M cell targeting by lectins: a strategy for mucosal vaccination and drug delivery.
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B. Hirst | M. Jepson | M. Clark | M A Jepson | B. H. Hirst | M. Clark
[1] R. Houghten,et al. Toward Targeted Oral Vaccine Delivery Systems: Selection of Lectin Mimetics from Combinatorial Libraries , 2003, Pharmaceutical Research.
[2] C. Czerkinsky,et al. Mucosal immunisation and adjuvants: a brief overview of recent advances and challenges. , 2003, Vaccine.
[3] H. Kitagawa,et al. The cellular differentiation of M cells from crypt undifferentiated epithelial cells into microvillous epithelial cells in follicle-associated epithelia of chicken cecal tonsils. , 2003, The Journal of veterinary medical science.
[4] G. Dougan,et al. Salmonella typhi and S typhimurium derivatives harbouring deletions in aromatic biosynthesis and Salmonella Pathogenicity Island-2 (SPI-2) genes as vaccines and vectors. , 2003, Vaccine.
[5] M. Levine,et al. Animal models paving the way for clinical trials of attenuated Salmonella enterica serovar Typhi live oral vaccines and live vectors. , 2003, Vaccine.
[6] A. Cripps,et al. Validation and quantitation of an in vitro M-cell model. , 2002, Biochemical and biophysical research communications.
[7] David J Brayden,et al. Catching target receptors for drug and vaccine delivery using TOGA gene expression profiling. , 2002, Advanced drug delivery reviews.
[8] D. Meyerholz,et al. Early Epithelial Invasion by Salmonella enterica Serovar Typhimurium DT104 in the Swine Ileum , 2002, Veterinary pathology.
[9] N. Mantis,et al. Selective Adherence of IgA to Murine Peyer’s Patch M Cells: Evidence for a Novel IgA Receptor1 , 2002, The Journal of Immunology.
[10] S. Clare,et al. Vaccines against human enteric bacterial pathogens. , 2002, British medical bulletin.
[11] A. Kahn,et al. Lymphoepithelial Interactions Trigger Specific Regulation of Gene Expression in the M Cell-Containing Follicle-Associated Epithelium of Peyer’s Patches1 , 2002, The Journal of Immunology.
[12] M. Neutra,et al. Antigen Delivery to Mucosa-Associated Lymphoid Tissues Using Liposomes as a Carrier , 2002, Bioscience reports.
[13] H. Iwatsuki,et al. Vimentin-positive cells in the villus epithelium of the rabbit small intestine , 2002, Histochemistry and Cell Biology.
[14] J. Sirard,et al. How the gut senses its content , 2002, Cellular microbiology.
[15] H. Junginger,et al. Transport of Chitosan Microparticles for Mucosal Vaccine Delivery in a Human Intestinal M-cell Model , 2002, Journal of drug targeting.
[16] Y. Fujimura,et al. A new marker for cup cells in the rabbit small intestine: expression of vimentin intermediate filament protein , 2001, Medical Electron Microscopy.
[17] M. Jepson,et al. The role of M cells in Salmonella infection. , 2001, Microbes and infection.
[18] David J Brayden,et al. Targeting polymerised liposome vaccine carriers to intestinal M cells. , 2001, Vaccine.
[19] J. R. Coleman,et al. Permeability measurement of macromolecules and assessment of mucosal antigen sampling using in vitro converted M cells. , 2001, Journal of pharmacological and toxicological methods.
[20] B. Hirst,et al. Exploiting M cells for drug and vaccine delivery. , 2001, Advanced drug delivery reviews.
[21] N. Walters,et al. M cell-targeted DNA vaccination , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[22] H. Reggio,et al. Rabbit M cells and dome enterocytes are distinct cell lineages. , 2001, Journal of cell science.
[23] P. Matzinger,et al. The Role of Dendritic Cells, B Cells, and M Cells in Gut-Oriented Immune Responses , 2001, The Journal of Immunology.
[24] J. Browning,et al. Effect of mature lymphocytes and lymphotoxin on the development of the follicle-associated epithelium and M cells in mouse Peyer's patches. , 2001, Gastroenterology.
