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A Fotedar

Publications and source records attributed to A Fotedar.

At least 37 records · Page 2Linked to original sources

Unusually diverse T cell response to a repeating tripeptide epitope.

The immune system utilizes a diverse T cell repertoire for the recognition of foreign antigens in the context of self MHC gene products. We have examined the potential diversity of the T cell response directed to a immunodominant repeating tripeptide epitope (EYA)5. This peptide represents one of the two T cell epitopes on the synthetic alpha-helical polypeptide antigen Poly 18, Poly EYK(EYA)5 in H-2d mice and does not require antigen processing prior to presentation to Poly 18-specific T cell hybridomas. The T cell response directed to the repeating tripeptide epitope (EYA)5 is extremely heterogenous even though the epitope has a relatively simple amino acid sequence. We have analyzed the fine specificity of 21 randomly chosen Poly 18-reactive, (EYA)5-specific and H-2d-restricted T cell hybridomas derived from H-2d, H-2bxd, and H-2b----H-2bxd Poly 18-responding mice to determine the number of unique antigen reactivity patterns represented by this T cell population. We used alanine- and/or lysine-substituted (EYA)5 peptides and a panel of haplotype-varied splenocytes and observed a great deal of microheterogeneity in response. We find that 13 of the 21 hybridomas have a distinct fine antigen specificity and T cell receptors. The binding of (EYA)5 to the antigen-binding groove of I-Ad appears to generate a highly diversified T cell response. Therefore, (EYA)5-I-Ad complex allows the activation of unrelated T cell clonotypes with the same overall antigen specificity and MHC restriction, but with distinct microheterogeneity in response and receptor usage.

Alanine↗

Immunoregulatory activity of the T-cell receptor alpha chain demonstrated by retroviral gene transfer.

We have previously described an antigen-specific I-Ad-restricted T-cell hybridoma, A1.1, that constitutively releases an antigen-specific immunoregulatory activity into supernatants. Using retrovirally mediated gene transfer, we have found that transfer of the T-cell receptor alpha chain (TCR alpha) gene from A1.1 to a number of other T-cell hybridomas effectively transferred the ability to produce the activity. Gene transfer of the TCR beta chain (TCR beta), however, did not transfer this ability. The regulatory activity from cells expressing the A1.1 TCR alpha bound to and was eluted from an anti-TCR alpha monoclonal antibody and displayed fine antigenic specificity identical to that of supernatants from A1.1. The possibility that this activity represents a secreted form of the TCR alpha (as opposed to shed cell-surface TCR) was examined in BW1100 cells, lacking TCR alpha and TCR beta, which produced the antigen-specific activity after gene transfer of the A1.1 TCR alpha gene. The expression of the immunoregulatory activity in supernatants correlated with a direct antigen-binding activity as detected by ELISA, thus raising the possibility that antigen binding is relevant to the mechanism of action of the soluble TCR alpha. We discuss these observations and our earlier studies suggesting an immunoregulatory role for soluble TCR alpha.

Amino Acid Sequence↗

Transcription of the T cell receptor beta-chain gene is controlled by multiple regulatory elements.

The cis-acting sequences regulating transcription of the beta-chain of the TCR have been analyzed and multiple elements identified. The minimum 5' upstream sequence displaying promoter activity is a fragment extending 85 bp upstream of the transcriptional start site. Deletion of an additional 43 bp from the 5' end of this fragment abolished promoter activity. The presence of the conserved TCR beta-chain decanucleotide motif, an AP-1 consensus sequence and an inverted repeat in the deleted region, suggests their role as targets for transacting factors regulating transcription of the beta chain gene. Sequences between -343 and -85 increase transcription from the -85 fragment in T cells. The promoter is active in both T cells and fibroblasts. The enhancer was capable of enhancing TCR V beta 2 promoter activity in both T cells and fibroblasts. Sequences further upstream of the V beta 2 promoter down regulate V beta 2 promoter activity in the absence of the enhancer but its repressive influence is overcome in the presence of the TCR beta-chain enhancer.

Animals↗

Critical role of an amino acid residue in a T cell determinant is due to its interaction with a neighboring non-critical residue.

