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J D Pfeifer

Publications and source records attributed to J D Pfeifer.

33 records · Page 2Linked to original sources

The phoP locus influences processing and presentation of Salmonella typhimurium antigens by activated macrophages.

The destruction and processing of bacteria by activated macrophages facilitates the presentation of antigens to T cells and thereby promotes the induction of specific immunity. The PhoP-PhoQ regulatory system that controls the synthesis of many Salmonella proteins required for virulence and survival within macrophages is one mechanism that this particular intracellular pathogen has evolved to resist destruction. To address whether the phoP locus also influences antigen processing during the interaction of Salmonella typhimurium with macrophages, we tested the effect of phoP mutations on the processing and presentation of model antigens expressed by the bacteria. Activated macrophages processed phoP- bacteria with greater efficiency than wild-type bacteria, as measured by the response of antigen-specific T-hybridoma cells; Salmonella constitutively expressing PhoP were processed even less efficiently than wild-type Salmonella. After heat-inactivation, however, both wild-type and phoP- bacteria were efficiently processed. The altered processing and presentation efficiency was not due to differences in the level of antigen expressed by the bacteria or differences in the level of bacterial uptake by the macrophages. In addition, phoP-regulated gene expression was shown to influence processing of antigen phagocytosed independently of the bacteria. Thus, phoP-regulated gene products decrease the processing and presentation of S. typhimurium antigens, demonstrating a role for this virulence locus in the inhibition of the induction of specific immunity.

Animals↗

Processing of bacterial antigens for presentation to class I and II MHC-restricted T lymphocytes.

Phagocytosis leads to the destruction of many bacteria and the proteolytic degradation of bacterial antigens within phagolysosomes to produce immunogenic peptides that bind to Class II major histocompatibility (MHC) molecules within vacuolar compartments. On the other hand, Class I MHC molecules bind cytosol-derived peptides, including peptides from bacteria that escape the vacuolar system and penetrate into the cytosol. A recently described pathway may also allow the presentation of peptides from intravacuolar organisms by Class I MHC molecules in some cases. T cell recognition of peptide-MHC complexes then provides the primary basis for specific immunity to protein antigens of bacteria. This article will review the subcellular compartments and mechanisms involved in generating immunogenic peptides, the subcellular localization of MHC molecules that bind these peptides, and bacterial parameters that affect antigen processing.

Animals↗

Parameters that influence the efficiency of processing antigenic epitopes expressed in Salmonella typhimurium.

We investigated parameters that affect the efficiency with which antigenic epitopes from Salmonella typhimurium are processed for presentation to T lymphocytes. As a model system, the hen egg white lysozyme 52-61 [HEL(52-61)] epitope, which binds the murine major histocompatibility complex class II (MHC-II) molecule I-Ak, was expressed in soluble fusion proteins in S. typhimurium. Murine peritoneal macrophages mediated phagocytic processing of viable S. typhimurium expressing fusion proteins of the HEL epitope for presentation via I-Ak regardless of the bacterial compartment in which the epitope was contained (i.e., surface exposed, facing the periplasmic space, or in the cytoplasm). Minor differences in processing efficiency observed with different epitope compartmentalizations could be overcome by altering the relative expression level, indicating that epitope abundance is an important factor for efficient processing of epitopes from S. typhimurium. This processing pathway required phagocytosis of bacteria followed by passage through an acidic compartment, suggesting a pathway involving phagolysosomal degradation of the bacteria to liberate epitopes that bind MHC-II. HEL(52-61) was processed more efficiently from heat-killed S. typhimurium than from viable bacteria, and in addition, the HEL epitope was processed more efficiently from a rough lipopolysaccharide (LPS) strain than from its isogenic smooth LPS counterpart, most likely because of enhanced phagocytosis of the rough LPS strain. These data suggest that the efficiency of epitope processing from S. typhimurium for presentation via MHC-II is affected by bacterial viability, epitope abundance, and LPS phenotype, factors which may be important to consider in development of recombinant S. typhimurium vaccine strains.

