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T Ganz

Publications and source records attributed to T Ganz.

At least 91 records · Page 5Linked to original sources

Defensins.

Defensins are a family of small, variably cationic proteins which are highly abundant in the granules of mammalian phagocytes. Three defensins, HNP-1, 2, and 3, comprise 30-50% of total protein in azurophil granules of human neutrophils. Some defensins are broadly antimicrobial, antiviral and cytotoxic, while others are chemotactic, opsonic, or may modulate hormonal responses. The defensin molecule typically consists of 29-34 amino acids with a conserved pattern of disulfide linkage among its 6 cysteines. The three-dimensional fold of defensins forms a highly amphiphilic molecule. Microbicidal and cytotoxic properties of defensins are most likely a consequence of their ability to insert into biological membranes and to generate pores. Defensins are synthesized by phagocytes or their precursors as a 94-95 amino acid charge-neutralized preprodefensin, an arrangement which may avoid cytotoxic injury to the phagocyte. Although defensins were recognized only recently, the existence of homologs in certain invertebrates suggests that they are ancestral components of the host defense system.

Amino Acid Sequence↗

Polymorphic expression of defensins in neutrophils from outbred rats.

We isolated and characterized a rat neutrophil defensin, RatNP-2, that differs from the previously described defensin RatNP-1 by containing Ser-7 in place of Arg-7. Although the resulting charge difference rendered RatNP-2 easily distinguishable from RatNP-1 on polyacrylamide gel electrophoresis gels, the two defensins exhibited very similar antimicrobial efficacies against Salmonella typhimurium, Staphylococcus aureus, and Candida albicans. The polymorphonuclear leukocytes of Sprague-Dawley rats obtained from one of two breeders also showed a marked polymorphism for defensin RatNP-4. This defensin was absent in two of seven animals and present in 1x or 2x relative amounts in the others. These observations indicate that a striking degree of defensin polymorphism exists in the polymorphonuclear leukocytes of outbred rodents.

Amino Acids↗

In vitro sensitivity of oral, gram-negative, facultative bacteria to the bactericidal activity of human neutrophil defensins.

Neutrophils play a major role in defending the periodontium against infection by oral, gram-negative, facultative bacteria, such as Actinobacillus actinomycetemcomitans, Eikenella corrodens, and Capnocytophaga spp. We examined the sensitivity of these bacteria to a mixture of low-molecular-weight peptides and highly purified individual defensin peptides (HNP-1, HNP-2, and HNP-3) isolated from human neutrophils. Whereas the Capnocytophaga spp. strains were killed significantly by the mixed human neutrophil peptides, the A. actinomycetemcomitans and E. corrodens strains were resistant. Killing was attributable to the defensins. The bactericidal activities of purified defensins HNP-1 and HNP-2 were equal, and both of these activities were greater than HNP-3 activity against strains of Capnocytophaga sputigena and Capnocytophaga gingivalis. The strain of Capnocytophaga ochracea was more sensitive to defensin-mediated bactericidal activity than either C. sputigena or C. gingivalis was. The three human defensins were equipotent in killing C. ochracea. C. ochracea was killed under aerobic and anaerobic conditions and over a broad pH range. Killing was most effective under hypotonic conditions but also occurred at physiologic salt concentrations. We concluded that Capnocytophaga spp. are sensitive to oxygen-independent killing by human defensins. Additional studies will be required to identify other components that may equip human neutrophils to kill A. actinomycetemcomitans, E. corrodens, and other oral gram-negative bacteria.

Blood Bactericidal Activity↗

Direct cytotoxicity of polymorphonuclear leukocyte granule proteins to human lung-derived cells and endothelial cells.

Neutrophils, in the course of defending the host against microbial invasion, release a potent arsenal of proteins that can potentially damage host tissues. Defensins are major peptides of human polymorphonuclear leukocyte (PMN) granules and are both broadly microbicidal and cytotoxic to several tumor cell lines. To determine whether these peptides could play a role in neutrophil-mediated lung injury, we examined the cytotoxicity of defensins and other PMN granule proteins in a chromium release assay with human lung-derived cell lines MRC-5 (lung fetal fibroblast), A549 (lung adenocarcinoma with features of alveolar epithelium), and primary cultures of human umbilical vein endothelial cells (HUVEC). Crude fractionation of an acid extract of human PMN granules yielded four fractions A-D. Only fraction D (containing mostly defensins) was significantly cytotoxic to all three target cells. In contrast, fraction A (containing myeloperoxidase and lactoferrin) and fraction C (containing lysozyme) had little effect, and fraction B (containing chiefly cathepsin G and elastase) was only injurious to endothelial cells. The cytotoxicity of whole PMN granule extracts on pulmonary epithelial and fibroblast targets could be completely accounted for by their defensin content. Fraction D- and defensin-mediated cytotoxicity was concentration dependent, required at least 10 to 12 h to become manifest, and was inhibited by serum. The role of these peptides in lung damage during acute and chronic inflammation deserves further study.