Several lines of evidence support the concept of two functionally distinct sites on antigen: the epitope, involved in interaction with the T cell receptor and the agretope, interacting with Ia. We investigated the Ia and T cell receptor interaction sites on the synthetic polypeptide antigen poly-18 [poly-EYK(EYA)5] using T cell hybridoma clones specific for this antigen in the context of I-Ad. Peptides with amino acid sequences related to poly-18 were synthesized. These were used to identify the critical residues in the minimum peptide sequence required for activation. Clone A.1.1 responds to the minimal peptide EYK(EYA)4 but not to (EYA)5. This identifies Lys3 as a critical amino acid for this hybridoma. Surprisingly, the substituted peptide EYAEAA(EYA)3 could activate A.1.1, indicating that an Ala at position 5 instead of a Tyr obviates the critical requirement for Lys3. This demonstrates that the function of critical residues may extend beyond contacting the T cell receptor or Ia, to include a third role: that of interacting with other amino acids of the T cell epitope, thus influencing the antigen's recognition by T cells.

Amino Acid Sequence↗

Characterization of agretopes and epitopes involved in the presentation of beef insulin to T cells.

Beef insulin-specific I-Ad-restricted T cell hybridomas were derived from the fusion of antigen-primed (BALB/c X B6)F1 T cells with BW5147 thymoma. Specificity analysis revealed that the A-chain loop region is involved in antigen recognition. Hybridoma A20.2.15 is specific for beef insulin and cross-reacted with sheep insulin, but not with pork insulin. Using synthetic peptides we showed that the A-chain loop containing peptide A1-A14 jointed to the B7-B15 peptide by a disulfide bond can activate this hybridoma. Fragments generated by enzyme digest further suggest that the peptide recognized on beef insulin appears to involve A-chain loop residues A5-A12 and B-chain residues B7-B13 that are linked by the A7-B7 disulfide bridge. We found that beef insulin needs to be processed prior to T cell activation. Glutaraldehyde fixation and chloroquine treatment of presenting cells abolished their capacity to present insulin. Beef insulin denatured by pH changes cannot activate, thus suggesting that simple denaturation is not sufficient for presentation by antigen presenting cells. Finally, the agretope on beef insulin is comprised of two functional regions B7-B13 on the B chain and the A-chain loop in the A-chain, while residues A8 and A10 are probably involved in interaction with the T cell receptor.

Amino Acid Sequence↗

Functional degeneracy of residues in a T cell peptide epitope contributes to its recognition by different T cell hybridomas.

Synthetic antigen Poly EYK(EYA)5 induces T cells of narrowly defined fine specificity as represented by the two I-Ad-restricted T cell hybridomas, A.1.1 and B.1.1. Both these hybridomas recognize the minimum 15-amino-acid peptide sequence EYK(EYA)4. We have characterized the residues involved in the recognition of EYK(EYA)4 peptide by these hybridomas with synthetic peptides and discovered a distinct functional hierarchy for the residues in the sequence. Even with the repeating tripeptide (EYA)5, which is recognized by B.1.1 cells, the residues that are essential cluster near the middle of the sequence but not near the N- or C-terminal region. Different MHC binding and TCR contacting residues were found for each of the hybridomas. The results suggest that different T cells either recognize different parts of the peptide MHC complex or that the peptide binds to MHC in multiple conformations. This was supported by the fact that Poly EYK(EYA)5 is alpha-helical but the peptides used here showed only a slight propensity to adopt this structure and it did not correlate with their functional activity. We also found that (EYA)5 does not compete with EYK(EYA)4 in the stimulation of A.1.1 cells despite its obvious capacity to interact with I-Ad when it stimulates B.1.1 cells. This may be because these peptides have a low affinity for Ia and therefore only appropriate TCR interactions would stabilize the antigen-Ia complex. In conclusion, antigen-MHC-TCR interaction appears to be a dynamic process which allows recognition of different residues of a T cell determinant by different T cells.

Amino Acid Sequence↗

Specific inhibition of cell-surface T-cell receptor expression by antisense oligodeoxynucleotides and its effect on the production of an antigen-specific regulatory T-cell factor.