Animals↗

Antigen expressed by Salmonella typhimurium is processed for class I major histocompatibility complex presentation by macrophages but not infected epithelial cells.

Macrophages were shown to mediate class I major histocompatibility complex (MHC-1) presentation of a fusion protein (Crl-OVA) expressed in Salmonella typhimurium, a bacterium which fails to escape from vacuolar compartments after phagocytosis or penetration into host cells. Salmonella typhimurium also penetrates into non-phagocytic intestinal epithelial cells, a portal of entry for systemic infection. We tested the ability of infected epithelial cells to process antigen expressed by S. typhimurium for presentation by MHC-I molecules to CD8+ T cells. CMT-93 murine adenocarcinoma cells expressed Kb and effectively presented the OVA 257-264 peptide to CD8 OVA T-hybridoma cells, but infected CMT-93 cells failed to process Crl-OVA expressed in S. typhimurium. Therapeutically useful MHC-I-restricted cytotoxic T-lymphocyte (CTL) responses may be generated by macrophage presentation of Salmonella antigens or recombinant antigens expressed in Salmonella vaccine vectors. Our data suggest that an inability of epithelial cells to present these antigens may limit the utility of CTL in epithelial immunity in salmonellosis, but studies of additional epithelial cell systems are needed.

Animals↗

Phagocytic processing of bacterial antigens for class I MHC presentation to T cells.

Class I major histocompatibility complex (MHC) molecules present antigens that are produced within the presenting cell or penetrate from the vacuolar system into the cytosol for processing. Most studies of exogenous antigen processing have used soluble antigens, which are not efficiently presented by class I MHC molecules and do not elicit CD8 T-cell responses in vivo. But particulate antigen preparations with no known mechanism for cytosolic penetration can also elicit CD8 T-cell responses in vivo. We report here that phagocytosis of bacteria with no mechanism for cytosolic penetration also results in presentation of bacterial antigens by class I MHC molecules. Moreover, this mechanism is resistant to cycloheximide and Brefeldin A, which block the classical class I processing pathway. These results suggest a novel vacuolar class I processing pathway for exogenous phagocytic antigens.

Amino Acid Sequence↗

Compartmentalization of defined epitopes expressed in Escherichia coli has only a minor influence on efficiency of phagocytic processing for presentation by class I and class II major histocompatibility complex molecules to T cells.

The effect of abundance and compartmentalization of antigenic epitopes expressed in Escherichia coli on phagocytic processing was studied by expressing fusion proteins containing the epitope from positions 52 to 61 of hen egg white lysozyme [HEL(52-61)], which binds the I-Ak murine major histocompatibility complex class II (MHC-II) molecule or the epitope from positions 257 to 264 of chicken egg ovalbumin [OVA(257-264]), which binds the Kb murine MHC-I molecule. Epitopes expressed as fusion proteins in the outer membrane protein LamB allowed exposure of the epitopes either at the bacterial surface, in the periplasmic space, or in the cytoplasm. Regardless of epitope compartmentalization within the bacterium, MHC-II-restricted or MHC-I-restricted presentation to T hybridoma cells occurred after macrophages phagocytosed bacteria producing the HEL(52-61) epitope or the OVA(257-264) epitope, respectively. Increased epitope abundance within a given microbial compartment resulted in increased processing and presentation to epitope-specific T hybridoma cells. Minor differences in the efficiency of epitope processing between the constructs was observed, and the HEL or OVA epitope exposed in the periplasmic space was processed most efficiently compared with the surface- or cytoplasm-localized epitopes. These differences could be overcome by increasing the amount of epitope per bacterium as little as two to five times. The minor differences in processing efficiency may be due to differing protein contexts of the epitope as well as differing epitope compartmentalizations within the bacteria. Thus, production of abundant epitope is the important parameter influencing processing of epitopes expressed in E. coli to induce T-cell responses rather than targeting of an epitope to a specific bacterial compartment.

