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E G Pamer

Publications and source records attributed to E G Pamer.

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CTL epitope generation is tightly linked to cellular proteolysis of a Listeria monocytogenes antigen.

Listeria monocytogenes is a pathogenic intracellular bacterium that secretes proteins into the cytosol of host cells. A major secreted protein, p60, is processed by the host cell into the nonamer peptides p60 217-225 and p60 449-457, which are presented to CTL by H-2Kd MHC class I molecules. Herein, we use two membrane permeable peptide aldehyde protease inhibitors, LLnL and Z-LLF, to inhibit cytosolic proteolysis in L. monocytogenes-infected cells. These inhibitors, which have been shown to inhibit proteasomes, completely abrogate cytosolic p60 degradation. The effect of LLnL and Z-LLF on p60 epitope generation was determined by acid-eluting, HPLC-purifying, and quantifying p60 217-225 and p60 449-457 from infected cells. We show a direct linkage between p60 degradation and epitope generation. However, the two inhibitors have quantitatively different effects on the generation of the two epitopes. Our findings implicate proteasomes in the earliest stages of Ag degradation and suggest that different CTL epitopes can be generated by distinct proteolytic processes.

Amino Acid Sequence↗

Two Listeria monocytogenes CTL epitopes are processed from the same antigen with different efficiencies.

Listeria monocytogenes is an intracellular bacterium that elicits MHC class I-restricted CTL in infected mice. A major CTL specificity is the nonamer peptide p60 217-225, which is derived from the bacterial murein hydrolase p60 and presented by the H-2Kd MHC class I molecule. In this report, we identify a second H-2Kd presented peptide, encompassing residues 449-457 of p60, that is detected by L. monocytogenes-specific CTL. Both p60-derived CTL epitopes are good competitors for H-2Kd binding and TAP (transporter associated with Ag processing) transport. CTL clone WP11.12 lyses L. monocytogenes infected cells and recognizes naturally processed p60 449-457 acid eluted from L. monocytogenes-infected macrophages. Although both epitopes derive from the same Ag and bind the same allelic form of MHC class I, quantitative analysis reveals that the amount of p60 449-457 in infected cells is approximately 10-fold greater than the amount of p60 217-225. Shuffling p60 217-225 into position 449-457 decreases its processing efficiency, indicating that the large number of p60 449-457 epitopes cannot be entirely attributed to epitope-flanking sequences. Our findings indicate that CTL epitopes can be processed from Ags with markedly different kinetics and efficiencies. Intrinsic qualities of an epitope and its location within a protein influence the efficiency of Ag processing.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

A Listeria monocytogenes pentapeptide is presented to cytolytic T lymphocytes by the H2-M3 MHC class Ib molecule.

Polymorphism of MHC class Ia molecules severely constrains vaccine development against intracellular pathogens. Antigen presentation by MHC class Ib molecules, which are generally conserved between different individuals, may circumvent this obstacle. Herein, we use tandem mass spectrometry to identify a Listeria monocytogenes pentapeptide antigen that is presented to T lymphocytes by the H2-M3 MHC class Ib molecule. The peptide contains N-formyl methionine at the N terminus and exclusively hydrophobic amino acids. Mice of the H-2 d, H-2 b,and H-2 k haplotypes respond to this peptide upon infection with Listeria monocytogenes. Identification of antigens presented by MHC class Ib molecules is feasible and may provide opportunities for relatively unrestricted vaccine development.

Alleles↗

Listeriolysin is processed efficiently into an MHC class I-associated epitope in Listeria monocytogenes-infected cells.

Listeria monocytogenes is an intracellular pathogen that enters the cytoplasm of infected cells by secreting listeriolysin (LLO), a protein that destroys the phagosomal membrane. In infected mice, LLO is a major Ag detected by protective, MHC class I-restricted CTLs. Although the role of LLO in pathogenesis and host immunity is well established, its rate of intracellular synthesis has yet to be determined. Herein we show that cytosolic L. monocytogenes secrete LLO at a relatively low rate of approximately one molecule per bacterium per minute. Under extracellular labeling conditions, the rate of LLO secretion is approximately 50-fold higher. Intracellular LLO synthesis suffices, however, for the accumulation of 600 to 1000 H-2Kd-associated LLO 91-99 epitopes per cell. We calculate that between four and 11 LLO molecules are degraded for each LLO 91-99 epitope bound by H-2Kd. Our findings indicate that the antigenicity of LLO, with respect to MHC class I-restricted CTLs, cannot be attributed to high levels of intracellular secretion. Rather, LLO is a dominant Ag because it is rapidly degraded and very efficiently processed into an MHC class I-associated epitope.

