PubMed HealthSearch

SEARCH · PubMed Health

Results for “Tolerance mechanism”

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

Comparison of stress tolerance mechanisms between Saccharomyces cerevisiae and the multistress-tolerant Pichia kudriavzevii.

Yeasts play a vital role in both research and industrial biomanufacturing. Saccharomyces cerevisiae has been extensively utilized as a model system. However, its application is often constrained by limited tolerance to the diverse stress conditions encountered in bioprocesses. These challenges have driven increasing interest in nonconventional, multistress-tolerant yeasts as alternative biomanufacturing hosts. This review highlights Pichia kudriavzevii as a promising nonconventional yeast for industrial applications. Unlike S. cerevisiae, P. kudriavzevii exhibits exceptional tolerance to high temperatures, elevated concentrations of furanic and phenolic inhibitors, osmotic stress, salinity, and extreme pH. These traits make it an attractive candidate for industrial processes without requiring extensive genetic modifications to enhance stress resistance. As a result, P. kudriavzevii has emerged as a flagship species for advancing bioeconomy. Despite its industrial potential, the molecular mechanisms underlying P. kudriavzevii's superior stress tolerance remain poorly understood. This review compiles current knowledge on P. kudriavzevii and compares its stress tolerance mechanisms with those of S. cerevisiae, providing insights into its innate resilience. By expanding our understanding of nonconventional yeasts, this review aims to facilitate their broader adoption as robust microbial platforms for industrial biomanufacturing.

Saccharomyces cerevisiae

Integrated multi-omics analysis of fluoroquinolone tolerance mechanisms induced by enrofloxacin in Pasteurella multocida.

BACKGROUND: The global prevalence of multidrug-resistant bacteria has been rising at an alarming rate, posing a serious threat to both human and animal health. However, the mechanisms by which bacteria acquire antibiotic tolerance and subsequently develop resistance remain incompletely understood. METHODS: In this study, Pasteurella multocida, a common pathogen in the animal husbandry industry, was exposed to enrofloxacin, and genome resequencing, transcriptomic, and metabolomic analyses were performed to elucidate the adaptive mechanisms of P. multocida under fluoroquinolone-induced stress. RESULTS: Compared with the wild-type strain, the enrofloxacin-tolerant strain exhibited an extended lag phase, a prolonged logarithmic phase, reduced sensitivity to polymyxin B, reduced biofilm formation, and an elongated cellular morphology. Multi-omics analysis revealed a deletion in the dusB gene of the tolerant strain, resulting in a truncated non-functional protein. The deletion of dusB enhanced tolerance by prolonging the lag phase and reducing the growth rate. Moreover, the expression of genes in the CAMP pathway was up-regulated, and deletion of cpxR further promoted tolerance by modulating ribosome-associated genes. Integrated transcriptomic and metabolomic analyses indicated activation of the tricarboxylic acid (TCA) cycle during tolerance development. CONCLUSION: This study identified dusB and cpxR as key genes mediating enrofloxacin tolerance in P. multocida, elucidated the association between the antibiotic tolerance, growth, and gene expression, and may provide potential targets for future strategies aimed at limiting tolerance-associated resistance development.

Enrofloxacin

Transcriptional regulation reveals potent drought tolerance mechanisms in contrasting genotypes of Cajanus cajan (L.) Millspaugh.

Global warming severely impacts crop productivity, particularly in the Global South. Tropical pulse crops are nutritious staples and tolerant to harsh conditions, such as pigeonpea (Cajanus cajan). Two pigeonpea varieties have superior qualities, also with respect to abiotic stress tolerance: drought-tolerant Pusa Arhar 16 (PA16) and moderately drought-sensitive Pusa 992 (PA99). However, both are understudied at the molecular level. This study investigates molecular mechanisms of drought tolerance by investigating their responses to polyethylene glycol-induced drought. Superior drought tolerance in PA16 was characterized by enhanced shoot growth, photosynthetic characteristics and reduced oxidative stress as compared to PA992, while root length showed no significant difference between the varieties. Transcriptomic analysis identified differentially expressed genes among treatments and varieties, significantly upregulated under drought in PA16 versus PA992 with distinct patterns. For example, genes encoding terpenoid biosynthesis were up-regulated only in PA16, while those encoding LATE EMBRYOGENESIS ABUNDANT (LEA) proteins were drought-induced in both, PA16 and PA992. Functional enrichment analyses coupled with Weighted Correlation Network Analysis uncovered co-expression networks regulating drought-related pathways. Hence, the genotype and environment-specific gene regulation patterns suggest molecular and physiological mechanisms related to secondary metabolisms and LEA proteins underlying drought resilience in pigeonpea. This research offers potential targets for breeding drought-tolerant varieties of this important legume crop.