Amino Acid Sequence↗

Paracrystalline inclusions of a novel ferritin containing nonheme iron, produced by the human gastric pathogen Helicobacter pylori: evidence for a third class of ferritins.

An abundant 19.3-kDa Helicobacter pylori protein has been cloned, and the sequence is homologous with a ferritin-like protein produced by Escherichia coli K-12. Homologies are also present with a number of eucaryotic ferritins, as well as with the heme group-containing bacterioferritins. All amino acids involved in chelation of inorganic iron by ferritins from humans and other higher species are conserved in the H. pylori protein. Consistent with the structural data indicating an iron-binding function, E. coli overexpressing the H. pylori ferritin-like protein accumulates almost 10 times more nonheme iron than vector controls, and the iron-binding activity copurifies with the 19.3-kDa protein. Immunoelectron microscopy of H. pylori, as well as of E. coli overexpressing the H. pylori gene, demonstrates that the gene product has a cytoplasmic location where it forms paracrystalline inclusions. On the basis of these structural and functional data, we propose that the H. pylori gene product (termed Pfr) forms the basis for a second class of bacterial ferritins designed to store nonheme iron.

Amino Acid Sequence↗

Recombinant Escherichia coli express a defined, cytoplasmic epitope that is efficiently processed in macrophage phagolysosomes for class II MHC presentation to T lymphocytes.

Although the processing of soluble Ag for presentation to T cells has been extensively studied in vitro, similar studies of phagocytic Ag processing have been limited. We have developed an in vitro model system to study the ability of macrophages to process recombinant Escherichia coli strain HB101 with cytoplasmic or surface expression of the well characterized T cell epitope of hen egg lysozyme (HEL) 52-61. This epitope was expressed within full length HEL or within a fusion protein containing the HEL epitope. Phagocytosis of E. coli with cytoplasmic expression of HEL or the HEL fusion protein resulted in strong presentation of HEL(52-61) to T cells. Surface-conjugated HEL was processed with even greater efficiency. Processing required viable macrophages, was inhibited by cytochalasin D, and was achieved within 20 min of bacterial contact with the macrophages. Within this time span, phagosomes containing bacteria fused with lysosomes, and the bacteria were extensively degraded. Uptake of as few as four bacteria per macrophage produced an Ag-specific T cell response. We conclude that bacterial compartmentalization of the antigenic epitope (cytoplasmic vs surface) had some effect on its processing, but that phagocytic Ag processing organelles contain extensive capacity to degrade internalized bacteria and liberate intracellular Ag epitopes for recycling and presentation, consistent with a central role for phagolysosomes. Thus, future recombinant bacterial vaccines may be effectively designed with T cell epitopes expressed either on the surface or within the bacterial cytoplasm.

Animals↗

Endogenous Pseudallescheria boydii endophthalmitis. Clinicopathologic findings in two cases.

Two cases of endogenous Pseudallescheria boydii endophthalmitis are presented. One patient had severe pulmonary fibrosis but no history of ocular trauma and no clinical or laboratory evidence of immunocompromise. Despite therapy with repeated intravitreal miconazole nitrate injections and systemic fluconazole, enucleation of the globe was required, and the patient eventually died with disseminated pseudallescheriasis. The other patient was an immunosuppressed cardiac transplant recipient who also received systemic fluconazole therapy. The infected eye eventually required evisceration, but there was no evidence of disseminated pseudallescheriasis before his death of unrelated causes.

Antifungal Agents↗

B cell stimulatory factor 1 (interleukin 4) is sufficient for the proliferation and differentiation of lectin-stimulated cytolytic T lymphocyte precursors.

In this report, we demonstrate that IL-4 is sufficient to stimulate both the proliferation and differentiation of Lyt-2+, Ia- splenic CTL precursors stimulated with the mitogenic lectin Con A. The response to IL-4 and Con A was not dependent on a putative endogenous production of IL-2 within the cultures, as demonstrated by an absence of an inhibitory effect by an anti-IL-2-R blocking mAb. Our results indicate that IL-2 and IL-4 can support an equivalent proliferative response by lectin-stimulated Lyt-2+ T lymphocytes, while IL-4 is more efficacious in stimulating their differentiation into mature cytolytically active cells.

