| Ortega-Barria et al. A novel T. cruzi heparin-binding protein promoters fibroblast adhesion and penetration of engineered bacteria and trypanosomes into mammalian cells, Cell, 67:411-421, Oct. 18, 1991.* |
| Butcher et al. Heparin enhances the interaction Leishmania donovani promastigoteswith mouth peritoneal macrophages . J. Immunol. 14899), pp 2879-2886, May 1 1992.998.* |
| Araujo et al., “In Vitro and In Vivo Activities of the Hydroxynaphthoquinone 556C80 Against the Cyst Form of Toxoplasma gondii,” Antimicrobial Agents Chemotherapy, 36(2):326-330 (Feb., 1992). |
| Araujo et al., “Remarkable In Vitro and In Vivo Activities of the Hydroxynaphthoquinone 566C80 Against Tachyzoites and Tissue Cysts of Toxoplasma gondii,” Antimicrobial Agents Chemotherapy, 35(2):293-299 (Feb., 1991). |
| Butcher et a l., “Heparin Enhances the Interaction of Infective Leishmania donovani Promastigotes with Mouse Peritoneal Macrophages,” J. Immunol., 148(9):2879-2886 (May, 1992). |
| Butcher et al., “Leishmania donovani: Cell-Surface Heparin Receptors of Promastigotes are Recruited from an Internal Pool after Trypsinization,” Experimental Parasitology, 71:49-59 (1990). |
| Eliopoulos and Moellering, “Antimicrobial Combinations”, in Antibiotics in Laboratory Medicine, 3rd ed.., pp. 432-492 (Lorian ed. Baltimore, MD) (1991). |
| Elsbach, “Antibiotics from Within: Antibacterials from Human and Animal Sources,” Trends Biotech., 8(1):26-30 (Jan., 1990). |
| Elsbach and Weiss, “Oxygen-Independent Antimicrobial Systems of Phagocytes,” in Inflammation: Basic Principles and Clinical Correlates, pp. 603-636 (Gallin et al., Eds., Raven Press, Ltd.) (1992). |
| Elsbach and Weiss, “Oxygen-Independent Bacterial Systems of Polymorphonuclear Leukocytes,” in Advances in Inflammation Research, vol. 2, pp. 95-113 (Weissmann ed., Raven Press, Ltd.) (1981). |
| Elsbach et al., “Separation and Purification of a Potent Bacterial/Permeability-Increasing Protein and a Closely Associated Phospholipase A2 from Rabbit Polymorphonuclear Leukocytes,” J. Biol. Chem., 254(21):1100-11009 (Nov., 1979). |
| Gabay, “Ubiquitous Natural Antibodies,” Science, 264:373-374 (Apr., 1994). |
| Gazzano-Santoro et al., “High-Affinity Binding of the Bactericidal/Permeability-Increasing Protein and a Recombinant Amino-Terminal Fragment to the Lipid A Region of Lipopolysaccharide,” Infect. Immun., 60(11):4754-4761 (Nov., 1992). |
| Gray et al., “Cloning of the cDNA of a Human Neutrophil Bactericidal Protein,” J. Biol. Chem., 264(16):9505-9509 (Jun., 1989). |
| Hunter et al., “Cytokine mRNA in the Central Nervous System of SCID Mice Infected with Toxoplasma gondii: Importance of T-Cell-Independent Regulation of Resistance to T. gondii, ” Infect Immun., 61(10):4038-4044 (Oct., 1993). |
| Levy et al., “Antibacterial 15-kDa Protein Isoforms (p15s) are Members of a Novel Family of Leukocyte Proteins,” J. Biol. Chem., 268(8):6058-6068 (Mar., 1993). |
| Mannion et al., “Preferential Binding of the Neutrophil Cytoplasmic Granule-Derived Bactericidal/Permeability Increasing Protein to Target Bacteria,” J. Clin. Invest., 142(8):2807-2812 (Apr., 1989). |
| Mannion et al., “Separation of Sublethal and Lethal Effects of Polymorphonuclear Leukocytes on Escherichia coli,” J. Clin. Invest., 86:631-641 (Aug., 1990). |
| Mannion et al,. “Separation of Sublethal and Lethal Effects of the Bactericidal/Permeability Increasing Protein on Escherichia coli,” J. Clin. Invest. 85:853-8680 (Mar., 1990). |
| Mukhopadhyay et al., “Heparin Binds to Leishmania donovani Promastigotes and Inhibits Protein Phosphorylation,” Biochem. J., 264:517-525 (1989). |
| Ooi et al., “A 24-kDa NH2-terminal Fragment Carries All the Antibacterial Activities of the Human Neutrophil 60-kDa Bactericidal/Permeability-Increasing Protein,” J. Biol. Chem., 262(31):14891-14894 (1987). |
| Ooi et al., “Endotoxin-neutralizing Properties of the 25 kD N-Terminal Fragment and a Newly Isolated 30 kD C-Terminal Fragment of the 55-60 kD Bactericidal/Permeability-Increasing Protein of Human Neutrophils,” J. Exp. Med., 174:649-655 (Sep., 1991). |
| Ooi et al., “Isolation of Two Isoformal of a Novel 15-kDa Protein from Rabbit Polymorphonuclear Leikocytes that Modulate the Antibacterial Actions of Other Leukocyte Proteins,” J. Biol. Chem., 265(26):15956-15962 (Sep., 1990). |
| Ortega-Barria et al., “A Novel T. Cruzi Heparin-Binding Protein Promotes Fibroblast Adhesion and Penetration of Engineered Bacteria and Trypanosomes into Mammalian Cells,” Cell, 67:411-421 (Oct., 1991). |
| Veld et al,. “Effects of the Bactericidal/Permeability-Increasing Protein of Polymorphonuclear Leukocytes on Isolated Bacterial Cytoplasmic Membrane Vesicles,” Infect. Immuno., 56(5):1203-1208 (May, 1988). |
| Weiss and Olsson, “Cellular and Subcellular Localization of the Bactericidal/Permeability-Increasing Protein of Neutrophils,” Blood, 69(2):652-659 (Feb., 1987). |
| Weiss et al., “Human Bactericidal/Permeability-Increasing Protein and a Recombinant NH2-Terminal Fragment Cause Killing of Serum-Resistant Gram-negative Bacteria in Whole Blood and Inhibit Tumor Necrosis Factor Release Induced by the Bacteria,” J. Clin. Invest., 90:1122-1130 (Sep., 1992). |
| Weiss et al., “Resistance of Gram-negative Bacteria to Purified Bactericidal Leukocyte Proteins,” J. Clin. Invest., 65:619-628 (Mar., 1980). |
| Weiss et al., “The Role of Lipopolysaccharides in the Action of the Bactericidal/Permeability-Increasing Protein Neutrophil Protein on the Bacterial Envelope,” J. Immunol., 132(6):3109-3115 (Jun., 1984). |
| Little et al., “Functional Domains of Recombinant Bactericidal/Permeability Increasing Protein (rBPI-23)”, J. Biol. Chem., 269(3):1865-1872 (Jan. 21, 1994). |
| PCT International Preliminary Examination Report for PCT/US95/08624 dated Nov. 7, 1996. |