Blood Proteins↗

The structure of the rabbit macrophage defensin genes and their organ-specific expression.

Defensins are a family of microbicidal and cytotoxic peptides abundant in the lysosomal granules of mammalian phagocytes. We present the cDNA and genomic sequences of two rabbit defensins, macrophage cationic peptides MCP-1 and MCP-2. Their cDNA and genomic sequences are highly homologous, reflecting the homology between the two defensins (32 of 33 amino acids). The MCP genes are closely linked (within 13 kb) suggesting that they evolved by a recent tandem gene duplication. Their cDNA sequences indicate that the peptides are synthesized as 95 amino acid prepro-MCPs, consistent with their lysosomal location. The MCP genes are separated into three exons encoding distinct domains: the 5' untranslated region, the prepropeptide domain, and the mature defensin sequence. Fully developed polymorphonuclear leukocytes, short-lived phagocytes with limited capacity for protein and nucleic acid synthesis, contained MCPs but lacked MCP mRNA. MCP mRNA was found in bone marrow and spleen, organs which contained immature polymorphonuclear leukocytes. MCP and MCP mRNA were detected in lung macrophages, but not in macrophages from other organs, nor in monocytes, the putative macrophage precursors. In macrophages, the expression of MCPs appears to be a marker of lung-specific differentiation.

Amino Acid Sequence↗

Antibacterial properties of eosinophil major basic protein and eosinophil cationic protein.

We examined the bactericidal activity of two proteins that are abundant in the cytoplasmic granules of human eosinophils, major basic protein (MBP) and eosinophil cationic protein (ECP). Unlike the human neutrophil's peptide defensins, both MBP and ECP killed stationary phase Staphylococcus aureus 502A in a simple nutrient-free buffer solution. Although MBP also killed Escherichia coli ML-35 with considerable efficacy under these experimental conditions, the in vitro activity of ECP against E. coli was considerably enhanced if mid-logarithmic phase bacteria replaced stationary phase organisms or if the assay medium was enriched with trypticase soy broth. The antibacterial activity of both eosinophil proteins was modulated by incubation time, protein concentration, temperature and pH. A pBR322-transformed derivative of E. coli ML-35 was used to examine the effects of ECP and MBP on integrity of the bacterial inner membrane (IM) and outer membrane. Although both MBP and ECP caused outer and inner membrane permeabilization when nutrients were present, only MBP was effective under nutrient-free conditions. Two proton ionophores (DNP and carbonyl cyanide m-chlorophenyl hydrazone) protected E. coli from the bactericidal effects of ECP but not from MBP. These findings establish that MBP and ECP have bactericidal properties and suggest that these proteins kill E. coli by similar but nonidentical mechanisms marked by an attack on the target cell's membranes. In view of evidence that high concentrations of ECP and MBP exist in cytoplasmic granules whose contents are translocated to phagocytic vacuoles, we suggest that MBP and ECP contribute to the eosinophil's ability to kill ingested bacteria.

Blood Bactericidal Activity↗

Assignment of defensin gene(s) to human chromosome 8p23.

A relatively abundant component of the polymorphonuclear leukocyte granulocytes has been recently isolated and called defensin. Defensins have antimicrobial activity against gram-positive and gram-negative bacteria and enveloped viruses. A cDNA insert for defensin HNP-1 (DEF1) has been used to map the gene(s) to human chromosome 8p23 using a mouse/human somatic cell hybrid panel and in situ hybridization to normal human metaphase chromosomes. Because of the similarity of HNP-1 defensin to other defensins, it is likely that two of these genes map to this region.

Animals↗

The opsonizing ligand on Salmonella typhimurium influences incorporation of specific, but not azurophil, granule constituents into neutrophil phagosomes.