We have used antisense oligodeoxynucleotides corresponding to genes encoding the variable (V) region of the T-cell receptor (TCR) alpha and beta chains (V alpha and V beta) to control TCR expression in T-cell hybridomas. Two hybridomas, A1.1 and B1.1, recognize a synthetic polypeptide antigen designated poly 18 (poly[Glu-Tyr-Lys-(Glu-Tyr-Ala)5]) together with I-Ad. We have found that TCR function (production of lymphokines in response to antigen) and T3 expression were removed after protease treatment of the cells and were fully recovered 48 hr later. However, when antisense oligodeoxynucleotides corresponding to the appropriate TCR V genes were present after protease treatment, little or no recovery of TCR function or T3 expression was observed. This effect was specific for the TCR V genes utilized by the T cell: antisense oligodeoxynucleotides corresponding to the TCR V regions of A1.1 had no effect on TCR expression in B1.1 and vice versa. Thus, antisense oligodeoxynucleotides can be used to temporarily block expression of a TCR gene in a T-cell hybridoma. This technique was then applied to a paradoxical phenomenon in A1.1 cells. We had observed previously that A1.1 releases an antigen-specific immunoregulatory activity that shows the same antigenic fine specificity as is displayed by the TCR of A1.1. We now report that antisense oligodeoxynucleotides corresponding to the A1.1 V alpha gene blocked the production of this soluble antigen-specific activity by the cell. Antisense oligodeoxynucleotides corresponding to A1.1 V beta, on the other hand, had no effect on the production of this antigen-specific activity. We discuss these observations in the context of recent findings on the nature of T cell-derived antigen-specific regulatory factors.

Animals↗

An antigen-specific helper T cell hybridoma produces an antigen-specific suppressor inducer molecule with identical antigenic fine specificity. Implications for the antigen recognition and function of helper and suppressor inducer T cells.

We have previously described a T cell hybridoma, A.1.1, that responds to specific Ag (P18, a synthetic polypeptide of defined sequence) in the context of I-Ad by producing lymphokines. Herein we report that this cell also releases, into culture supernatants and ascites fluid, an Ag-specific activity that functions in the induction of suppression of anti-SRBC PFC responses. This suppressive activity requires a) Ag-non-specific accessory molecules from a T suppressor inducer factor, b) Ly-2+ T cells in the assay cultures, and c) the specific Ag (P18) conjugated to the SRBC in the assay cultures. The specificity of the A.1.1-derived activity was demonstrated by the absence of suppression in cultures containing SRBC, BSA-SRBC, or conalbumin-SRBC rather than P18-SRBC. Further, the A.1.1-derived activity bound to, and could be eluted from, P18 but not conalbumin. Using a panel of synthetic variant peptides, we have mapped the critical residues in P18 required for Ag/I-Ad induced activation of A.1.1. These peptides were tested for their ability to act as targets for the A.1.1-derived suppressive activity when conjugated to SRBC and added to assay cultures. All peptides capable of stimulating the A.1.1 T cells to release lymphokines were similarly effective in the suppressor assay. Thus, the recognition of Ag by the T cells and by the T cell-derived activity appeared to be identical. The A.1.1-derived molecule was found to be capable of inducing L3T4- T cells to act as suppressor T cells following culture. These suppressor cells were active in inhibiting anti-SRBC responses in the absence of P18 and bore the Ly-2 surface marker. Thus, it is likely that the function of this Ag-specific molecule is to induce Ly-2+ suppressor T cells and thereby cause the inhibition of the response. This function is distinct from that normally associated with helper T cells and may shed new light on the possible relationship between the cell surface T cell receptor for Ag and Ag-specific T suppressor inducer molecules.

Animals↗

Contribution of antigen processing to the recognition of a synthetic peptide antigen by specific T cell hybridomas.

Most antigens recognized by T cells require unfolding or partial degradation (processing) followed by association with Major Histocompatibility Complex (MHC) molecules. We examined the processing requirements for the presentation of antigen to two T cell hybridomas which recognize the alpha-helical synthetic polypeptide antigen Poly 18, Poly [EYK(EYA)5], in association with I-Ad. Hybridoma A.1.1 responds to EYK(EYA)4 as the minimum antigenic sequence while hybridoma B.1.1 recognizes (EYA)5 sequence. It was found that these hybridomas responded to Poly 18 and to minimum peptide sequences presented by glutaraldehyde and chloroquine treated antigen presenting cells (APC), suggesting that antigen processing is not a requirement for the activation of these cells. The reactivity pattern of hybridoma B.1.1 in the presence of glutaraldehyde fixed APC revealed that antigens containing lysine were presented with much less efficiency than antigens without lysine, suggesting an interaction of these residues with the antigen presenting cell surface. We discuss the possibility that alanine residues in the alpha-helical Poly 18 form a hydrophobic ridge which may be required for appropriate interaction between antigen, the T cell receptor, and MHC molecules.