[25] J. Mcghee,et al. Peyer's patches are required for oral tolerance to proteins , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[26] G. Dougan,et al. Salmonella: immune responses and vaccines. , 2001, Veterinary journal.
[27] P. Mangeat,et al. Glycocalyx on Rabbit Intestinal M Cells Displays Carbohydrate Epitopes from Muc2 , 2001, Infection and Immunity.
[28] David J Brayden,et al. Expression of specific markers and particle transport in a new human intestinal M-cell model. , 2000, Biochemical and biophysical research communications.
[29] C. Nicoletti,et al. Unsolved mysteries of intestinal M cells , 2000, Gut.
[30] B. Hirst,et al. Differential cytokeratin and glycoconjugate expression by the surface and crypt epithelia of human palatine tonsils , 2000, Histochemistry and Cell Biology.
[31] B. Hirst,et al. Lectin-mediated mucosal delivery of drugs and microparticles. , 2000, Advanced drug delivery reviews.
[32] J. Kraehenbuhl,et al. Molecular studies of the intestinal mucosal barrier physiopathology using cocultures of epithelial and immune cells: a technical update. , 2000, Microbes and infection.
[33] N. Mantis,et al. Accessibility of glycolipid and oligosaccharide epitopes on rabbit villus and follicle-associated epithelium. , 2000, American journal of physiology. Gastrointestinal and liver physiology.
[34] E. Albina,et al. Ex vivo and in situ PLGA microspheres uptake by pig ileal Peyer's patch segment. , 2000, International journal of pharmaceutics.
[35] I. Autenrieth,et al. Translocation of Yersinia enterocolitica across reconstituted intestinal epithelial monolayers is triggered by Yersinia invasin binding to β1 integrins apically expressed on M‐like cells , 2000, Cellular microbiology.
[36] K. Doi,et al. Ultrastructural study on the follicle‐associated epithelium of nasal‐associated lymphoid tissue in specific pathogen‐free (SPF) and conventional environment‐adapted (SPF‐CV) rats , 2000, Journal of anatomy.
[37] Florence Niedergang and Jean-Pierre. Much ado about M cells. , 2000 .
[38] T. Ushiki,et al. The presence of specialized epithelial cells on the bronchus-associated lymphoid tissue (BALT) in the mouse. , 2000, Archives of histology and cytology.
[39] M. Wirth,et al. Lectin-Mediated Bioadhesion: Preparation, Stability and Caco-2 Binding of Wheat Germ Agglutinin-Functionalized Poly(D,L-lactic-co-glycolic acid)-Microspheres , 2000, Journal of drug targeting.
[40] A. Chervonsky,et al. Organogenic role of B lymphocytes in mucosal immunity. , 1999, Science.
[41] G. Russell-Jones,et al. Lectin-mediated transport of nanoparticles across Caco-2 and OK cells. , 1999, International journal of pharmaceutics.
[42] M. Taussig,et al. Rapid appearance of M cells after microbial challenge is restricted at the periphery of the follicle-associated epithelium of Peyer's patch. , 1999, Laboratory investigation; a journal of technical methods and pathology.
[43] S. Falkow,et al. Extraintestinal dissemination of Salmonella by CD18-expressing phagocytes , 1999, Nature.
[44] A. Florence,et al. Studies on the uptake of tomato lectin nanoparticles in everted gut sacs. , 1999, International journal of pharmaceutics.
[45] J. Kraehenbuhl,et al. Development of Peyer's patches, follicle-associated epithelium and M cell: lessons from immunodeficient and knockout mice. , 1999, Seminars in immunology.
[46] N. Mantis,et al. The composition and function of M cell apical membranes: implications for microbial pathogenesis. , 1999, Seminars in immunology.
[47] P. Sansonetti,et al. M cells as ports of entry for enteroinvasive pathogens: mechanisms of interaction, consequences for the disease process. , 1999, Seminars in immunology.
[48] D. Kaiserlian,et al. Entry sites for oral vaccines and drugs: A role for M cells, enterocytes and dendritic cells? , 1999, Seminars in immunology.
[49] S. Kernéis,et al. Plasticity of the gastrointestinal epithelium: the M cell paradigm and opportunism of pathogenic microorganisms. , 1999, Seminars in immunology.
