Microbiol Mol Biol Rev. 1993 June; 57(2): 347-366
Bacterial phospholipases C.
R W Titball
Chemical and Biological Defence Establishment, Porton Down, Salisbury, United Kingdom.
SUMMARY
A variety of pathogenic bacteria produce phospholipases C, and since the discovery in 1944 that a bacterial toxin (Clostridium perfringens alpha-toxin) possessed an enzymatic activity, there has been considerable interest in this class of proteins. Initial speculation that all phospholipases C would have lethal properties has not been substantiated. Most of the characterized enzymes fall into one of four groups of structurally related proteins: the zinc-metallophospholipases C, the sphingomyelinases, the phosphatidylinositol-hydrolyzing enzymes, and the pseudomonad phospholipases C. The zinc-metallophospholipases C have been most intensively studied, and lethal toxins within this group possess an additional domain. The toxic phospholipases C can interact with eukaryotic cell membranes and hydrolyze phosphatidylcholine and sphingomyelin, leading to cell lysis. However, measurement of the cytolytic potential or lethality of phospholipases C may not accurately indicate their roles in the pathogenesis of disease. Subcytolytic concentrations of phospholipase C can perturb host cells by activating the arachidonic acid cascade or protein kinase C. Nonlethal phospholipases C, such as the Listeria monocytogenes PLC-A, appear to enhance the release of the organism from the host cell phagosome. Since some phospholipases C play important roles in the pathogenesis of disease, they could form components of vaccines. A greater understanding of the modes of action and structure-function relationships of phospholipases C will facilitate the interpretation of studies in which these enzymes are used as membrane probes and will enhance the use of these proteins as models for eukaryotic phospholipases C.
Microbiol Mol Biol Rev. 1993 June; 57(2): 347-366
This article has been cited by other articles:
-
Richards, G. R., Herbert, E. E., Park, Y., Goodrich-Blair, H.
(2008). Xenorhabdus nematophila lrhA Is Necessary for Motility, Lipase Activity, Toxin Expression, and Virulence in Manduca sexta Insects. J. Bacteriol.
190: 4870-4879
[Abstract]
[Full Text]
-
Korbsrisate, S., Tomaras, A. P., Damnin, S., Ckumdee, J., Srinon, V., Lengwehasatit, I., Vasil, M. L., Suparak, S.
(2007). Characterization of two distinct phospholipase C enzymes from Burkholderia pseudomallei. Microbiology
153: 1907-1915
[Abstract]
[Full Text]
-
Ramu, Y., Xu, Y., Lu, Z.
(2007). Inhibition of CFTR Cl- channel function caused by enzymatic hydrolysis of sphingomyelin. Proc. Natl. Acad. Sci. USA
104: 6448-6453
[Abstract]
[Full Text]
-
Okino, N., Ito, M.
(2007). Ceramidase Enhances Phospholipase C-induced Hemolysis by Pseudomonas aeruginosa. J. Biol. Chem.
282: 6021-6030
[Abstract]
[Full Text]
-
Felts, R. L., Reilly, T. J., Tanner, J. J.
(2006). Structure of Francisella tularensis AcpA: PROTOTYPE OF A UNIQUE SUPERFAMILY OF ACID PHOSPHATASES AND PHOSPHOLIPASES C. J. Biol. Chem.
281: 30289-30298
[Abstract]
[Full Text]
-
Valeva, A., Hellmann, N., Walev, I., Strand, D., Plate, M., Boukhallouk, F., Brack, A., Hanada, K., Decker, H., Bhakdi, S.
(2006). Evidence That Clustered Phosphocholine Head Groups Serve as Sites for Binding and Assembly of an Oligomeric Protein Pore. J. Biol. Chem.
281: 26014-26021
[Abstract]
[Full Text]
-
Oda, M., Ikari, S., Matsuno, T., Morimune, Y., Nagahama, M., Sakurai, J.
(2006). Signal Transduction Mechanism Involved in Clostridium perfringens Alpha-Toxin-Induced Superoxide Anion Generation in Rabbit Neutrophils.. Infect. Immun.
74: 2876-2886
[Abstract]
[Full Text]
-
Snyder, A., Vasil, A. I., Zajdowicz, S. L., Wilson, Z. R., Vasil, M. L.
(2006). Role of the Pseudomonas aeruginosa PlcH Tat Signal Peptide in Protein Secretion, Transcription, and Cross-Species Tat Secretion System Compatibility.. J. Bacteriol.
188: 1762-1774
[Abstract]
[Full Text]
-
Kong, Y., Cave, M. D., Yang, D., Zhang, L., Marrs, C. F., Foxman, B., Bates, J. H., Wilson, F., Mukasa, L. N., Yang, Z. H.
(2005). Distribution of Insertion- and Deletion-Associated Genetic Polymorphisms among Four Mycobacterium tuberculosis Phospholipase C Genes and Associations with Extrathoracic Tuberculosis: a Population-Based Study. J. Clin. Microbiol.
