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Sequential analysis of monomorphic and polymorphic major histocompatibility complex antigen expression in human heart allograft biopsy specimens.

Changes in major histocompatibility complex (MHC) antigen expression after heart transplantation were investigated in 233 cardiac allograft biopsy specimens of 33 patients by means of immunohistologic examination. The altered tissue expression was related to histopathologic and clinical diagnoses. A panel of monoclonal antibodies directed to monomorphic determinants was used for the analysis of MHC antigens, class I (human leukocyte antigens [HLA]-A, B, C, and beta 2 microglobulin) and class II (HLA-DR, HLA-DP, HLA-DQ). Donor and recipient MHC antigen expression (HLA-A and HLA-B) was studied by use of monoclonal antibodies directed to polymorphic epitopes. It was found in 57 of 78 rejection episodes that the induction of class I MHC antigens on the normally negative myocyte membranes was related to the rejection process. Usually the induction was focally associated with lymphocytic infiltrates but in severe rejection was generalized on all myocyte membranes. After effective rejection treatment the class I induction was reversed. Class II (HLA-DR) MHC antigens were induced on most vessel endothelia. During rejection MHC antigens HLA-DP and HLA-DQ also were coexpressed on the endothelia of a few vessels. Donor HLA-A and HLA-B antigens were expressed by endothelial and interstitial cells in comparable density but only in low amounts on myocyte membranes. Recipient interstitial cells infiltrated around vessels with time after transplantation. Most interstitial cells between myofibrils, however, remained those of the donor type until 1 year after transplantation. These results show that cardiac allografts undergo remarkable changes in the expression of MHC antigens during clinical complications after transplantation. Furthermore, the changes in alloantigen composition may influence the clinical course.

Adolescent↗

Phenotypic analysis of lymphocytes involved in major histocompatibility complex unrestricted cellular cytotoxicity in patients with alcoholic cirrhosis.

Lymphocyte subpopulations known to exert major histocompatibility complex (MHC) unrestricted cytotoxicity were enumerated in 33 patients with alcoholic cirrhosis and in 10 patients with alcohol-induced fatty changes of the liver. Absolute numbers and percentages of lymphocytes bearing the CD57 (median 12 vs. 20%; p = 0.007) and CD16 (median 12 vs. 19%; p = 0.0027) antigens were significantly reduced in cirrhotic patients as compared to healthy control individuals, whereas no significant change in CD56+ cells (median 13 vs. 13%; n.s.), comprising a subpopulation with a high natural killer activity in normal individuals, was observed. A subset of these cells, cytotoxic T cells coexpressing CD56 and CD3 antigens and capable of MHC-unrestricted cellular cytotoxicity, was significantly increased in patients with alcoholic cirrhosis as compared to healthy control individuals (median 2 vs. 1%; p = 0.024). Patients with alcohol-induced fatty changes of the liver did not show any deviation of lymphocyte subpopulation from normal. The finding that lymphocyte subsets capable to exert most of the MHC-unrestricted cytotoxic capacity in peripheral blood (CD56+ non-T-cells and CD3+ CD56+ T cells) were unchanged or even increased in number suggests that the reduced natural killer cell activity known to occur in patients with alcoholic liver cirrhosis might be due to a functional defect of these cells. Furthermore, our results indicate that changes in frequency of MHC-unrestricted cytotoxic cells are not found in a similar manner in all subsets of these cells, but are dependent on the particular cell surface marker investigated.

Adult↗

Isolation of a human major histocompatibility complex class I gene encoding a nonubiquitous molecule expressed on activated lymphocytes.

The human major histocompatibility complex is a multigene family containing at least 20 class I genes. Included within this family are the loci encoding the highly polymorphic HLA-A, -B, and -C antigens present at the surface of most nucleated cells. The large number of genes detected with class I probes by Southern blot analysis and the existence of serological reagents defining nonubiquitous, non-HLA-A,B,C class I antigens suggest that products other than HLA-A,B,C antigens are encoded within the class I gene family. These products might be the human counterparts of the murine Qa and TL antigens. In order to identify non-HLA-A,B,C genes, we have developed a probe, JF11, located in noncoding regions flanking the HLA-A locus. This probe detects only a limited number of class I genes and does not detect HLA-A,B,C-associated restriction fragments on Southern blots. This probe was used to screen a human cosmid library. Some of the cosmids isolated with this probe were then transferred into mouse fibroblasts expressing human beta 2-microglobulin. One of the transfectants specifically reacts with one alloantiserum (HA2) that detects HLA class I molecules specific to HLA-A2-positive, phytohemagglutinin-activated T cells and not found on resting T or B cells. Data presented in this paper provide evidence for the isolation and expression of a class I gene encoding a nonubiquitous class I antigen that could be a human analogue of the murine Qa antigens.