Animals↗

Typhoid nephritis.

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Acute Disease↗

Immunological competence and host-specific tolerance of antibody-facilitated bone marrow chimeras.

We have generated murine antibody-facilitated (AF) bone marrow chimeras in the genetic combination P1----(P1 X P2)F1 by the simultaneous injection of P1 bone marrow cells and anti-P2 MHC monoclonal antibody into normal (unirradiated) adult (P1 X P2)F1 recipients. These mice have normal life spans and appear to be healthy, with no overt signs of graft-versus-host disease. We have undertaken an extensive survey of the ability of stable, long-term AF chimeras to generate immune responses in vitro and in vivo. Both T and B lymphocyte functions have been analyzed in proliferative and effector cell assays. The AF chimeras respond normally to mitogenic as well as antigenic stimuli, and exhibit normal capacities for cellular collaboration in the generation of immune responses. However, splenic lymphocytes from AF chimeras are substantially and specifically hyporesponsive or nonresponsive to host, P2-encoded, alloantigens in in vitro assays of cell-mediated immunity. This host-specific tolerance is exhibited by the cytotoxic T lymphocyte lineage; T helper cells necessary for the generation of a cytotoxic response may also have decreased reactivity to host determinants. We conclude that our protocol for the production of AF chimeras does not compromise the immune system of chimeric animals but does allow the maintenance of host-specific tolerance, after stable equilibrium has been attained.

Animals↗

A requirement for physical linkage between determinants recognized by helper molecules and cytotoxic T cell precursors in the induction of cytotoxic T cell responses.

It has long been understood that both antibody and delayed-type hypersensitivity responses are induced through collaborative events in which the determinants recognized by the precursor cells must be physically linked to the determinants recognized by the helper. Although it is clear that the generation of memory cytotoxic T lymphocyte precursors (CTLp) involves linked recognition of determinants, the induction of CTL responses has been viewed as being dependent upon interleukin 2 (IL 2), which could be provided by a helper cell, but independent of requirements for antigen bridging. In this work, we have designed a system that lacks exogenous IL 2 by using as our source of help, antigen-specific helper molecules derived from helper T cells. These soluble helper molecules are uncontaminated by IL 2 and unlike a helper cell, are unable to produce IL 2. Helper molecules specific for chicken red blood cells (Crbc) and for a synthetic polypeptide, poly 18, were tested. Thymocyte responders require a source of help to respond to alloantigens intrinsically expressed on the surface of adherent stimulator cells. To analyze the mechanism whereby the helper molecules acted, we used a system involving recognition of haptenic and carrier determinants that were physically linked by virtue of being located on the same cell surface (intra-structural linkage). Adherent stimulator cells were pulsed with Crbc or poly 18 so that the alloantigens recognized by the thymocyte CTLp (intrinsically expressed class I) were either linked or unlinked to the carrier determinants (Crbc or poly 18) presented by the adherent cells and recognized by the helper molecules. Both types of helper molecule were shown to be antigen-specific in crisscross experiments. The helper molecules specific for Crbc were able to induce the thymocyte CTLp only when both hapten and carrier were present on the same stimulator cell surface. Because we were not able to detect a requirement for H-2-restricted recognition of carrier antigen, this inductive event must be viewed as requiring linked associative recognition of determinants, but being noncognate. In contrast, the helper molecules recognizing poly 18 showed a requirement for both physical linkage of determinants and for H-2 restricted recognition, indicating that the mechanism of induction was cognate in nature. Therefore, we have shown that interactions between CTLp and soluble, antigen-specific, helper cell-derived inductive molecules are similar in nature to those of other T cell precursors and of B cells in the stringent requirement for close physical proximity achieved by linked or cognate recognition of determinants across an antigen bridge.