Animals↗

CD8 T lymphocytes specific for the secreted p60 antigen protect against Listeria monocytogenes infection.

The ability of Listeria monocytogenes to gain access to the cytoplasm of infected cells results in the processing and presentation of bacterial Ags through the MHC class I pathway. As a result, CD8 T cells are the most effective mediators of acquired immunity in the mouse model of L. monocytogenes infection. CD8 T cells specific for a single nonamer epitope derived from the secreted virulence factor listeriolysin O (LLO) can protect H-2d mice against lethal infection. Bacteria lacking LLO are avirulent and do not elicit protective immunity in mice. Thus, the failure of LLO minus L. monocytogenes to elicit protective immunity could be caused either by their inability to enter the cytoplasm or to the lack of LLO-derived peptide epitopes. In this report we provide evidence that H-2d restricted CD8 T cells with specificity for another L. monocytogenes protein, the secreted p60 molecule, can protect against infection. Our studies further demonstrate that LLO-dependent induction of protective immunity results from access of the bacterium to the cytoplasm. In addition, these studies provide support for the hypothesis that secreted bacterial proteins are the most important targets for protective CD8 T cell-mediated immunity.

Animals↗

Infection with Listeria monocytogenes impairs sialic acid addition to host cell glycoproteins.

Listeria monocytogenes is a facultative intracellular bacterium that causes severe disease in neonates and immunocompromised adults. Although entry, multiplication, and locomotion of Listeria in the cytosol of infected cells are well described, the impact of such infection on the host cell is unknown. In this report, we investigate the effect of L. monocytogenes infection on MHC class I synthesis, processing, and intracellular trafficking. We show that L. monocytogenes infection interferes with normal processing of N-linked oligosaccharides on the major histocompatibility complex (MHC) class I heavy chain molecule, H-2Kd, resulting in a reduced sialic acid content. The glycosylation defect is more pronounced as the infection progresses and results from interference with the addition of sialic acid rather than its removal by a neuraminidase. The effect is found in two different cell lines and is not limited to MHC class I molecules since CD45, a surface glycoprotein, and LGP120, a lysosomal glycoprotein, are similarly affected by L. monocytogenes infection. The glycosylation defect is specific for infection by L. monocytogenes since neither Trypanosoma cruzi nor Yersinia enterocolitica, two other intracellular pathogens, reproduces the effect. The resultant hyposialylation of H-2Kd does not impair its surface expression in infected cells. Diminished sialic acid content of surface glycoproteins may enhance host-defense by increasing susceptibility to lysis and promoting clearance of Listeria-infected cells.

Animals↗

Direct sequence identification and kinetic analysis of an MHC class I-restricted Listeria monocytogenes CTL epitope.

Murine infection with the intracellular bacterium Listeria monocytogenes elicits MHC class I-restricted CTL with specificity for multiple bacterial peptides. The variety and relative abundance of self-peptides bound by MHC molecules make identification of pathogen-derived peptides difficult. In this report, the sequence of a pathogen-derived CTL epitope is determined by direct analysis of peptides extracted from MHC class I molecules. The epitope, p60 217-225, is presented to L. monocytogenes-specific CTL by the H-2Kd MHC class I molecule and is derived from p60, a secreted invasion-associated protein. Quantitation of p60 217-225 in infected cells shows that this epitope is detectable within 2 h of infection and, after a 9-h infection, there are over 3000 epitopes per infected cell. This contrasts with listeriolysin 91-99, the other major L. monocytogenes epitope, which is present in quantities below 200 epitopes per cell until 5 h of infection and reaches 800 epitopes per cell 9 h after infection. This report shows that identifying new T lymphocyte epitopes by direct sequence analysis of peptides isolated from MHC molecules is feasible. Furthermore, kinetic and quantitative analysis of T cell epitopes in infected cells is a useful approach to investigate the multispecific CTL response to complex intracellular pathogens.

Amino Acid Sequence↗

Efficiency of MHC class I antigen processing: a quantitative analysis.

