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S Tangri

Publications and source records attributed to S Tangri.

7 recordsLinked to original sources

CD1-restricted CD4+ T cells in major histocompatibility complex class II-deficient mice.

Rather unexpectedly, major histocompatibility complex class II-deficient mice have a significant population of peripheral CD4+ T lymphocytes. We have investigated these cells at the population and clonal levels. CD4+ T lymphocytes from class II-deficient animals are thymically derived, appear early in ontogeny, exhibit the phenotype of resting memory cells, are potentially functional by several criteria, and have a diverse T cell receptor repertoire. They do not include substantially elevated numbers of NK1.1+ cells. Hybridomas derived after polyclonal stimulation of the CD4+ lymphocytes from class II-deficient animals include a subset with an unusual reactivity pattern, responding to splenocytes from many mouse strains including the strain of origin. Most members of this subset recognize the major histocompatibility complex class Ib molecule CD1; their heterogeneous reactivities and T cell receptor usage further suggest the involvement of peptides and/or highly variable posttranslational modifications.

Animals

Peptide binding and presentation by mouse CD1.

CD1 molecules are distantly related to the major histocompatibility complex (MHC) class I proteins. They are of unknown function. Screening random peptide phage display libraries with soluble empty mouse CD1 (mCD1) identified a peptide binding motif. It consists of three anchor positions occupied by aromatic or bulky hydrophobic amino acids. Equilibrium binding studies demonstrated that mCD1 binds peptides containing the appropriate motif with relatively high affinity. However, in contrast to classical MHC class I molecules, strong binding to mCD1 required relatively long peptides. Peptide-specific, mCD1-restricted T cell responses can be raised, which suggests that the findings are of immunological significance.

Amino Acid Sequence

Maternal anti-placental reactivity in natural, immunologically-mediated fetal resorptions.

Observations on maternal recognition of the fetus and the demonstration of the effects of cytokines on reproductive events led to the "immunotrophism" model, which suggests that maternal immune recognition of fetally-derived Ags results in the release of cytokines that promote the growth of the placenta; any disturbance in this balance of cytokines could result in deleterious consequences for the placenta and, in turn, the fetus. We have focused our attention on the murine CBA/J x DBA/2 model of spontaneous abortions and compared them with normal CBA x BALB/c pregnancies. Our results indicate that the extent of stimulation of maternal strain lymphocytes in response to stimulator placental cells in mixed lymphocyte-placenta reactions (MLPR) was much higher in the normal mating combination compared with the abortion-prone mating combination. Cytokine analysis of the supernatants from MLPR indicates that there is significantly higher production of TNF-alpha, IFN-gamma, and IL-2 in supernatants from the abortion-prone combination than in supernatants from the normal combination. Furthermore, MLPR-stimulated cells induce resorptions in normal pregnant mice; maternal strain lymphocytes stimulated by placentas from the abortion-prone combination induce high rates of fetal resorptions, but lymphocytes stimulated with placentas from the normal combination do not. Together, these results suggest that immunologically mediated fetal resorptions probably result from improper or inappropriate maternal responses to placental Ags. Our observations also suggest that such effects are probably mediated by cytokines.

Animals

Expression of cytokines in placentas of mice undergoing immunologically mediated spontaneous fetal resorptions.

It is clear that the immune system and the reproductive system interact with and influence each other and that the immune system can have positive and negative regulatory effects on the outcome of pregnancy. The discovery of murine models of immunologically mediated spontaneous fetal resorptions has proved to be very useful for the study of immunological influences on pregnancy. In an attempt to elucidate the mechanisms underlying pregnancy impairment in one such "natural" model of pregnancy loss, we compared the expression of the cytokines tumor necrosis factor alpha, interferon tau, and interleukin-2 in placental tissue from a resorption-prone strain combination with the expression from a normal combination. We found significantly enhanced expression of these three cytokines in placentas from the resorption-prone combination using dot-blot hybridization and Northern hybridizations. Since these cytokines are abortifacients in vivo and have detrimental effects on the placenta, and hence on fetal development and survival, our demonstration of enhanced expression of these deleterious cytokines may give insight into the mechanisms involved in immunologically mediated spontaneous abortions.

Animals

Recombinant fusion protein identified by lepromatous sera mimics native Mycobacterium leprae in T-cell responses across the leprosy spectrum.

Pooled polyvalent sera from lepromatous leprosy patients were used to screen a lambda gt11 recombinant DNA expression library of Mycobacterium leprae in order to identify the relevant antigens recognized by the human immune response. Of the 300,000 phages screened, 4 clones were identified that coded for fusion proteins of the same molecular mass. The fusion protein from clone LSR2 was tested for immunoreactivity in assays using peripheral blood cells and sera from 11 laboratory personnel and 105 patients across the leprosy spectrum. LSR2 protein appears to be predominantly a T-cell antigen. It evokes similar lymphoproliferative responses as the native bacillus both at the individual level and in the leprosy spectrum as a whole. Though only 50% of patient sera with anti-M. leprae antibodies reacted with the fusion protein, the pattern of reactivity in the antibody responses was also similar for the various clinical types. The coding regions of clones LSR1 and LSR2 are identical. They show no homology with sequences stored in data banks and encode a protein of 89 amino acids with a calculated molecular mass of approximately 10 kDa.

Amino Acid Sequence