Phagosomes were purified from human neutrophils ingesting Salmonella typhimurium opsonized with adsorbed normal human serum or with rabbit IgG. Constituents within the phagosome were endogenously labeled by supplying the cells with 125INa during phagocytosis. Lactoferrin and vitamin B12 binding protein (TC1 and TC3), markers for specific granules, were present in the phagosomes from neutrophils ingesting S. typhimurium opsonized with IgG but were 3.5- to 5-fold less prominent in phagosomes from cells phagocytosing Salmonella bearing C3 fragments only. In contrast, iodinated azurophilic granule components, most prominently defensins, were the major constituents in phagosomes prepared under both opsonization conditions. Furthermore, labeled complement (CR1 and CR3) and immunoglobulin (Fc gamma RIII) receptors were incorporated in the phagosome regardless of the ligand mediating phagocytosis. These results suggest that the ligand-receptor interactions mediating phagocytosis influence incorporation of neutrophil-specific granule contents into phagosomes.

Animals↗

Purification and antimicrobial properties of three defensins from rat neutrophils.

Three cysteine-rich cationic peptides, designated RatNP-1, RatNP-3, and RatNP-4, were purified from an acid extract of rat polymorphonuclear neutrophils, sequenced, and tested for antimicrobial activity. The peptides ranged from 29 to 32 amino acids in length (Mr, 3,252 to 3,825), and each contained all eight invariantly conserved "framework" residues that are characteristic of defensins. Each of the peptides killed Escherichia coli ML-35, Acinetobacter calcoaceticus HON-1, Staphylococcus aureus 502A, and Candida albicans 820 in vitro. RatNP-1, the most cationic rat defensin, was also the most potent. With this report, a total of 13 distinct defensins have been characterized in the polymorphonuclear leukocytes of four mammalian species. The existence of the defensin system in rats should facilitate investigations of the in vivo role of defensins in experimental infections.

Amino Acid Sequence↗

Interaction of human defensins with Escherichia coli. Mechanism of bactericidal activity.

Defensins are small, cysteine-rich antimicrobial peptides that are abundant in human, rabbit, and guinea pig neutrophils (PMN). Three defensins (human neutrophil peptide defensin [HNP]-1, HNP-2, and HNP-3) constitute between 30 and 50% of the total protein in azurophil granules of human PMN. We examined the mechanism of HNP-mediated bactericidal activity against Escherichia coli ML-35 (i-, y-, z+) and its pBR322-transformed derivative, E. coli ML-35p. Under conditions that supported bactericidal activity, HNP-1 sequentially permeabilized the outer membrane (OM) and inner membrane (IM) of E. coli. Coincident with these events, bacterial synthesis of DNA, RNA, and protein ceased and the colony count fell. Although these events were closely coupled under standard assay conditions, OM permeabilization was partially dissociated from IM permeabilization when experiments were performed with E. coli that had been plasmolyzed by mannitol. Under such conditions, the rate and extent of bacterial death more closely paralled loss of IM integrity than OM permeabilization. Electron microscopy of E. coli that had been killed by defensins revealed the presence of striking electron-dense deposits in the periplasmic space and affixed to the OM. Overall, these studies show that HNP-mediated bactericidal activity against E. coli ML-35 is associated with sequential permeabilization of the OM and IM, and that inner membrane permeabilization appears to be the lethal event.

Blood Bactericidal Activity↗

Monocyte-chemotactic activity of defensins from human neutrophils.

We investigated the monocyte-chemotactic activity of fractionated extracts of human neutrophil granules. Monocyte-chemotactic activity was found predominantly in the defensin-containing fraction of the neutrophil granules. Purified preparations of each of the three human defensins (HNP-1, HNP-2, HNP-3) were then tested. HNP-1 demonstrated significant chemotactic activity for monocytes: Peak activity was seen at HNP-1 concentrations of 5 X 10(-9) M and was 49 +/- 20% (mean +/- SE, n = 9) of that elicited by 10(-8) M FMLP. HNP-2 (peak activity at 5 X 10(-9) M) was somewhat less active, yielding 19 +/- 10% (n = 11). HNP-3 failed to demonstrate chemotactic activity. Checkerboard analysis of monocyte response to HNP-1 and HNP-2 confirmed that their activity was chemotactic rather than chemokinetic. Neutrophils demonstrated a low level of response to defensins but this reaction was primarily chemokinetic. Defensins may play a role in the recruitment of monocytes by neutrophils into inflammatory sites.