Animals↗

Major histocompatibility complex antigen expression on rat microglia following epidural kainic acid lesions.

Vigorous expression of major histocompatibility complex (MHC) class I and class I surface glycoproteins was observed on reactive microglia but not on astrocytes in the rat brain following lesions induced by epidural kainic acid (KA) on the cerebral cortex. The monoclonal antibodies used were OX18 against MHC class I, OX6 against MHC class II, OX1 against leukocyte common antigen (LCA), and W3/13 against pan-T lymphocytes. Astrocytes were marked by antibodies to glial fibrillary acidic protein (GFA) and S100b protein. The lesion differentially affected four zones: the central area of the lesion where most cells died; the peripheral zone surrounding the lesion where selective damage occurred; projection tracts from the lesioned area; and terminal fields of damaged neurons. In nonlesioned animals, class I expression was confined to vascular endothelial cells and some small glial cells. Following KA treatment, class I-positive round cells appeared in the central zone at day 1, peaked about day 5, and then slowly declined. In the peripheral zone, class I-positive microglia were present fron day 2 on. They demonstrated classical morphology for such cells, and in some cases arranged themselves in pyramidal profiles surrounding neurons. Reactive microglia were also class I positive along tracts of damaged neurons and in the terminal areas. The reaction was reduced to control levels 16-20 weeks after lesioning although some vascular endothelial cells and a few round cells still stained positively in the cystic area, which was the remnant of the central zone. Class II antigen expression first appeared in the form of round cells in the central zone of the lesion on day 1. These peaked at 5-7 days and declined thereafter. In the peripheral zone on day 5, some positive round or ameboid cells were found intermingled with typical reactive microglia. This reaction peaked at about 1-2 weeks and decreased thereafter. Class II-positive microglia appeared in fiber tracts and in the terminal areas on day 5, peaked after 2-3 weeks, and declined thereafter. Double immunostaining for class I and II antigens showed that there were significantly fewer class II- than class I-positive cells, but the morphology of the two groups was similar. No astrocytes stained positively for either group I or group II antigen. In both the primary and secondary lesioned areas, LCA staining was observed on the surface of reactive microglia. In the primary lesions there were also LCA-positive round cells in the central zone, but these were rare in the peripheral zone and the secondary lesioned areas.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Phylogenetic conservation of a class III major histocompatibility complex antigen, factor B. Isolation and nucleotide sequencing of mouse factor B cDNA clones.

The complement protein factor B is a novel serine protease which is encoded within the major histocompatibility complex in man, guinea pig, and mouse. To determine the structure of mouse factor B, cDNA clones were isolated from mouse strains of two different major histocompatibility complex haplotypes, H-2k and H-2d, and clones of 0.9 and 1.5 kilobases, respectively, were sequenced. The H-2d clone includes the H-2k clone sequence and spans 94% of the Bb-coding sequence. No differences in sequence or in restriction enzyme sites were observed between the H-2k and H-2d clones. The H-2d clone displays 83% nucleotide homology and 83% (derived) amino acid homology with that of human factor B; there are no insertions or deletions. Comparison of the mouse and human factor B sequence reveals extensive regional homology at the catalytic residues and in the NH2-terminal portion of the Bb fragment.

Amino Acid Sequence↗

Bone marrow-derived immature dendritic cells prime in vivo alloreactive T cells for interleukin-4-dependent rejection of major histocompatibility complex class II antigen-disparate cardiac allograft.