Cajanus

Tolerance mechanism in experimental ovarian and gastric autoimmune diseases.

Neonatal splenocytes, neonatal thymocytes, or phenotypically mature adult thymocytes, transferred from normal BALB/c mice to syngeneic athymic nu/nu (or SCID) mice, led to autoimmune oophoritis and autoimmune gastritis, with corresponding serum autoantibodies, in the recipients. The overall disease incidence was 73%; the pathology ranged from mild to severe, with complete loss of ovarian follicles and gastric parietal cells. CD4+ neonatal spleen cells and CD4+ CD8- adult thymocytes were required for autoimmune disease induction. Adult spleen cells did not elicit disease, but they prevented disease when co-transferred with neonatal spleen cells. However, in confirmation of an earlier report by Sakaguchi et al., (J. Exp. Med. 161:72, 1985), a subset of adult splenic T cells expressing a low level of CD5 molecules elicited similar autoimmune diseases. Thus, self-reactive T cells responsible for autoimmune disease of the stomach and ovary are not effectively deleted in the thymus, and they exist in the peripheral lymphoid organs of normal mice. We conclude that the functional expression of the self-reactive T cells is ontogenetically regulated; whereas T cells in the neonatal mice readily elicited autoimmune diseases in nu/nu recipients, regulatory cells may render self-reactive T cells in the normal adults unresponsive.

Animals

[Mechanical tolerance of tentorium cerebelli (author's transl)].

In some cases of accidents primary traumatic brain stem hemorrhages are seen in conjunction with lesions of the tentorium cerebelli. In order to decide, whether accelerations of the infra- or supratentorial brain tissue are actually capable of causing tentorium lesions, burst and teartests of tentorium tissue were conducted. The mean dynamic biaxial tearing force was found to be about 4 bar. This value supports the hypothesis that a main injury causing factor of the tentorium in cases without skull fracture could be the relative motion between the tentorium and the brain hemispheres. The mass of the cerebellum however seems to be insufficient to cause such injury producing deceleration forces on the tentorium.

Acceleration

Metabolic background for glucose tolerance: mechanism for epinephrine-induced impairment.

Turnover rates of blood glucose in rats were calculated from the decay of [14C]glucose. A glucose load suppressed glucose appearance and this was reversed by epinephrine or glucagon. Incorporation of [14C]bicarbonate into liver glycogen and blood glucose demonstrated that these hormones did not alter gluconeogetic rate but, rather the proportion of glucose recovered in the two products. The glucose enhanced by glucagon, probably through increased insulin secretion. In contrast, epinephrine decreased peripheral glucose uptake.

Animals

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

Differing mechanisms of tolerance and desensitization to dinitrochlorobenzene in guinea pigs.

In the present paper the mechanisms of tolerance and desensitization to dinitrochlorobenzene (DNCB) contact sensitivity in guinea pigs were investigated using the methods of adoptive sensitization of tolerant and normal syngeneic recipients and cyclophosphamide-treatment of tolerant animals known to selectively inactivate suppressor lymphocytes. It was shown that desensitization of presensitized animals is caused by the direct effect of the intravenously injected hapten on the effector cells in the peripheral compartment. The immediate onset of unresponsiveness and its very short duration almost exclude the possible involvement of enhancing antibodies or suppressor cells. In the case of tolerance induced by pretreatment with dinitrobenzenesulfonic acid, suppressor cell activity is enhanced, preventing normal specific immunocompetent cells from recognizing the antigen and/or proliferating in the draining lymph nodes. Whether suppressor lymphocytes are of the B or T type is not yet known.

Animals

Neurohormonal activation during nitrate therapy: a possible mechanism for tolerance.

