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V Braud

Publications and source records attributed to V Braud.

8 recordsLinked to original sources

The proteasome-specific inhibitor lactacystin blocks presentation of cytotoxic T lymphocyte epitopes in human and murine cells.

We describe the effect of the proteasome specific inhibitor lactacystin on the metabolic stability of influenza nucleoprotein (NP) and on the generation of antigens presented by human and murine class I molecules of the major histocompatibility complex to cytotoxic T lymphocytes (CTL). We show that cells treated with lactacystin fail to present influenza antigens to influenza-specific CTL, but retain the capacity to present defined epitopes expressed as peptides intracellularly by recombinant vaccinia viruses. This block in antigen presentation can be overcome by expressing the viral protein within the lumen of the endoplasmic reticulum, confirming the specificity of lactacystin for cytosolic proteases. We also show that the effect of lactacystin on antigen presentation correlates with the block of breakdown of a rapidly degraded form of the influenza NP linked to ubiquitin. These results demonstrate that proteasome-dependent degradation plays an important role in the cytosolic generation of CTL epitopes.

Acetylcysteine↗

The human major histocompatibility complex class Ib molecule HLA-E binds signal sequence-derived peptides with primary anchor residues at positions 2 and 9.

Human histocompatibility leukocyte antigen E (HLA-E) and mouse major histocompatibility complex (MHC) class Ib antigen, Qa-1, share the same substitutions at two normally conserved positions 143 and 147, which are likely to affect binding of the C terminus of peptides. Qa-1 is able to bind a peptide derived from the leader sequence of H-2 D and H-2 L molecules. We developed a peptide binding assay in vitro to compare the binding specificity of HLA-E with the mouse MHC class Ib molecule Qa-1. We demonstrate that HLA-E binds, although poorly, the peptide which binds to Qa-1 and that it also binds nonamer signal sequence-derived peptides from human MHC class I molecules. Using alanine and glycine substitutions, we could define primary anchor residues at positions 2 and 9 and secondary anchor residues at position 7 and possibly 3.

Amino Acid Sequence↗

Expression of a single-chain HLA class I molecule in a human cell line: presentation of exogenous peptide and processed antigen to cytotoxic T lymphocytes.

We have synthesized a recombinant gene encoding a single-chain HLA-A2/beta 2-microglobulin (beta 2m) molecule by linking beta 2m through its carboxyl terminus via a short peptide spacer to HLA-A2 (A*0201). This gene has been expressed in the beta 2m-deficient colorectal tumor cell line DLD-1. Transfection of this cell with the single-chain construct was associated with conformationally correct cell surface expression of a class I molecule of appropriate molecular mass. The single-chain HLA class I molecule presented either exogenously added peptide or (after interferon-gamma treatment) endogenously processed antigen to an influenza A matrix-specific, HLA-A2-restricted cytotoxic T-lymphocyte line. The need for interferon gamma for the processing and presentation of endogenous antigen suggests that DLD-1 has an antigen-processing defect that can be up-regulated, a feature that may be found in other carcinomas. Our data indicate that single-chain HLA class I constructs can form functional class I molecules capable of presenting endogenously processed antigens. Such molecules should be of use for functional studies, as well as providing potential anticancer immunotherapeutic agents or vaccines.

Amino Acid Sequence↗

HLA-A2 subtypes are functionally distinct in peptide binding and presentation.

Nearly half of HLA-A2-positive individuals in African populations have a subtype of HLA-A2 other than the A*0201 allele. We have isolated the common African HLA-A2 subtype genes from Epstein-Barr virus-transformed B cell lines and have established stable class I reduced transfectants expressing these alleles. We have studied the peptide binding and presentation properties of A*0201, A*0202, A*0205, A*0214, and A*6901 by a combination of approaches: assaying direct binding of labeled synthetic peptides, studying the ability of antigen-specific cytotoxic T lymphocytes to recognize peptide-pulsed cells, and sequencing peptide pools and individual ligands eluted from cells. We find that A*0201-restricted peptides can also bind to A*0202 but do not bind strongly to the other alleles in this study. We show that some cytotoxic T lymphocytes can recognize all subtypes capable of binding an antigenic peptide, whereas others are subtype specific. Sequencing of eluted peptides reveals that A*0202 has a similar peptide motif to A*0201, but that A*0205, A*0214, and A*6901 have different motifs. These data strongly support a model in which residue 9 (Phe or Tyr) of the A2/A68/A69 molecules is a critical factor in determining the specificity of the B pocket of the major histocompatibility complex and the position 2 anchor residue of associated peptides. We conclude that a single-amino acid difference in the major histocompatibility complex can be sufficient to cause a dramatic change in the nature of bound peptides, implying that individuals with closely related HLA subtypes may present very different repertoires of antigenic peptides to T cells in an immune response. It is likely to be a general phenomenon that very similar class I subtypes will behave as functionally distinct HLA allotypes.