[50] A. Gebert,et al. M cells at locations outside the gut. , 1999, Seminars in immunology.
[51] A. Gebert,et al. The development of M cells in Peyer's patches is restricted to specialized dome-associated crypts. , 1999, The American journal of pathology.
[52] M. Neutra. Interactions of viruses and microparticles with apical plasma membranes of M cells: implications for human immunodeficiency virus transmission. , 1999, The Journal of infectious diseases.
[53] M. Taussig,et al. Up-regulation of Microsphere Transport across the Follicle-associated Epithelium of Peyer's Patch by Exposure to Streptococcus Pneumoniae R36a , 2022 .
[54] G. Lemay,et al. A glycosyl hydrolase activity of mammalian reovirus sigma1 protein can contribute to viral infection through a mucus layer. , 1999, Journal of molecular biology.
[55] M. Neutra,et al. Human Intestinal M Cells Display the Sialyl Lewis A Antigen , 1999, Infection and Immunity.
[56] D. Cremaschi,et al. Identification of particular epithelial areas and cells that transport polypeptide-coated nanoparticles in the nasal respiratory mucosa of the rabbit. , 1999, Biochimica et biophysica acta.
[57] D. Cremaschi,et al. Different kinds of polypeptides and polypeptide-coated nanoparticles are accepted by the selective transcytosis shown in the rabbit nasal mucosa. , 1999, Biochimica et biophysica acta.
[58] P. Mangeat,et al. Mucin-Related Epitopes Distinguish M Cells and Enterocytes in Rabbit Appendix and Peyer’s Patches , 1999, Infection and Immunity.
[59] Smith,et al. Physiological considerations in the design of particulate dosage forms for oral vaccine delivery. , 1998, Advanced drug delivery reviews.
[60] Chen,et al. Oral particulate delivery: status and future trends. , 1998, Advanced drug delivery reviews.
[61] Ermak,et al. Microparticle targeting to M cells. , 1998, Advanced drug delivery reviews.
[62] M. Jepson,et al. Studying M cells and their role in infection. , 1998, Trends in microbiology.
[63] A. Whyte,et al. Immunology of the tonsils. , 1998, Immunology today.
[64] R. Andino,et al. Poliovirus vaccine vectors elicit antigen-specific cytotoxic T cells and protect mice against lethal challenge with malignant melanoma cells expressing a model antigen. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[65] Michael Wirth,et al. Lectin-Mediated Drug Targeting: Preparation, Binding Characteristics, and Antiproliferative Activity of Wheat Germ Agglutinin Conjugated Doxorubicin on Caco-2 Cells , 1998, Pharmaceutical Research.
[66] A. Gebert,et al. Kinetics of particle uptake in the domes of Peyer's patches. , 1998, American journal of physiology. Gastrointestinal and liver physiology.
[67] David J Brayden,et al. Binding and uptake of biodegradable poly-DL-lactide micro- and nanoparticles in intestinal epithelia. , 1998, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[68] B. Hirst,et al. M-Cell Surface β1 Integrin Expression and Invasin-Mediated Targeting of Yersinia pseudotuberculosis to Mouse Peyer’s Patch M Cells , 1998, Infection and Immunity.
[69] B. Hirst,et al. Ulex europaeus 1 lectin targets microspheres to mouse Peyer's patch M-cells in vivo. , 1998, Vaccine.
[70] M. Alonso,et al. Stealth PLA-PEG Nanoparticles as Protein Carriers for Nasal Administration , 1998, Pharmaceutical Research.
[71] A. Gebert. The role of M cells in the protection of mucosal membranes , 1997, Histochemistry and Cell Biology.
[72] T. Monath,et al. Targeted delivery of antigen to hamster nasal lymphoid tissue with M-cell-directed lectins , 1997, Infection and immunity.
[73] A. Gebert,et al. Glycoconjugate Expression Defines the Origin and Differentiation Pathway of Intestinal M-cells , 1997, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[74] J. Kraehenbuhl,et al. Conversion by Peyer's patch lymphocytes of human enterocytes into M cells that transport bacteria. , 1997, Science.