BACKGROUND: Dendritic cells (DC) at the immature state express low levels of major histocompatibility complex and costimulatory molecules and are poor stimulators of primary T-cell response in vitro. Injection of immature bone marrow-derived DC, however, was shown to prime in vivo alloreactive CD4 T lymphocytes toward type 2 cytokine-producing cells in the absence of CD8 T-cell activation. METHODS: We undertook the present study to determine whether Th2-immunization by immature DC could lead to allograft rejection. We first analyzed, in the major histocompatibility complex class II antigen-disparate B6-anti-bm12 combination, the capacity of immature DC to regulate the activity of alloreactive CD4 T cells. We then determined, in this model of weak antigenicity, whether injection of bm12 DC in B6 recipients before transplantation could modify the survival of vascularized bm12 cardiac allografts. RESULTS: We confirmed that in vitro immature DC are poor stimulators of T-cell alloresponse. However, when given in vivo, immature bm12 DC primed anti-bm12 T cells for the production of interleukin (IL)-4. Moreover, they induced the acute rejection of bm12 cardiac allograft. The process of rejection was dependent on IL-4 because immunization of IL-4-deficient mice did not trigger rejection. CONCLUSIONS: Allogeneic immature DC generated with granulocyte-macrophage colony-stimulating factor are potent stimulators of primary alloreactive response in vivo and prime for transplant rejection. Our results indicate that strategies based on immature DC for the induction of transplantation tolerance should be considered with caution.

Animals↗

Major-histocompatibility-complex extended haplotypes in membranoproliferative glomerulonephritis.

Membranoproliferative glomerulonephritis is often associated with evidence of immune derangement, especially hypocomplementemia. We studied genetic markers for membranoproliferative glomerulonephritis within the major histocompatibility complex in 34 patients and their families and in 29 normal families. We examined the frequencies of extended haplotypes (combinations of alleles that tend to occur together) in patients and controls. The extended haplotype HLA-B8,DR3,SC01,GLO2(glyoxalase I 2) was observed in 9 of 68 disease-associated haplotypes (13 percent), but in only 3 of 205 controls (1 percent) (relative risk, 14.79; P less than 0.001). An extended haplotype similar except for a different glyoxalase allotype (B8,DR3,SC01,GLO1) did not occur with increased frequency, nor did any other extended haplotypes. Patients with the extended haplotype B8,DR3,SC01,GLO2 had a higher incidence of renal insufficiency than those without it (P less than 0.01). The data support the hypothesis that a specific extended haplotype of the major histocompatibility complex is associated with susceptibility to membranoproliferative glomerulonephritis, and that patients with glomerulonephritis who have this extended haplotype have a poorer prognosis for kidney survival than those without the haplotype.

Alleles↗

Cooperativity between the J and S elements of class II major histocompatibility complex genes as enhancers in normal and class II-negative patient and mutant B cell lines.

The class II major histocompatibility complex genes all contain in their proximal promoters three cis-elements called S, X, and Y that are conserved in both sequence and position, and a fourth element, J, conserved in sequence but not in position. J, X, and Y and, to some extent, S, have been shown to be functionally important in regulation of expression of these genes. In the present study, a protein factor that binds cooperatively to the S plus J elements of the promoter of the class II major histocompatibility complex gene DPA has been detected. Moreover, functional cooperativity between S and J in activation of the enhancerless -40 interferon-beta (-40 IFN-beta) promoter has been demonstrated. Finally, the latter assay appears to subdivide complementation group A of class II negative human B cell lines that includes both mutants generated in vitro and cells from patients with the bare lymphocyte syndrome (type II). In three of these cell lines, the enhancerless -40 IFN-beta promoter containing the S plus J elements was functionally active, while in the others it was inactive.

B-Lymphocytes↗

Triple immunosuppression protects murine intracerebral, hippocampal xenografts in adult rat hosts: effects on cellular infiltration, major histocompatibility complex antigen induction and blood-brain barrier leakage.

Recently we reported protection of intracerebral mouse to rat hippocampal xenografts upon treatment with a combination of cyclosporin A, prednisolone and azathioprine. These findings are now supported in an extended analysis of graft-infiltrating cells. Host T-cell and macrophage infiltration and the immunocytochemical level of cellular expression of major histocompatibility complex class I and II antigens, measured by densitometric analysis, were compared between recipient rats receiving cyclosporin A alone or cyclosporin A in combination with prednisolone and azathioprine. The combination therapy resulted in a much improved survival of the xenografted hippocampal tissue with preservation of organotypic granule and pyramidal cell layers. Graft infiltration by T-cells and macrophages was significantly lower and the level of major histocompatibility complex class I and II antigen expression by the infiltrating cells markedly reduced. Lower expression of donor-type major histocompatibility complex class I antigen was also found in the xenografts in the trimedicated recipients, together with reduced blood brain barrier leakage and astrogliosis at the host-graft interface. The results demonstrate the benefits of using combined immunosuppressive strategies for protection of histoincompatible brain xenografts in the central nervous system.