Animals↗

Partial purification and characterization of a factor from a cloned thymic epithelium cell line.

The culture supernatant from a cloned line of thymic epithelium (TEPI) is shown to enhance the response of thymocytes to alloantigen as measured by cell-mediated lympholysis. The supernatant has no effect on the spleen cell response to alloantigen as measured by cell-mediated lysis and does not contain interleukin 1, interleukin 2, interleukin 3, or interferon-gamma activity. The activity is shown to have an apparent m.w. of 160,000 by Sephacryl S-200 gel permeation chromatography, to have an isoelectric point of 6.5, and to elute from DEAE-Sepharose at 0.07 M NaCl.

Animals↗

Nicotinamide restores phosphaturic effect of PTH and calcitonin in phosphate deprivation.

Results of previous studies suggest a potentially important role for nicotinamide adenine dinucleotide (NAD) in the cellular regulation of phosphate transport by the renal proximal tubules. The present clearance studies were performed to evaluate whether intraperitoneal administration of nicotinamide, a precursor of NAD and inhibitor of NAD catabolism, would not only increase phosphate excretion but also restore the phosphaturic response to parathyroid hormone (PTH) in rats fed a low phosphate diet. Rats fed a low phosphate diet were resistant to the phosphaturic effect of PTH, calcitonin, and dibutyryl cAMP (DBcAMP) in spite of the fact that all three agents elicited an increase in the urinary excretion of cAMP. Administration of nicotinamide to rats fed a low phosphate diet increased renal cortical NAD levels, increased phosphate excretion, partially restored the phosphaturic effect of PTH and DBcAMP, and completely restored the phosphaturic response to calcitonin. We conclude that nicotinamide restores the phosphaturic effect of PTH and calcitonin in rats fed a low phosphate diet by acting at a cellular step subsequent to cAMP generation to inhibit tubular reabsorption of phosphate.

Animals↗

Primitive neuroectodermal tumors of the biliary and gastrointestinal tracts: clinicopathologic and molecular diagnostic study of two cases.

Primitive neuroectodermal tumor (PNET) is a prototypic malignant small round cell tumor of childhood that is characterized in most cases by t(11;22) resulting in an EWS-FLI1 gene fusion. Once thought to be uncommon, PNET now accounts for almost 20% of malignant soft tissue tumors in children. Increased recognition of PNET is partly due to advances in immunohistochemistry and molecular diagnostics, which have led to the identification of the tumor in non-classical sites. We report the clinical, histologic, immunohistochemical, and molecular findings of two visceral PNETs of the digestive system--one involving the small intestine and the other involving the hepatic duct. Histologically, each tumor was composed of malignant small cells growing in sheets, nests, and lobules; the tumor cells of both cases showed characteristic immunoreactivity for vimentin and O13 (CD99). Reverse transcription-polymerase chain reaction (RT-PCR) analysis for t(11;22) using nested primers was performed with RNA extracted from paraffin-embedded, formalin-fixed tissue and demonstrated an EWS exon 7 to FLI1 exon 5 fusion in both cases, confirmed by Southern blot hybridization and DNA sequence analysis. These results illustrate the expanded clinicopathologic profile of PNET, and demonstrate that visceral PNETs, despite their unusual sites of presentation, maintain the characteristic immunohistochemical and genetic features of PNETs at more conventional sites.

Adolescent↗

Basicranial diastematomyelia: a case report.

Diastematomyelia is a congenital dysraphism of the spinal cord in which the affected segment is longitudinally divided by a band of fibrous tissue, cartilage, or bone. Diastematomyelia has been well described in the cervical, thoracic, lumbar, and sacral spinal cord; this paper presents a case involving the basicranium. Based on the early embryologic development of the basicranium and brain, this case demonstrates that the same mechanisms proposed as the origin of spinal diastematomyelia may also operate at a more cephalad level.

Female↗