The hemodynamic and antianginal effects of the organic nitrates are greatly reduced during therapy designed to provide 24-hour protection throughout each day. Although the mechanisms of tolerance are not clearly understood, it is likely that tolerance is related to a combination of reduced sulfhydryl groups in vascular smooth muscle and neurohormonal activation. These changes would reduce nitrate-induced vasodilation and induce sodium and water retention with an increase in plasma volume. These reflex neurohormonal changes would reduce the hemodynamic effect of any given degree of nitrate-induced vasodilation. Although preliminary studies suggest that diuretic therapy or the use of converting enzyme inhibitors may reduce or abolish tolerance, further clinical studies are required to confirm these findings.

Angiotensin-Converting Enzyme Inhibitors

The mechanism of tolerance induction in thymus-derived lymphocytes; I. intracellular inactivation of hapten-reactive helper T lymphocytes by hapten-nonimmunogenic copolymer of D-amino acids.

Treatment of a p-azobenzoate (PAB) derivative of a copolymer of D-glutamic acid and D-lysine (D-GL) induced a profound state of unresponsiveness to PAB-reactive helper T lymphocytes generated in PAB-mouse gamma globulin (MGG)-primed mice. This unresponsiveness in T lymphocytes was specific for PAB-reactive cells, since the bacterial alpha-amylase-, keyhole limpet hemocyanin-, or ovalbumin-primed helper T lymphocytes were not suppressed by PAB-D-GL treatment. Taking advantage of the relative ease with which PAB-D-GL can induce specific unresponsiveness to helper T lymphocytes in an animal previously primed with PAB-MGG, it was possible to approach certain questions concerning the mechanisms of tolerance-induction and the fate of tolerant helper T lymphocytes in the PAB-D-GL model by utilizing a classical adoptive cell transfer systemmelimination of the possibility of carry-over of the tolerogen with cells or of the generation of suppressor cells as the result of PAB-D-GL treatment as an explanation of the suppression of helper T-cell activity strongly inplicates the existence of a central intracellular mechanism of specific tolerance on the helper T-cell level. The possibility that suppression of the activity of PAB-reactive helper T lymphocytes by PAB-D-GL reflects simple blocking of surface receptor molecules on T lymphocytes was ruled out as it was found that the helper activity of PAB-reactive cells was minimally suppressed even when PAB-D-GL was directly exposed in vitro to helper T lymphocytesmmoreover, the most conclusive evidence on te the tolerant state induced by in vivo exposure of primed T cells to PAB-D-GL. It appears, therefore, that specific tolerance induced by PAB-D-GL' TO PAB-reactive helper T lymphocytes is an example of irreversible inhibition of T-cell reactivity to antigen, reflecting yet to be determined events at the intra- and subcellular levels.

Amylases

Immunological tolerance to the thymus-independent antigen dextran can be abrogated by thymus-dependent dextran conjugates: evidence against clonal deletion as the mechanism of tolerance induction.

Tolerance to the alpha1--6 epitope of native dextran B512 was found to be very stable and could not be broken by the injection of dextran conjugated to several substances, such as protein A, keyhole limpet haemocyanin, edistin, concanvalin A or Staphylococcus bacteria, strain Cowan. However, when tolerant mice were injected with dextranase, all the above conjugates induced a strong anti-alpha1--6 immune response. In contrast, native dextran itself never induced a response in tolerant, dextranase-treated mice. It was concluded that tolerance only affects the specific B-cell subpopulation that can respond to the polyclonal B-cell-activating (PBA) property of dextran, whereas other specific B cells having PBA receptors for, e.g., signals delivered by collaborating T cells remain in a resting state. These B cells can respond in a specific immune response against the tolerogen after removal of the antigen, which blocks the Ig receptors and therefore prevents them from passively focusing the antigen. Thus, immunological tolerance is not caused by clonal elimination of the antigen-specific clone, but only affects a small subfraction of cells with Ig receptors against the tolerogen.

Animals

Induction and mechanism of tolerance to bovine serum albumin in mice given total lymphoid irradiation (TLI).