Listeria monocytogenes is an intracellular pathogen that secretes proteins into host cell cytosol. One such protein, the murein hydrolase p60, is processed by the host cell into the nonamer peptide p60 217-225 and presented to cytotoxic T lymphocytes by the H-2Kd MHC class I molecule. Using strains of L. monocytogenes that secrete different amounts of p60, we show that the rate of p60 217-225 production is proportional to the quantity of intracellular antigen. The appearance of p60 217-225 is coupled to the degradation of newly synthesized p60. By accounting for the rate of intracellular antigen secretion and degradation, we estimate that approximately 35 p60 molecules are degraded to produce one p60 217-225 epitope. These findings provide an estimate of the efficiency of antigen processing and shed light on the capacity of the MHC class I antigen processing pathway to accommodate foreign antigens.

Animals↗

Peptide presentation by the MHC class Ib molecule, H2-M3.

The presentation of N-formylated peptides to cytotoxic T cells is restricted to the mouse class I MHC molecule, H2-M3. Previous studies have shown that M3 is unable to present unformylated peptides. We demonstrate that the unformylated ND1 peptide can sensitize M3wt-transfected fibroblasts for killing by ND1-specific cytotoxic T cells. At 1 microM, both N-formylated and unformylated ND1 peptides induced equivalent levels of killing. However, the concentrations required for half maximal killing differed by 10(4)-fold, from 10-50 pM for N-formylated ND1 to 100 nM for unformylated ND1. The peptide binding groove of M3 differs from other class I molecules at three highly conserved positions: 34 (V-->Q), 167 (W-->L) and 171 (Y-->F). Site-directed mutagenesis was used to determine the importance of these changes in the presentation of N-formylated peptides by M3. Cell lines expressing the mutations Q34V, L167W or F171Y all presented the N-formylated ND1 peptide equally well to ND1-specific T cells. The N-formylated ND1 peptide was also presented by a triple mutant, containing substitutions at all three positions. Q34, L167 and F171 are therefore not required individually, nor in combination, for the presentation of N-formylated peptides by M3. However, all three point mutations did affect killing by alloreactive, M3-specific T cells. F171Y was the least damaging mutation, affecting only one of the two T cell lines tested. By contrast, both T cell lines failed to kill Q34V and L167W targets. Q34 and L167 are thus important determinants in the M3-specific CTL response.

Amino Acid Sequence↗

Variable binding affinities of listeriolysin O peptides for the H-2Kd class I molecule.

Previously we used the peptide-binding motif for the murine class I major histocompatibility complex molecule H-2Kd to identify a nonamer peptide of the Listeria monocytogenes listeriolysin (LLO) protein that was recognized by cytotoxic T lymphocytes (CTL) in association with H-2Kd. Eleven nonamer peptides contained in the LLO sequence were synthesized and one, LLO 91-99, proved to be a CTL target. Using peptide binding competition assays with H-2Kd-restricted CTL, we show that 3 out of the 11 LLO peptides, including the CTL epitope, have a high binding affinity for H-2Kd; 2 of 11 peptides have approximately 10-fold lower affinity, while the remaining 6 peptides have no or very low affinity for H-2Kd. Single residue changes were made in the LLO 91-99 peptide and two other LLO peptides to identify non-anchor amino acids that might interfere with peptide binding. In addition, we used the LLO peptides which bound well to H-2Kd to attempt to restimulate a secondary CTL response from L. monocytogenes-primed spleen cells. Only LLO 91-99 was able to induce such a response. Thus only a fraction of nonamer peptides which fit the original binding motif have a high affinity for the H-2Kd class I molecule, and only a fraction of these serve as CTL epitopes.

Amino Acid Sequence↗

Cellular immunity to intracellular bacteria.

Great progress has been made in understanding the mechanisms bacteria use to invade, survive and move within eukaryotic cells. It is clear that bacteria have found ways to manipulate host cell signal transduction pathways and the cytoskeleton to their advantage. To defend against prokaryotic invaders, the immune system has evolved mechanisms for the specific recognition of bacterial antigens.

Antigens, Bacterial↗

Do nonclassical, class Ib MHC molecules present bacterial antigens to T cells?

Immune responses to bacterial antigens that appear unrestricted by the MHC may involve oligomorphic MHC class Ib molecules. One example is H-2M3, which binds N-formylated peptides and presents a Listeria peptide to cytotoxic T cells from infected mice. Lack of polymorphism makes these molecules a promising target for peptide vaccines.

Animals↗

H-2M3 presents a Listeria monocytogenes peptide to cytotoxic T lymphocytes.