Blood Proteins↗

The utility of detecting of autoantibodies against neutrophil cytoplasmic components in Wegener's granulomatosis.

Establishing the diagnosis of Wegener's granulomatosis (WG) can be very difficult, especially early in the disease or in limited forms of this illness where renal and/or pulmonary involvement does not occur. Recent reports have suggested that tests to measure levels of antineutrophil cytoplasmic antibodies (ANCA) are useful in the diagnosis and management of WG. We developed an enzyme-linked immunoassay (ELISA) utilizing neutrophil granules and their fractions to detect such antibodies. We identified the major antigen in patients with WG as contained in a protein peak of 25-30,000 molecular weight. ELISA testing of patient, normal control, and disease control sera showed that the ELISA test suffered from a lack of specificity. It detected positive results in 19 of 49 disease control sera that were primarily from patients with diseases such as lupus erythematosus. Visual examination, by indirect immunofluorescence using patients' sera to stain normal fixed neutrophils, identified the coursely speckled (granule associated) WG binding pattern in seven of eight WG patients and this was distinguishable from the pattern of binding in non-WG sera. While the techniques such as the ELISA and flow cytometry are useful in identifying sera with antineutrophil cytoplasmic antibodies, positive sera should still be examined by visual fluorescence microscopy when entertaining the diagnosis of WG. Under these circumstances, tests for ANCA will be very useful in the diagnosis and management of WG.

Autoantibodies↗

Neutrophils and host defense.

Neutrophils, the predominant phagocytes of circulating blood, are the first cells to arrive at sites of infection. Although neutropenia has long been recognized to predispose to infection, recently other syndromes marked by frequent infections have been shown to be caused by an underlying neutrophil dysfunction. Efforts to define the molecular pathology of such disorders have helped delineate the molecular basis of normal neutrophil function. Advances have been made in defining the roles of the neutrophil's varied receptors in recognition, movement, and adhesive phenomena. Progress in establishing the pathogenesis of chronic granulomatous disease has provided important insights into the enzymatic machinery that normal neutrophils use to produce antimicrobial oxidants. The identification and precise characterization of antimicrobial components, such as defensins, have outlined the potential roles of "natural antibiotics" in neutrophil-mediated host-defense functions. These areas of neutrophil function will be reviewed and placed in a clinical context to guide physicians in evaluating children and adults with frequent or unusual infections.

Blood Bactericidal Activity↗

Mechanism of target cytolysis by peptide defensins. Target cell metabolic activities, possibly involving endocytosis, are crucial for expression of cytotoxicity.

In a previous study, potent tumor cytolysis mediated by human neutrophil peptide defensins occurred slowly over 3 to 15 h. Because these kinetics suggested a requirement for target cell metabolic processes before tumor killing could be realized, the mechanism of lysis by these purified peptides was further investigated. 125I-labeled defensin bound extensively to peptide-sensitive K562 targets with biphasic kinetics. Binding was inhibited in parallel with cytotoxicity when both assays were performed at low temperature or in the presence of FCS. The albumin content of serum could account for the inhibitory effects of FCS. Cytotoxicity was also antagonized by agents that interfered with target cell energy metabolism (azide and 2-deoxyglucose), the cytoskeletal apparatus (cytochalasin B and dihydrocytochalasin B), lysosomal function (NH4Cl and chloraquin), or calmodulin-mediated activities (trifluoperazine). FCS also completely removed membrane-bound defensin when it was added after 5 min of binding at 37 degrees C. However, significantly less defensin was removed when FCS was added at later time points after binding was initiated. Cytochalasin B and azide/2-deoxyglucose did not prevent binding of defensin to targets but it significantly inhibited the development of FCS resistance in membrane-bound peptide. However, these two classes of inhibitors acted during distinct time windows: cytochalasin-sensitive events were complete by 1 h, whereas azide/2-deoxyglucose continued to be inhibitory when added as late as 2 h after defensins. These latter data indicated that critical energy-dependent events continue after the cytochalasin-sensitive phase has been completed. The results suggest that defensin-mediated cytotoxicity requires initial binding of defensin molecules to targets and subsequent cytoskeletal- and energy-dependent translocation or internalization. Although the defensins are low m.w. peptides, the initial processes required for their cytotoxic activity resemble those of more complex bacterial, plant and mammalian cytotoxins.

