normal intact adult mice or in reconstituted, irradiated mice. The tolerant state induced in intact mice is characterized by a high avidity of the residual antibody-forming cells in partially tolerant animals and a prompt reversibility on cell transfer. The overall properties of this unresponsive state are consistent with the hypothesis that it is mediated by the production of small amounts of high affinity antibody in response to the tolerance-inducing injection of antigen. In contrast, the unresponsiveness induced in reconstituted, irradiated mice by the same procedure was characterized by a low avidity of the residual antibody-forming cells in partially tolerant animals and stability on transfer of spleen cells from unresponsive into irradiated recipients. No suppressor cell activity was detected and mixed cell transfer studies were consitent with the view that this unresponsive state represented a B-lymphocyte clonal deletion. The presence or absence of T lymphocytes in the population of cells used for reconstituting the irradiated recipients did not effect the ease of tolernace induction or the cellular mechanism of the tolerant state which was produced. If irradiated mice reconstituted with B and T lymphocytes were rested for 2 wk before tolerance induction then a reversible "high affinity"-type tolerance is obtained such as is typical of normal intact animals. Restorationof a "normal" response to the tolerance-inducing injection of antigen is dependent upon the presence of thymus cells in the population of cells used for reconstitution. It is suggested that the structural integrity of the lymphoid tissue is critical in determining whether B cell will be rendered tolerant after exposure to antigen in vivo.

Age Factors↗

B-cell tolerance. IV. Differential role of surface IgM and IgD in determining tolerance susceptibility of murine B cells.

During ontogeny IgD appears later than IgM on splenocytes of neonatal mice (1) and at a time when mice develop a markedly increased immune responsiveness (2). Based on these observations, it was suggested that IgD serves as a "triggering" isotype for induction of immune responses, whereas surface IgM functions as a tolerizing receptor (3). To test this hypothesis, the susceptibility of adult splenocytes (which are predominantly mu(+)delta(+)[4-6]) and neonatal splenocytes (which bear predominantly IgM [mup(+); 1, 4-6]) to tolerance induction were compared. The results indicate that neonatal splenic B cells responsive to thymus dependent (TD) antigens are exquisitely susceptible to tolerance induction compared with those from adult mice (7-9). However, cells from both adult and neonatal mice were highly susceptible to tolerance induction when thymus independent (TI) antigen was used as immunogen (8). These results suggest that the major precursor for the TD response is a mu(+)delta(+)-cell which appears late in ontogeny and is resistant to tolerance induction and that the mup(+)-cell is the major precursor for the TI response and is highly susceptible to tolerance induction. Other differences between responders for TI and TD antigens have been described previously (10-12). To test this concept, adult splenocytes were treated with papain under conditions in which IgD, but not five other surface molecules, was removed (13). Such treated splenocytes were shown to be markedly susceptible to tolerance induction, resembling TD responders from neonatal animals. This experiment was interpreted as indicating that IgD confers resistance to tolerance induction on mu(+)delta(+)-cells. To prove this interpretation, it is necessary to show that specific removal of IgD with anti-delta also results in increased susceptibility to tolerance induction and that treatment with anti-mu does not have a similar effect. In the present studies, we have removed surface IgM or IgD by antibody-induced capping and assessed the tolerance susceptibility of the treated cells. Our results demonstrate that removal of IgD, but no IgM, from TD responders increases their susceptibility to tolerance induction.

B-Lymphocytes↗

Immunological tolerance to microbial antigens. II. Suppressed antibody plaque formation to Shigella antigen by spleen cells from tolerant mice.

Friedman, Herman (Albert Einstein Medical Center, Philadelphia, Pa.). Immunological tolerance to microbial antigens. II. Suppressed antibody plaque formation to Shigella antigen by spleen cells from tolerant mice. J. Bacteriol. 92:820-827. 1966.-An indirect, localized, antibody plaque procedure has been used to demonstrate a marked difference in the number of antibody plaques formed with spleen cell suspensions from normal and Shigella-tolerant mice. Whereas challenge with soluble Shigella antigen (SSA) into normal mice, ranging in age from 4 to 40 weeks, resulted in a rapid rise in antibody plaque formation to Shigella-treated sheep erythrocytes, there was only a slight increase in plaque formation with spleen cell suspensions from similarly challenged mice which had been made tolerant to Shigella antigen during neonatal life. Apparently, the suppression of plaque formation to Shigella in tolerant animals was specific, since both Shigella-tolerant and normal mice responded equally well to untreated sheep red blood cells after challenge with sheep erythrocytes only. Spleen cells from nonchallenged Shigella-tolerant mice did not form significant numbers of antibody plaques to SSA-treated red blood cells during an observation period of 4 to 30 weeks after neonatal administration of antigen. "Nonspecific" increases in plaque formation to untreated sheep red cells occurred with spleen cell suspensions from both normal and SSA-tolerant mice after challenge injection with Shigella antigen, with or without sheep erythrocytes. Such a response suggested an adjuvant effect for the endotoxin-containing Shigella antigen even in mice tolerant to the agglutinogenic moiety of SSA. The results of these experiments support the view that specific antibody-forming cells are either absent or in low number in lymphoid tissue from mice specifically tolerant to Shigella antigens. It seems unlikely that the low postchallenge agglutinin titers of tolerant mice are due to suppressed antibody formation by normal numbers of individual antibody-producing cells, or due to "masking" of normal antibody production by persisting circulating antigen.