BALB/c mice given total lymphoid irradiations (TLI) were injected i.p. with bovine serum albumin (BSA) in saline, and challenged with DNP-BSA in complete Freund's adjuvant 6 weeks later. The latter animals made no anti-DNP antibody response as measured by a modified Farr assay, but made a normal anti-DNP response after challenge with DNP-BGG in adjuvant. Normal mice or mice given whole body irradiation were not tolerized by the i.p. injection of BSA in saline. Spleen cells from unresponsive mice (TLI + BSA in saline) suppressed the adoptive secondary anti-DNP response of sublethally irradiated syngeneic hosts given BSA-primed T cells, DNP-BSA-primed B cells, and DNP-BSA in saline. The suppressor cells were antigen specific, and were inactivated by in vitro treatment with anti-Thy 1.2 antiserum and complement. The findings suggest that soluble antigens administered to mice after TLI evoke a state of tolerance that is maintained by antigen-specific suppressor T cells. A similar mechanism may be involved in the maintenance of tolerance to allografts. These findings may have important clinical implications for patients treated with TLI for lymphoid malignancies.

Animals

Hapten-induced B cell paralysis. II. Evidence for trivial mechanisms of tolerance.

Injection into mice of a free reactive form of the hapten (4-hydroxy-3,5-dinitrophenyl)acetyl (NNP), induces a state of specific unresponsiveness to the hapten, upon its challenge with thymus-cependent and independent carriers. This unresponsiveness is maintained in vitro. Both induction and expression of the unresponsive state were found to be independent of T cells. Analysis of the mechanisms responsible for the B cell "tolerance" demonstrated that the major cause of unresponsiveness in this system is the blockade of specific surface receptors on B cells by the hapten, abolishing the focusing function of these receptors. "Tolerant" B cells, though they were unresponsive to the antigen, could be activated to anti-hapten antibody secretion by the B cell mitogen lipopolysaccharide (LPS), which does not require Ig-mediated binding. They also became fully responsive to the antigen NNP-LPS in specific thymus-independent responses after 24 hours of in vitro incubation in the absence of tolerogen, conditions which allow "deblocking" of Ig surface receptors, and, thus, restoration of the focusing function of these receptors. These results demonstrate that great care is required for a clearcut definition of B cell tolerance. In this example, the tolerant B cells were perfectly responsive to a competent ligand, and no indication of an altered triggering or effector processes was found. It appears that in this, as in many other cases of B cell tolerance, the systems or the animals are tolerant, whereas B cells maintain a resting nonactivated state and are fully responsive to the triggering signal. Thus, the existence of tolerance-inducing signals resulting in B cell unresponsiveness is questioned.

Antibody Formation

[A new instruction theory: possibility of a reverse flow of information from polypeptide sequences to RNA particularly in antibody synthesis, and the mechanisms of tolerance induction and immunosuppression (author's transl)].

A new instruction theory for antibody formation is presented. The reverse flow of information from the amino-acid sequences of small antigenic determinants to an antideterminant RNA (aRNA) seems feasible. Prerequisites are specific activating enzymes, tRNAs, ATP as well as some kind of membrane assembling the anticodons of tRNAs linearly, analogous to the linear primary structure of stretched polypeptides. Once synthesized, aRNA might be replicated, utilized as transfer factor and transcribed by means of Reverse Transcriptase into aDNA. Further steps would be the fusion of this aDNA with genetical performed DNA-molecules already coding for the basic strucures of different classes of immunoglobulins by means of a terminal deoxynucleotidyl-transferase. This could be a chromosomal or extrachromosomal integration. The second hypothesis concerns antigen-induced immunosuppression and the phenomenon of nonresponsiveness (tolerance). An overwhelming proteolysis might give rise to a degradation of antigens or receptor templates for antigenic determinants located on the surface of macrophages. On later exposure to a similar antigen proteolytic enzymes are already preformed abolishing rapidly antigenic information. The third hypothesis concerns antibody-induced immunosuppression and tolerance. Antideterminant information is integrated into the genome or established extra-chromosomally. The continuous presence of antibodies sets in motion a sequence of reactions causing an accumulation of all information intermediates including a complementary DNA strand to the aRNA. On exposure to the corresponding antigen aRNA is transcribed. However, translation might be inhibited by hybridisation with the complementary aDNA strand as well as specific RNA hydrolysis by RNase H. Concerning the immunogenity of antibodies, a proteolytical mechanism might also be possible. Taking this into account a tolerance could be suspended in the following way: 1. by influencing the overwhelming proteolytical degradation of antigenic determinants with simultaneous antigenic stimulation; 2. by substitution of aRNA to induce blocked antibody synthesis.

Amino Acid Sequence