Alleles↗

Effects of MHC-encoded TAP1 and TAP2 gene polymorphism and matching on kidney graft rejection.

The products of TAP1 and TAP2 genes, recently mapped within the MHC class II region, are involved in antigen presentation by MHC class I molecules, especially in the transport of endogenous peptides. As for most MHC genes, a polymorphism has been described and the possibility that it could influence the recipient immune response by modulating antigen presentation in kidney transplantation has been tested. The aim of our study was to compare TAP1 and TAP2 gene polymorphism and matching in 53 couples of kidney donors and recipients without any rejection episodes and in 55 other couples who had experienced at least 2 acute cellular rejection episodes; 70 healthy individuals served as controls. Our results showed that allelic variant frequencies of TAP1 alleles (1A to 1C) and TAP2 alleles (2A to 2E), as assessed by amplification refractory mutation system-polymerase chain reaction, were similar among "rejection" and "no rejection" populations. Furthermore, there were no differences of TAP1 and/or TAP2 matching between donors and recipients in the 2 groups. In contrast, we showed that the recipients of the no rejection group were better matched with their corresponding donors for the HLA-DR genes than those of the rejection group. These results suggest that the currently described polymorphism in the limited coding region of TAP1 and TAP2 genes does not influence the incidence of kidney allograft rejection episodes and seems not to be a strong link to the adjacent DR/DQ subregion. Moreover, the observed increase frequency of TAP1B allele in the whole recipient's group as compared with controls (16.2% vs. 7.1% in the healthy individuals; P < 0.02) was not linked to the rejection occurrence but to the presence of glomerulonephritis as initial disease. Our study suggests that, in the clinical conditions tested, neither TAP polymorphism nor TAP matching influences the renal graft outcome.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Susceptibility to alloimmunization to platelet HPA-1a antigen involves TAP1 polymorphism.

The alloimmunization against platelet HPA-1a antigen in mothers of thrombocytopenic neonates is strongly associated with HLA class II structures (DR3 and DR13) and especially with HLA-DR52a antigen (98% of the cases reported here). Because new genes have recently been mapped within the MHC class II region, we typed TAP1 and TAP2 gene polymorphisms by ARMS-PCR in order to characterize more effectively MHC genes involved in this alloimmunization. Our results showed that TAP1*0102 allele was significantly associated with NAIT only in the population of HLA-DR 13-DR52a-immunized women (50%) versus HLA-DR 13-DR52a controls (20%) (p < 0.05), and not in HLA-DR3-DR52a-immunized women versus HLA-DR3-DR52a controls. There is no linkage disequilibrium between TAP1*0102 and DRB1*13 alleles (delta = -0.0063) that could account for this result. The higher frequency of TAP1*0102 allele among HLA-DR 13-DR52a-immunized women suggests that HPA-1a antigen presentation and recognition may be influenced by nonclassic HLA class II gene polymorphisms, or that other linked but yet unknown genes could interfere.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Lack of binding of peptides carrying the human platelet antigen 1 (HPA-1) dimorphism to purified HLA-DRw52a molecules.

The strong association between anti-HPA-1a alloimmunization and DR3, DRw52a phenotype in HPA-1b homozygous women suggests that these class II molecules play a crucial role in the immune response against HPA-1a. The diallelic system HPA-1 results in a single amino acid polymorphism at the residue 33 of the glycoprotein IIIa. So, we tested the binding of peptides from the 25-42 region of the GPIIIa to purified HLA-DR3 and -DRw52a molecules, using a solid phase assay and a liquid phase peptide binding assay. No binding was demonstrated, indicating that either the crucial region for binding to class II molecules is not the 25-42 region, or that other events only occurring "in vivo" are required for binding. These results may also suggest an indirect role of the residue 33 for T-cell stimulation.

Amino Acid Sequence↗