Animals↗

Gluten, major histocompatibility complex, and the small intestine. A molecular and immunobiologic approach to the spectrum of gluten sensitivity ('celiac sprue').

This article examines associations between gluten, polymorphisms of the major histocompatibility complex, and mucosal pathology representative of the spectrum of gluten sensitivity. Sequences of wheat, rye, and barley prolamins contain recurring tetrapeptide motifs that are predicted to have beta-reverse-turn secondary structure and that, with in vitro assays, appear active. Structural polymorphisms of major histocompatibility complex subloci identify codon switches within the second exon that control the third hypervariable region in the outer domain of the beta chain. Observations of the intestinal response to gluten reveal five interrelated lesions (preinfiltrative, infiltrative, hyperplastic, destructive, and hypoplastic) that are interpretable as cell-mediated immunologic responses. These responses originate in the lamina propria, where a series of antigen-specific inflammatory processes has now been identified. There is no evidence that celiac sprue is a disease of jejunal enterocytes. Furthermore, the role of intraepithelial space lymphocytes in pathogenesis, if relevant, needs further experimental dissection. Also awaiting further definition are polymorphisms of the celiac lymphocyte antigen receptor and their relationship to gliadin oligopeptide(s) and predisposing genes. The nature and basis of nonresponsive celiac sprue require more thoughtful initiatives to elucidate the immunologic mechanism(s) of unresponsiveness and evaluate possible means of reversal. Finally, a more sensible definition of gluten sensitivity (unhampered by qualitative morphological imagery) is ultimately called for in order to accommodate the biomolecular advances addressed in this review.

Amino Acid Sequence↗

Cycloheximide inhibits interferon-gamma-induced class II major histocompatibility complex antigen expression in cultured rat thyroid cells.

The effects of the agents that are related to intracellular events on interferon-gamma-induced class II major histocompatibility complex antigen expression were studied using the technique of immunocytochemistry. Rat class II major histocompatibility complex antigen (RT1.B) was expressed in 88.3 +/- 3.3% (n = 3) of the functioning rat thyroid cells (FRTL-5) cultured in a medium containing 100 U/ml recombinant rat interferon-gamma (IFN gamma). Deprivation of bovine TSH had no effect on the expression of RT1.B antigen by IFN gamma. A23187 (1 nM to 2 microM) and/or 10 nM to 10 microM phorbol 12-myristate 13-acetate did not induce the expression of RT1.B antigen. IFN gamma-induced RT1.B expression was not inhibited by either 10 nM to 100 microM 1-(5-isoquinolysulfonyl)-2-methylpiperazine or 200 nM to 200 microM 8-(N,N-dimethylamino)octyl-3,4,5-trimethoxybenzoate hydrochloride. It was also not inhibited by either 5-200 microM verapamil or 500 nM to 20 microM trifluoperazine. However, 0.01-10 micrograms/ml cycloheximide inhibited IFN gamma-induced RT1.B antigen expression in a dose-dependent manner. These results suggest that IFN gamma induces RT1.B antigen expression in FRTL-5 cells via de novo protein synthesis independent of the cAMP system, phosphatidylinositide system, and voltage-dependent calcium channel.

Animals↗

Evidence for a trans-acting factor that regulates the transcription of class II major histocompatibility complex genes: genetic and functional analysis.

The study of specific trans-acting transcription factors in prokaryotes and lower eukaryotes has been greatly facilitated by genetic analysis of mutant strains deficient in such factors. We have developed such a system to study mammalian trans-acting factors that regulate the transcription of class II major histocompatibility complex genes, using the mutant cell lines RM2 and RM3. These cells, derived from the human B-cell line Raji, specifically fail to transcribe their class II major histocompatibility complex genes. Here we show that a transfected HLA-DR alpha class II major histocompatibility complex gene, like the endogenous HLA-DR alpha genes, is efficiently transcribed in Raji cells but not in RM2 or RM3 cells, demonstrating that the mutant cells are deficient in a specific trans-acting factor required for transcription of these genes. HLA-DR expression in RM2 and RM3 cells is rescued by fusion to another B-cell line but not by fusion to each other. Thus, the defects in the two cell lines are recessive and noncomplementing and define a locus whose wild-type product we designate TF-X1. We show that TF-X1 influences the activity of a 24-base-pair B-cell-specific cis-acting transcription element in the HLA-DR alpha promoter. However, in three different biochemical assays, we detect no difference between wild-type and mutant cells in the DNA-binding proteins that interact with these DNA sequences. Thus, the defective version of TF-X1 may be a DNA-binding protein that binds to the HLA-DR alpha promoter but fails to activate transcription. Alternatively, TF-X1 may not be a DNA-binding protein at all.