[75] R. Isberg,et al. Invasin-dependent and invasin-independent pathways for translocation of Yersinia pseudotuberculosis across the Peyer's patch intestinal epithelium , 1997, Infection and immunity.
[76] A. Bernkop‐Schnürch,et al. Bioadhesion to the intestine by means of E. coli K99-fimbriae: , 1997 .
[77] Alexander T. Florence,et al. Enhanced Oral Uptake of Tomato Lectin-Conjugated Nanoparticles in the Rat , 1997, Pharmaceutical Research.
[78] Robert Langer,et al. Magnetically-Responsive Polymerized Liposomes as Potential Oral Delivery Vehicles , 1997, Pharmaceutical Research.
[79] Alexander T. Florence,et al. The Oral Absorption of Micro- and Nanoparticulates: Neither Exceptional Nor Unusual , 1997, Pharmaceutical Research.
[80] M. Neutra,et al. Targeting of mucosal vaccines to Peyer's patch M cells. , 1997, Behring Institute Mitteilungen.
[81] Gordon L. Amidon,et al. Gastrointestinal Uptake of Biodegradable Microparticles: Effect of Particle Size , 1996, Pharmaceutical Research.
[82] R. Langer,et al. Polymerized liposomes as potential oral vaccine carriers: Stability and bioavailability , 1996 .
[83] J. Benoit,et al. Intestinal absorption of PLAGA microspheres in the rat. , 1996, Journal of anatomy.
[84] O'Hagan Dt,et al. THE INTESTINAL UPTAKE OF PARTICLES AND THE IMPLICATIONS FOR DRUG AND ANTIGEN DELIVERY , 1996 .
[85] B. Hirst,et al. Targeting to intestinal M cells. , 1996, Journal of anatomy.
[86] R Weltzin,et al. Role of the glycocalyx in regulating access of microparticles to apical plasma membranes of intestinal epithelial cells: implications for microbial attachment and oral vaccine targeting , 1996, The Journal of experimental medicine.
[87] A. Gebert. M-cells in the rabbit tonsil exhibit distinctive glycoconjugates in their apical membranes. , 1996, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[88] P. Sansonetti,et al. Infection of rabbit Peyer's patches by Shigella flexneri: effect of adhesive or invasive bacterial phenotypes on follicle-associated epithelium , 1996, Infection and immunity.
[89] U. Schumacher,et al. Lectin binding reveals divergent carbohydrate expression in human and mouse Peyer's patches , 1996, Histochemistry and Cell Biology.
[90] Robert Langer,et al. Lectin-bearing Polymerized Liposomes as Potential Oral Vaccine Carriers , 1996, Pharmaceutical Research.
[91] R. Andino,et al. Poliovirus recombinants expressing hepatitis B virus antigens elicited a humoral immune response in susceptible mice. , 1996, Virology.
[92] F. Heffron,et al. The lpf fimbrial operon mediates adhesion of Salmonella typhimurium to murine Peyer's patches. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[93] B. Hirst,et al. Selective binding and transcytosis of Ulex europaeus 1 lectin by mouse Peyer's patch M-cells in vivo , 1995, Cell and Tissue Research.
[94] S. Falkow,et al. Host restriction phenotypes of Salmonella typhi and Salmonella gallinarum , 1995, Infection and immunity.
[95] A. Gebert. Identification of M-cells in the rabbit tonsil by vimentin immunohistochemistry and in vivo protein transport , 1995, Histochemistry and Cell Biology.
[96] D. Cremaschi,et al. Selective transport of microparticles across Peyer's patch follicle‐associated M cells from mice and rats , 1995, Experimental physiology.
[97] B. Hirst,et al. Lectin binding defines and differentiates M-cells in mouse small intestine and caecum , 1995, Histochemistry and Cell Biology.
[98] J. Pappo,et al. Uptake and transport of copolymer biodegradable microspheres by rabbit Peyer's patch M cells , 1995, Cell and Tissue Research.
[99] J. Gordon,et al. Regional differences in glycoconjugates of intestinal M cells in mice: potential targets for mucosal vaccines. , 1994, The American journal of physiology.
[100] G. Wilson,et al. Proteolytic processing of reovirus is required for adherence to intestinal M cells , 1994, Journal of virology.