We report evidence that a major histocompatibility complex-encoded nonclassic class I molecule presents a foreign peptide to cytotoxic T lymphocytes (CTL) during an infection. Mice immunized with virulent Listeria monocytogenes generate CD8+ CTL with alpha beta receptors specific for a bacterial peptide presented by a conserved class I molecule encoded in the M region of the major histocompatibility complex. The Listeria peptide is digested by carboxypeptidase Y but resists aminopeptidase M, and only peptides with N-formyl methionine competitively block its presentation to CTL. Transfection with the H-2M3d gene enables a negative (H-2w17) cell line to present the bacterial peptide. One function, therefore, of H-2M3 is to present bacterial peptides to CTL during infection.

Amino Acid Sequence↗

Precise prediction of a dominant class I MHC-restricted epitope of Listeria monocytogenes.

Listeria monocytogenes is a Gram-positive bacterium which grows in the cytoplasm of eukaryotic cells and can cause severe disease in immunocompromised individuals. In murine systems CD8+ T lymphocytes have been shown to be important effectors of acquired protective immunity against L. monocytogenes. Class I MHC-restricted CD8+ cytotoxic T lymphocytes (CTL), which lyse J774 macrophage-like targets infected with L. monocytogenes, are induced following in vivo injection of live organisms. Natural peptide epitopes derived from L. monocytogenes can be acid-extracted from heavily infected BALB/c spleens and detected by CTL. A CTL clone, B9, derived from a (BALB/c x C57BL/6)F1 (H-2dxb) mouse, recognizes one of these natural epitopes in an H-2Kd-restricted fashion. B9 also recognizes P815 (H-2d) mastocytoma cells transfected with the listeriolysin gene. To identify the region of the listeriolysin recognized by CTL we used the H-2Kd peptide-binding motif described by Rammensee and colleagues to synthesize 11 nonamer peptides. One of these peptides, listeriolysin 91-99, was recognized very efficiently by B9. This represents the first identified class I MHC-restricted epitope of bacteria and demonstrates the utility of the allele-specific motif for predicting CTL epitopes.

Amino Acid Sequence↗

Expression and deletion analysis of the Trypanosoma brucei rhodesiense cysteine protease in Escherichia coli.

Trypanosoma brucei, the cause of African sleeping sickness, differentiates in the mammalian bloodstream from a long, slender trypanosome into a short, stumpy trypanosome. This event is necessary for infection of the tsetse fly and maintenance of the life cycle. We have previously shown that the stumpy form contains 10- to 15-fold-greater cysteine protease activity than either the slender form or the insect midgut procyclic, and we have isolated a cDNA encoding the protease. In order to determine whether the cDNA encodes the developmentally regulated cysteine protease, we have purified the protease from trypanosomes and have made a polyclonal antiserum against it. The trypanosomal protease gene was then expressed in Escherichia coli with three different methionines within the pre- and propeptides acting as initiation sites. In each case, a protein was synthesized that was recognized by an antiserum specific for the developmentally regulated trypanosomal cysteine protease. The protein synthesized from the more upstream initiation site within the propeptide was proteolytically active. The recombinant protease and the trypanosomal enzyme were identical with respect to peptide substrates and protease inhibitors. The protein remained active when synthesized in a truncated form lacking the nine consecutive prolines and carboxy-terminus extension, indicating that the terminal 108 amino acids are not necessary for proteolytic activity.

Amino Acid Sequence↗

Identification of a developmentally regulated cysteine protease of Trypanosoma brucei.

Trypanosoma brucei undergoes dramatic metabolic changes during differentiation from the mammalian bloodstream form into the procyclic form of the insect midgut. Because modulation of protein degradation is likely to be important during this process we studied T. brucei for life cycle mediated proteolysis. We detected an increase in the activity of a 28 kDa protease as pleomorphic GUTat 3.1 trypanosomes differentiate in the mammalian bloodstream from long slenders into short stumpies. Short stumpy trypanosomes hydrolyse z-Phe-Arg-AMC 12 fold more actively than either long slenders or procyclics. The 28 kDa protease is activated by dithiothreitol and is inhibited by trans-epoxysuccinyl-L-leucyl-amido(4-guanidino) butane (E-64), indicating that it is a cysteine protease. The proteolytic activity of monomorphic ILTat 1.4 trypanosomes does not increase during mammalian parasitemia. If monomorphic ILTat 1.4 trypanosomes are induced to differentiate into short stumpies by exposure to difluoromethylornithine, however, the activity of the 28 kDa cysteine protease increases 8 fold. This suggests that polyamine depletion induces the 28 kDa cysteine protease and that its expression may be regulated by mechanism not previously described in protozoa.

Animals↗