Base Sequence↗

On the heterologous interaction between beta 2-microglobulin and the heavy chain of rat major histocompatibility complex class 1 antigens.

The heterologous interaction between beta 2-microglobulin (beta 2m) and rat major histocompatibility complex (MHC) (RT1) antigens was measured in a two-step binding assay consisting of binding of radiolabelled beta 2m to RT1 antigens and immunoprecipitation of beta 2m-RT1 antigen complexes with RT1 antisera. The effects of varying the concentrations of the three reactants involved were studied. The molecular events taking place in the two steps were analysed by gel chromatography. The beta 2m-RT1 antigen complex had the apparent size of albumin and reacted completely with specific alloantisera. RT1 antigens prepared from Wistar/Furth (RT1u) and Brown Norway (RT1n), respectively, both effectively bound heterologous beta 2m. The times for association and dissociation, respectively, at 37 degrees C, were of the same order, but dissociation was slightly slower. Association was markedly temperature-dependent and was considerably slower at low temperatures. All these processes were slower for RT1n than for RT1u antigens. The association constant for the interaction between RT1u antigens and 125I-human beta 2m was estimated by Scatchard analysis to be about 10(9) M-1. Contribution to the heterologous interaction by products from various rat MHC subloci (A, B, and C) was investigated by the introduction of sublocus-specific antisera in step 2. The reaction apparently involved neither class 2 antigens (sublocus B) nor the presumed rat Qa homologue (sublocus C). Classical class 1 antigens (sublocus A) clearly contributed to the binding. However, a monoclonal antibody against products from rat MHC class 1 genes only precipitated less than half of the RT1 antigen-complexed beta 2m. Thus, at least two RT1u class 1 alloantigen molecules seem to participate in the reaction. This, in turn, indicates that the rat genome may contain multiple class 1 genes, as is the case for most other mammals investigated.

Animals↗

Haplotype-specific gene expression profiles in a telomeric major histocompatibility complex gene cluster and susceptibility to autoimmune diseases.

The telomeric class III region of the major histocompatibility complex is gene dense, but apart from the three tumour necrosis factor (TNF) superfamily members (TNF, lymphotoxin alpha and lymphotoxin beta) little is known of the expression and function of the majority of the genes. Recent genetic studies in autoimmune diseases, particularly rheumatoid arthritis (RA), have suggested a human leukocyte antigen (HLA)-DR-independent disease effect in this region. To gain further insights into these associations, we used lipopolysaccharide-stimulated human macrophages to examine inducible mRNA expression and genotype-phenotype relationships for genes in this region. Following stimulation in addition to the expected induction of TNF mRNA, a 14-fold increase of ATP6V1G2 at 18 h (P<0.001) was seen, whereas B-associated transcript (BAT)2 (P<0.001) and leucocyte-specific transcript (LST)1 (P<0.001) were both downregulated. By genotyping single-nucleotide polymorphisms spanning a 70 kb interval centred on the TNF locus, we constructed haplotypes and determined associated expression profiles for 10 genes in the cluster using quantitative real-time polymerase chain reaction. Overexpression of BAT1 mRNA was associated with carriers of a haplotype containing the LST1 marker transmitted to RA cases in a family study and also DRB1(*)15 associated with susceptibility to nephritis in systemic lupus erythematosus. The implications of our findings for the understanding of genetic associations with disease susceptibility in this region are discussed.

Autoimmune Diseases↗

The NOD mouse: recessive diabetogenic gene in the major histocompatibility complex.

Examination of the histocompatibility region of the nonobese diabetic (NOD) mouse with antibodies against class II glycoproteins (products of immune response genes of the major histocompatibility complex I-A and I-E), hybrid T-cell clones, and mixed-lymphocyte cultures and analysis of restriction fragment length polymorphisms indicate that the NOD mouse has a unique class II major histocompatibility complex with no expression of surface I-E, no messenger RNA for I-E alpha, and an I-A not recognized by any monoclonal antibodies or hybrid T-cell clones studied. In crosses of NOD mice with control C3H mice, the development of diabetes was dependent on homozygosity for the NOD mouse's unique major histocompatibility region.