Animals↗

Bacterial lipoprotein-induced self-tolerance and cross-tolerance to LPS are associated with reduced IRAK-1 expression and MyD88-IRAK complex formation.

Tolerance to bacterial cell-wall components may represent an essential regulatory mechanism during bacterial infection. We have demonstrated previously that the inhibition of nuclear factor (NF)-kappaB and mitogen-activated protein kinase activation was present in bacterial lipoprotein (BLP) self-tolerance and its cross-tolerance to lipopolysaccharide (LPS). In this study, the effect of BLP-induced tolerance on the myeloid differentiation factor 88 (MyD88)-dependent upstream signaling pathway for NF-kappaB activation in vitro was examined further. When compared with nontolerant human monocytic THP-1 cells, BLP-tolerant cells had a significant reduction in tumor necrosis factor alpha (TNF-alpha) production in response to a high-dose BLP (86+/-12 vs. 6042+/-245 ng/ml, P < 0.01) or LPS (341+/-36 vs. 7882+/-318 ng/ml, P < 0.01) stimulation. The expression of Toll-like receptor 2 (TLR2) protein was down-regulated in BLP-tolerant cells, whereas no significant differences in TLR4, MyD88, interleukin-1 receptor-associated kinase 4 (IRAK-4), and TNF receptor-associated factor 6 expression were observed between nontolerant and BLP-tolerant cells, as confirmed by Western blot analysis. The IRAK-1 protein was reduced markedly in BLP-tolerant cells, although IRAK-1 mRNA expression remained unchanged as revealed by real-time reverse transcriptase-polymerase chain reaction analysis. Furthermore, decreased MyD88-IRAK immunocomplex formation, as demonstrated by immunoprecipitation, was observed in BLP-tolerant cells following a second BLP or LPS stimulation. BLP pretreatment also resulted in a marked inhibition in total and phosphorylated inhibitor of kappaB-alpha (IkappaB-alpha) expression, which was not up-regulated by subsequent BLP or LPS stimulation. These results demonstrate that in addition to the down-regulation of TLR2 expression, BLP tolerance is associated with a reduction in IRAK-1 expression, MyD88-IRAK association, and IkappaB-alpha phosphorylation. These findings further elucidate the molecular mechanisms underlying bacterial peptide tolerance.

Adaptor Proteins, Signal Transducing↗

Identification of rice varieties with high tolerance or sensitivity to lead and characterization of the mechanism of tolerance.

Pb inhibits plant growth. To study Pb tolerance in rice (Oryza sativa), we screened 229 varieties for Pb tolerance or sensitivity. Three-day-old seedlings were treated for 12 d with 20 microM Pb solution. Based on the dry weight of the root, three Pb-tolerant (var CH-55, var KH-2J, var Kumnung) and three Pb-sensitive (var Aixueru, var C-9491, var Milyang23) rice varieties were selected. The root biomasses of the tolerant varieties were approximately 10-fold higher than those of the sensitive ones. The greatest morphological difference between the two groups was in the growth of the adventitious roots, as tolerant lines were able to develop adventitious roots after 6 d of Pb treatment, whereas sensitive ones did not develop any even after 15 d. The growth of adventitious roots in the tolerant varieties was dependent on a mechanism, whereby Pb was altered to a form that cannot be taken up by the tissue, because (a) the solution in which the tolerant varieties of rice had grown still contained Pb but nevertheless did not affect the root growth of new rice seedlings, and (b) the adventitious roots of tolerant seedlings developed in Pb solution contained little Pb. The oxalate content in the root and root exudate increased upon Pb treatment in the tolerant varieties, whereas the opposite was observed for the sensitive ones. Oxalate added to the growth solution ameliorated the inhibition of root growth by Pb. These results suggest that compounds such as oxalate secreted from the root may reduce the bio-availability of Pb, and that this may constitute an important Pb tolerance mechanism in the tolerant rice varieties studied here.