[101] R. Andino,et al. Engineering poliovirus as a vaccine vector for the expression of diverse antigens. , 1994, Science.
[102] J. Irache,et al. In vitro study of lectin-latex conjugates for specific bioadhesion , 1994 .
[103] S. Falkow,et al. Salmonella typhimurium initiates murine infection by penetrating and destroying the specialized epithelial M cells of the Peyer's patches , 1994, The Journal of experimental medicine.
[104] B. Hirst,et al. Differential expression of lectin-binding sites defines mouse intestinal M-cells. , 1993, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[105] Y. Aramaki,et al. Stability of Liposomes in Vitro and Their Uptake by Rat Peyer's Patches Following Oral Administration , 1993, Pharmaceutical Research.
[106] N. Sharon,et al. Lectin-carbohydrate complexes of plants and animals: an atomic view. , 1993, Trends in biochemical sciences.
[107] Y. Aramaki,et al. Uptake of Phosphatidylserine Liposomes by Rat Peyer's Patches Following Intraluminal Administration , 1993, Pharmaceutical Research.
[108] J. Beaulieu. Differential expression of the VLA family of integrins along the crypt-villus axis in the human small intestine. , 1992, Journal of cell science.
[109] Claus-Michael Lehr,et al. Bioadhesion by Means of Specific Binding of Tomato Lectin , 1992, Pharmaceutical Research.
[110] Eldridge,et al. Biodegradable and biocompatible poly(DL-lactide-co-glycolide) microspheres as an adjuvant for staphylococcal enterotoxin B toxoid which enhances the level of toxin-neutralizing antibodies , 1991, Infection and immunity.
[111] P. James,et al. Salmonella-induced M-cell formation in germ-free mouse Peyer's patch tissue. , 1991, The American journal of pathology.
[112] J. Pappo,et al. Monoclonal antibody-directed targeting of fluorescent polystyrene microspheres to Peyer's patch M cells. , 1991, Immunology.
[113] D. Rahman,et al. Biodegradable microparticles as controlled release antigen delivery systems. , 1991, Immunology.
[114] Claus-Michael Lehr,et al. An estimate of turnover time of intestinal mucus gel layer in the rat in situ loop , 1991 .
[115] J. Mcghee,et al. Biodegradable microspheres as a vaccine delivery system. , 1991, Molecular immunology.
[116] A. Florence,et al. Nanoparticle Uptake by the Rat Gastrointestinal Mucosa: Quantitation and Particle Size Dependency , 1990, The Journal of pharmacy and pharmacology.
[117] J. P. Ebel. A Method for Quantifying Particle Absorption from the Small Intestine of the Mouse , 1990, Pharmaceutical Research.
[118] W. Rubas,et al. Incorporation of the reovirus M cell attachment protein into small unilamellar vesicles: incorporation efficiency and binding capability to L929 cells in vitro. , 1990, Journal of microencapsulation.
[119] R. Isberg,et al. Identification of the integrin binding domain of the Yersinia pseudotuberculosis invasin protein. , 1990, The EMBO journal.
[120] R. Isberg,et al. Multiple β 1 chain integrins are receptors for invasin, a protein that promotes bacterial penetration into mammalian cells , 1990, Cell.
[121] G W Halbert,et al. The Uptake and Translocation of Latex Nanospheres and Microspheres after Oral Administration to Rats , 1989, The Journal of pharmacy and pharmacology.
[122] B. Fields,et al. Binding and transepithelial transport of immunoglobulins by intestinal M cells: demonstration using monoclonal IgA antibodies against enteric viral proteins , 1989, The Journal of cell biology.
[123] J. Pappo,et al. Uptake and translocation of fluorescent latex particles by rabbit Peyer's patch follicle epithelium: a quantitative model for M cell uptake. , 1989, Clinical and experimental immunology.
[124] S. Falkow,et al. Identification of invasin: A protein that allows enteric bacteria to penetrate cultured mammalian cells , 1987, Cell.
[125] M. Varvayanis,et al. Development of dome epithelium in gut-associated lymphoid tissues: Association of IgA with M cells , 1987, Cell and Tissue Research.
[126] R. Finberg,et al. Determinants of reovirus interaction with the intestinal M cells and absorptive cells of murine intestine. , 1983, Gastroenterology.