Animals↗

Concurrent assessment of inner and outer membrane permeabilization and bacteriolysis in E. coli by multiple-wavelength spectrophotometry.

We developed a dual wavelength spectrophotometric assay that permitted beta-lactamase and beta-galactosidase activities to be measured concurrently in a single sample. We also constructed a target cell, E. coli ML-35p, that was substantially cryptic for its periplasmic beta-lactamase and cytoplasmic beta-galactosidase unless outer membrane (beta-lactamase) or inner membrane (beta-galactosidase) permeabilization occurred. By applying the spectrophotometric assay to whole target cells, we could ascertain the kinetics of inner and outer membrane permeabilization by biological agents, including serum, polymyxin B and mellitin. By monitoring the reactions at an additional wavelength, we could also follow the kinetics of serum-mediated bacteriolysis. These experiments illustrate the principle of multiple wavelength spectrophotometry and provide examples of its use to monitor and dissect the action of biological agents on a gram-negative bacterium.

Bacteriolysis↗

Inhibition of protein kinase C by defensins, antibiotic peptides from human neutrophils.

Defensins, human neutrophil peptide (HNP) antibiotics, potently inhibited phospholipid/Ca2+ protein kinase (protein kinase C, PKC) and phosphorylation of endogenous proteins from rat brains catalyzed by the enzyme. Of the three defensin peptides, HNP-2 appeared to be more potent than HNP-1 and HNP-3. Kinetic studies indicated that defensins inhibited PKC noncompetitively with respect to phosphatidylserine (a phospholipid cofactor), Ca2+ (an activator), ATP (a phosphoryl donor) and histone H1 (a substrate protein) with Ki values ranging from 1.2 to 1.7 microM. Defensins, unlike polymyxin B (another peptide inhibitor of PKC), did not inhibit the binding of [3H]phorbol 12,13-dibutyrate to PKC; however, defensins, like polymyxin B, inhibited the PKC activity stimulated by 12-O-tetradecanoylphorbol-13-acetate. Defensins had little or no effect on myosin light chain kinase (a calmodulin/Ca2+-dependent protein kinase) and the holoenzyme or catalytic subunit of cyclic AMP-dependent protein kinase, indicating a specificity of action of defensins. It is suggested that defensins, among the most potent peptide inhibitors of PKC so far identified, may have profound effects on functions of neutrophils and other mammalian cells, in addition to their well-recognized antimicrobial activities.

Animals↗

Synergistic cytolysis mediated by hydrogen peroxide combined with peptide defensins.

Possible cytolytic interactions between hydrogen peroxide (H2O2) and neutrophil granule proteins were studied. Preliminary experiments demonstrated synergistic cytolysis when erythro-leukemia targets were exposed to H2O2 combined with a low molecular weight (approximately 3900) granule extract that was predominantly composed of peptide defensins. The synergistic interaction was confirmed when sublytic concentrations of H2O2 were combined with defensin preparations that had been purified to homogeneity. Synergy was concentration dependent in regard to both molecules and could not be explained by trace contamination of defensin preparations with myeloperoxidase. Sequential addition experiments suggested that synergistic lysis required a simultaneous exposure to both cytotoxins. In the presence of sublytic concentrations of H2O2, the binding of iodinated defensin to targets was significantly increased, providing a possible explanation for the observed synergy. Since both molecules are concurrently secreted by activated neutrophils, this interaction may be important during leukocyte-mediated anti-tumor effects or inflammatory tissue injury.

Blood Proteins↗

Isolation and characterization of human defensin cDNA clones.

Four clones that encode defensins, a group of microbicidal and cytotoxic peptides made by neutrophils, were isolated from an HL-60 human promyelocytic leukemia cDNA library. Analysis of these clones indicated that the defensins are made as precursor proteins, which must be cleaved to yield the mature peptides. Defensin mRNA was detected in normal bone marrow cells, but not in normal peripheral blood leukocytes. Defensin transcripts were also found in the peripheral leukocytes of some leukemia patients and in some lung and intestine tissues. Defensin mRNA content was augmented by treatment of HL-60 cells with dimethyl sulfoxide. These results define important aspects of the mechanism of synthesis and the tissue-specific expression of a major group of neutrophil granule proteins.

Amino Acid Sequence↗