Adaptation, Physiological↗

Tolerance percentage as a criterion for the detection of tolerant Staphylococcus aureus strains.

In this study, the degree of tolerance was determined in several populations of Staphylococcus aureus isolates. The degree of tolerance of a staphylococcal strain can be established in a reproducible way by exposing the strain to increasing concentrations of a beta-lactam antibiotic and determining the number of surviving bacteria at each concentration. The number of surviving bacteria was expressed as a fraction of the initial inoculum. By this technique, it appears that for each strain the value of the surviving fraction stabilized above a certain concentration of the antibiotic. This value was called the tolerance percentage of the strain. In 64 S. aureus strains isolated from blood cultures in 1982, the tolerance percentages, after exposure to methicillin, varied from less than or equal to 0.1 to 6; 28% of the strains showed a tolerance percentage of less than or equal to 0.1, and 12.5% showed a tolerance percentage of greater than or equal to 2. Similar tolerance percentages were found with cloxacillin, nafcillin, cephalothin, and penicillin. Strains with a tolerance percentage of greater than or equal to 2 showed slow killing and lysis in the presence of a high methicillin concentration. A tolerance percentage of 2 appeared to be the breakpoint between susceptible and tolerant strains. Older collections of S. aureus strains, dating from the years 1951 to 1953 and 1957 to 1958, also included strains with a survival percentage of greater than or equal to 2, thus indicating that tolerance of S. aureus to beta-lactam antibiotics is not a new phenomenon.

Cephalothin↗

Role of Pavlovian conditioning in the development of tolerance and cross-tolerance to the hypothermic effect of ethanol and hydralazine.

The role of Pavlovian conditioning in the development of tolerance to the hypothermic effect of ethanol and of cross-tolerance to hydralazine was investigated. In the first study, two groups of rats were treated on alternate days with ethanol (2 or 4 g/kg, respectively, IP) in a novel and distinctive environment (DR). On the non-alcohol days, they received saline in the home room (HR). A control group received saline in both environments. Tolerance to the hypothermic effect of ethanol in the DR was demonstrable in both the 2 and 4 g/kg treatment groups. Tolerance in the HR, however, was observed only in the 4 g/kg treated group. Cross-tolerance to the hypothermic effect of hydralazine was observed for both ethanol-treated groups in the DR but not in the HR. In the second study, ethanol treatment was carried out by daily intubation with 6 g/kg ethanol in the home cage. Tolerance to ethanol-induced hypothermia was demonstrated either in the home cage or in a novel environment. This treatment, however, failed to confer cross-tolerance to the hypothermic effect of hydralazine. These findings suggest that conditioning plays a predominant role in the tolerance produced by low but not by high treatment dosage. The data also suggest that conditioning might be a separate component in tolerance development, which is of special importance in tolerance to behavioral effects in the whole animal rather than to cellular or molecular effects.

Animals↗

Studies on the recovery from tolerance to tumor antigens. II. Accelerated recovery of tumor-specific effector T cells in tolerant mice by applying T-T cell interaction mechanism.

C3H/He mice were injected i.v. with heavily X-irradiated syngeneic X5563 tumor cells three times at 4-day intervals. This regimen resulted in the abrogation of the potential to generate X5563 tumor-specific T cell-mediated immunity as induced by i.d. inoculation of viable X5563 tumor cells followed by surgical resection of the tumor, representing the tolerance induction. Although such a tumor-specific tolerant state was long-lasting, the recovery of anti-X5563 effector T cell responses was observed when the above ordinary immunization procedure was performed 6 months after the tolerance induction. The present study investigated whether the recovery from the tolerance can be accelerated by applying a helper-effector T-T cell interaction model in which enhanced anti-X5563 immunity is obtained by priming mice with BCG and by immunizing X5563 tumor cells modified with BCG cross-reactive MDP hapten (designated as L4-MDP) in the presence of anti-L4-MDP helper T cells preinduced with BCG. The results demonstrated that BCG-primed mice which received the tolerance regimen failed to generate anti-X5563 immunity when the ordinary immunization was performed 2 or 3 months after the tolerance induction. In contrast, the immunization of BCG-primed and X5563-tolerant mice with L4-MDP-coupled X5563 tumor cells at comparable timing to that of the ordinary immunization were capable of generating potent X5563-specific in vivo protective T cell-mediated immunity. As control groups, BCG-primed or unprimed tolerant mice did not develop anti-X5563 immunity when immunized with L4-MDP-uncoupled or L4-MDP-coupled tumor cells, respectively. These results indicate that immunization of BCG-primed, tumor-tolerant mice with L4-MDP-modified tumor cells results in accelerated recovery from the tumor tolerance.

Animals↗