Animals↗

Site-directed mutagenesis of an HLA-A3 gene identifies amino acid 152 as crucial for major-histocompatibility-complex-restricted and alloreactive cytotoxic-T-lymphocyte recognition.

Major histocompatibility complex-restricted and alloreactive cytotoxic T lymphocytes (CTL) can discriminate between the HLA-A3.1 and HLA-A3.2 antigens. HLA-A3.1 and the rare variant HLA-A3.2 have been shown to differ by two amino acids in the alpha 2 domain at positions 152 (A3.1, glutamic acid; A3.2, valine) and 156 (A3.1, leucine; A3.2, glutamine). To determine the structural basis for the ability of CTL to differentiate A3.1 from A3.2, two site-directed mutants of the HLA-A3.2 gene were produced, 152A3.1-156A3.2 and 152A3.2-156A3.1, that have the indicated codons for positions 152 and 156. These mutated HLA-A3 genes, as well as the nonmutated HLA-A3.1 and HLA-A3.2 genes, were then transfected into the murine cell line P815-HTR and used as targets for human CTL. Influenza virus-specific HLA-A3.1-restricted CTL lysed virus-infected P815 cells transformed with the HLA-A3.1 and 152A3.1-156A3.2 genes, but not P815 cells transformed with the HLA-A3.2 and 152A3.2-156A3.1 genes. HLA-A3.2-allospecific CTL lysed the P815 cells transformed with the HLA-A3.2 and 152A3.2-156A3.1 genes but did not lyse P815 cells transformed with the HLA-A3.1 or 152A3.1-156A3.2 genes. Thus, a single amino acid change at position 152, substituting valine for glutamic acid and thereby introducing a charge difference, produces major structural changes in the epitopes recognized by major histocompatibility complex-restricted and alloreactive CTL.

Adult↗

An optimal viral peptide recognized by CD8+ T cells binds very tightly to the restricting class I major histocompatibility complex protein on intact cells but not to the purified class I protein.

CD8+ cytotoxic T lymphocytes recognize cell surface complexes formed by class I major histocompatibility complex (MHC-I) glycoproteins and antigenic peptides. We have identified a peptide nonamer (termed IV9) derived from the human immunodeficiency virus that is over a millionfold more active (at subpicomolar concentrations) than peptide analogues longer or shorter by one or two amino acid residues. Although IV9 does not detectably bind to isolated MHC-I molecules as measured by equilibrium dialysis, we quantitated its specific binding in unaltered form to MHC-I on intact cells. Less than 1% of cell surface MHC-I forms complexes with IV9, which suffices to trigger maximal cytotoxic T-lymphocyte activity. By contrast, a peptide dodecamer that includes the IV9 sequence and is active at micromolar concentrations does not bind to MHC-I on intact cells, raising the possibility that this longer peptide undergoes processing. Using stoichiometrically iodinated IV9 to obviate the ambiguities associated with trace labeling methods, we measured the dissociation kinetics of purified peptide/MHC-I complexes isolated by affinity chromatography and found these complexes to be exceedingly stable (t1/2 = 200-600 hr).

Amino Acid Sequence↗

Two distinct proteolytic processes in the generation of a major histocompatibility complex class I-presented peptide.

Although cellular proteins degraded by proteasomes are the source of most antigenic peptides presented on major histocompatibility complex class I molecules, it is unknown whether the eight- to nine-residue peptides that fit in the binding groove of class I molecules are directly produced by proteasomes alone in vivo. If the eight-residue peptide SIINFEKL from chicken ovalbumin is extended by one or several residues at its C terminus and microinjected into cells or expressed from a minigene, it is processed and presented on major histocompatibility complex class I. However, processing and presentation are inhibited by proteasome inhibitors, such as lactacystin. In contrast, when SIINFEKL is extended by 2 to 25 residues at its N terminus, its presentation is not blocked by proteasome inhibitors. N-terminal processing also can occur when the extended peptide is cotranslationally inserted into the endoplasmic reticulum. Thus, two different proteolytic steps in the generation of an chicken ovalbumin-presented peptide can be distinguished. Cleavage by the proteasome defines the proper C terminus, whereas distinct peptidase(s) in the cytosol or endoplasmic reticulum may generate the appropriate N terminus from extended peptides.

Animals↗