[127] D. Rubin,et al. Intestinal M cells: a pathway for entry of reovirus into the host. , 1981, Science.
[128] G. Volkheimer,et al. The effect of drugs on the rate of persorption. , 1968, Pharmacology.
[129] Alexander T. Florence,et al. Utilizing Bacterial Mechanisms of Epithelial Cell Entry: Invasin-induced Oral Uptake of Latex Nanoparticles , 2004, Pharmaceutical Research.
[130] C. Kuper,et al. Nasal lymphoid tissue in the rat , 2004, Cell and Tissue Research.
[131] M. Jepson,et al. Intestinal M cells and their role in bacterial infection. , 2003, International journal of medical microbiology : IJMM.
[132] J. Kraehenbuhl,et al. Epithelial M cells: differentiation and function. , 2000, Annual review of cell and developmental biology.
[133] Y. Iiboshi,et al. Role of intestinal mucus on the uptake of latex beads by Peyer's patches and on their transport to mesenteric lymph nodes in rats. , 1999, JPEN. Journal of parenteral and enteral nutrition.
[134] K. Uetsuka,et al. Glycoconjugate expression in follicle-associated epithelium (FAE) covering the nasal-associated lymphoid tissue (NALT) in specific pathogen-free and conventional rats. , 1999, Experimental animals.
[135] M. Neutra. M cells in antigen sampling in mucosal tissues. , 1999, Current topics in microbiology and immunology.
[136] E. Morrel,et al. Oral delivery of microencapsulated proteins. , 1997, Pharmaceutical biotechnology.
[137] A. Almeida,et al. Nasal delivery of vaccines. , 1996, Journal of drug targeting.
[138] A. Gebert,et al. M cells in Peyer's patches of the intestine. , 1996, International review of cytology.
[139] B. Finlay,et al. M cells and the pathogenesis of mucosal and systemic infections. , 1996, Trends in microbiology.
[140] B. Hirst,et al. Variations in lectin binding properties of intestinal M cells. , 1995, Journal of drug targeting.
[141] N Hussain,et al. Factors affecting the oral uptake and translocation of polystyrene nanoparticles: histological and analytical evidence. , 1995, Journal of drug targeting.
[142] S. Challacombe,et al. Biodegradable microparticles as oral vaccines. , 1995, Advances in experimental medicine and biology.
[143] J. Kraehenbuhl,et al. Mucosal IgA response to rectally administered antigen formulated in IgA-coated liposomes. , 1995, Vaccine.
[144] B. Hirst,et al. Preferential interaction of Salmonella typhimurium with mouse Peyer's patch M cells. , 1994, Research in microbiology.
[145] A. Almeida,et al. Microsphere absorption by the nasal mucosa of the rat. , 1994, Journal of drug targeting.
[146] R. Walker,et al. New strategies for using mucosal vaccination to achieve more effective immunization. , 1994, Vaccine.
[147] C. Lehr,et al. Bioadhesion technologies for the delivery of peptide and protein drugs to the gastrointestinal tract. , 1994, Critical reviews in therapeutic drug carrier systems.
[148] B. Hirst,et al. Comparison of poly(DL-lactide-co-glycolide) and polystyrene microsphere targeting to intestinal M cells. , 1993, Journal of drug targeting.
[149] Thomas R. Tice,et al. Controlled vaccine release in the gut-associated lymphoid tissues. I. Orally administered biodegradable microspheres target the peyer's patches , 1990 .
[150] S. Michalek,et al. Ultrastructural study of liposome uptake by M cells of rat Peyer's patch: an oral vaccine system for delivery of purified antigen. , 1990, Regional immunology.
[151] J. Warchoł,et al. Poliovirus type 1 enters the human host through intestinal M cells. , 1990, Gastroenterology.
[152] J. Eldridge,et al. Vaccine-containing biodegradable microspheres specifically enter the gut-associated lymphoid tissue following oral administration and induce a disseminated mucosal immune response. , 1989, Advances in experimental medicine and biology.
[153] J. Eldridge,et al. Biodegradable microspheres: vaccine delivery system for oral immunization. , 1989, Current topics in microbiology and immunology.