Animals↗

Isolation of cDNA clones encoding a T-cell receptor beta-chain from a beef insulin-specific hybridoma.

cDNA clones coding for a T-cell receptor beta-chain were isolated from a beef insulin/IAd-reactive T-cell hybridoma, A20.2.15, and its complete amino acid sequence was deduced. This beta-chain gene utilizes the same V beta segment as a thymocyte beta-chain gene (86T1) and rearranges to the 5' proximal J-C locus (J beta 1-C beta 1), thus providing definitive evidence of a beta-chain gene from a functional hybridoma that utilizes C beta 1. The amino acid sequence of the V beta gene in A20.2.15 is identical to 86T1, thus suggesting the absence of somatic mutation in the beta-chain of A20.2.15. Southern blot analysis revealed a somatic DNA rearrangement unique to the A20.2.15 hybridoma. The expression of this gene in the hybridoma was confirmed by RNA dot hybridization. All 24 beta-chain clones so far isolated from the A20.2.15 hybridoma contained C beta 1, suggesting that the beta-chain gene of the fusion partner BW5147 is not expressed in the hybridoma.

Amino Acid Sequence↗

Fine specificity of antigen recognition by T cell hybridoma clones specific for poly-18: a synthetic polypeptide antigen of defined sequence and conformation.

Antigen-specific T cell blasts to poly-18, a polypeptide antigen of defined sequence and conformation, were generated from lymph nodes of antigen-primed BALB/cCr mice. These blasts were fused with the BW5147 thymoma to obtain anti-poly-18-reactive T cell hybridomas. All of the hybridomas were IAd-restricted and secreted IL2 in the presence of IAd/poly-18. On the basis of fine specificity analysis, these hybridomas were classified into two groups. Group A hybridomas recognized a minimal peptide sequence of Glu-Tyr-Lys-(Glu-Tyr-Ala)3-Glu-Tyr-Lys, whereas Group B needed the sequence Glu-Tyr-Ala-(Glu-Tyr-Ala)3-Glu-Tyr-Lys/Ala for activation. Three critical residues were identified in Group A hybridomas: the alanine residue at position 9, the carboxy terminal lysine, and the lysine at position 3. In Group B hybridomas, the alanine at position 3 was found to be the critical residue. We suggest that the amino acid residue at position 3 (lysine/alanine) is the T cell receptor contact residue on the poly-18 antigen in BALB/cCr mice.

Amino Acid Sequence↗

Lepromin conversion in repeatedly lepromin negative BL/LL patients after immunization with autoclaved Mycobacterium w.

Thirty-two clinically, histopathologically confirmed cases of BL/LL leprosy were rendered bacteriologically negative by prolonged chemotherapy. All of them were negative to Mitsuda and Dharmendra lepromin at the start of study. They were immunized with a single intradermal injection of 5 X 10(7) autoclaved Mycobacterium w and were retested for lepromin reaction 4-6 weeks later. Twenty subjects gave at this time a positive reaction with both Dharmendra and Mitsuda lepromins. The histology of biopsies from converted cases showed mononuclear infiltration in all and granuloma formation in 12 of the 20 positive cases. The stability of the conversion of the patients' lepromin positivity was investigated 6-11 months after immunization with Mycobacterium w. Patients who were earlier converted to a positivity status remained positive in the skin test response to M. leprae. The leukocytes of these patients produced lymphokines on culture with lepromin, causing leukocyte migration inhibition. Patients who did not convert earlier continued to remain anergic to lepromin. These results suggest a conversion, stable for several months, to lepromin positivity caused by immunization with Mycobacterium w in about 60% of BL/LL leprosy patients.

Adult↗

Improved leucocyte migration inhibition response of leucocytes from lepromatous leprosy patients with hapten modified M. leprae.

Two acetoacetylated derivatives of Mycobacterium leprae with variable hapten groups and a conjugate with tetanus toxoid were prepared. These were tested as antigens along with unmodified M. leprae in the leucocyte migration inhibition response of leucocytes from clinically, bacteriologically and histopathologically confirmed cases of lepromatous leprosy. LMI response was poor with M. leprae, but was significantly enhanced with acetoacetylated M. leprae.

Cell Migration Inhibition↗