43: 6048-6053
[Abstract]
[Full Text]
-
Yordanov, M, Dimitrova, P, Patkar, S, Falcocchio, S, Xoxi, E, Saso, L, Ivanovska, N
(2005). Ibogaine reduces organ colonization in murine systemic and gastrointestinal Candida albicans infections. J Med Microbiol
54: 647-653
[Abstract]
[Full Text]
-
Sakurai, J., Nagahama, M., Oda, M.
(2004). Clostridium perfringens Alpha-Toxin: Characterization and Mode of Action. J Biochem
136: 569-574
[Abstract]
[Full Text]
-
Vulevic, J., McCartney, A. L., Gee, J. M., Johnson, I. T., Gibson, G. R.
(2004). Microbial Species Involved in Production of 1,2-sn-Diacylglycerol and Effects of Phosphatidylcholine on Human Fecal Microbiota. Appl. Environ. Microbiol.
70: 5659-5666
[Abstract]
[Full Text]
-
Flieger, A., Rydzewski, K., Banerji, S., Broich, M., Heuner, K.
(2004). Cloning and Characterization of the Gene Encoding the Major Cell-Associated Phospholipase A of Legionella pneumophila, plaB, Exhibiting Hemolytic Activity. Infect. Immun.
72: 2648-2658
[Abstract]
[Full Text]
-
Viana-Niero, C., de Haas, P. E., van Soolingen, D., Leao, S. C.
(2004). Analysis of genetic polymorphisms affecting the four phospholipase C (plc) genes in Mycobacterium tuberculosis complex clinical isolates. Microbiology
150: 967-978
[Abstract]
[Full Text]
-
Ochi, S., Oda, M., Matsuda, H., Ikari, S., Sakurai, J.
(2004). Clostridium perfringens {alpha}-Toxin Activates the Sphingomyelin Metabolism System in Sheep Erythrocytes. J. Biol. Chem.
279: 12181-12189
[Abstract]
[Full Text]
-
Okazaki, N., Osawa, R., Suzuki, R., Nikkawa, T., Whiley, R. A.
(2003). Novel Observation of Hot-Cold-Hot Hemolysis Exhibited by Group B Streptococci. J. Clin. Microbiol.
41: 877-879
[Abstract]
[Full Text]
-
Lee, S. H., Kim, S., Park, S. C., Kim, M. J.
(2002). Cytotoxic Activities of Leptospira interrogans Hemolysin SphH as a Pore-Forming Protein on Mammalian Cells. Infect. Immun.
70: 315-322
[Abstract]
[Full Text]
-
Ochi, S., Miyawaki, T., Matsuda, H., Oda, M., Nagahama, M., Sakurai, J.
(2002). Clostridium perfringens{alpha}-toxin induces rabbit neutrophil adhesion. Microbiology
148: 237-245
[Abstract]
[Full Text]
-
Schoepe, H., Pache, C., Neubauer, A., Potschka, H., Schlapp, T., Wieler, L. H., Baljer, G.
(2001). Naturally Occurring Clostridium perfringens Nontoxic Alpha-Toxin Variant as a Potential Vaccine Candidate against Alpha-Toxin-Associated Diseases. Infect. Immun.
69: 7194-7196
[Abstract]
[Full Text]
-
Gomez, A., Mve-Obiang, A., Vray, B., Rudnicka, W., Shamputa, I. C., Portaels, F., Meyers, W. M., Fonteyne, P.-A., Realini, L.
(2001). Detection of Phospholipase C in Nontuberculous Mycobacteria and Its Possible Role in Hemolytic Activity. J. Clin. Microbiol.
39: 1396-1401
[Abstract]
[Full Text]
-
Parish, T., Stoker, N. G.
(2000). Use of a flexible cassette method to generate a double unmarked Mycobacterium tuberculosis tlyA plcABC mutant by gene replacement. Microbiology
146: 1969-1975
[Abstract]
[Full Text]
-
Ghannoum, M. A.
(2000). Potential Role of Phospholipases in Virulence and Fungal Pathogenesis. Clin. Microbiol. Rev.
13: 122-143
[Abstract]
[Full Text]
-
Korbsrisate, S., Suwanasai, N., Leelaporn, A., Ezaki, T., Kawamura, Y., Sarasombath, S.
(1999). Cloning and Characterization of a Nonhemolytic Phospholipase C Gene from Burkholderia pseudomallei. J. Clin. Microbiol.
37: 3742-3745
[Abstract]
[Full Text]
-
Merino, S., Aguilar, A., Nogueras, M. M., Regue, M., Swift, S., Tomas, J. M.
(1999). Cloning, Sequencing, and Role in Virulence of Two Phospholipases (A1 and C) from Mesophilic Aeromonas sp. Serogroup O:34. Infect. Immun.
67: 4008-4013
[Abstract]
[Full Text]
-
Jepson, M., Howells, A., Bullifent, H. L., Bolgiano, B., Crane, D., Miller, J., Holley, J., Jayasekera, P., Titball, R. W.
(1999). Differences in the Carboxy-Terminal (Putative Phospholipid Binding) Domains of Clostridium perfringens and Clostridium bifermentans Phospholipases C Influence the Hemolytic and Lethal Properties of These Enzymes. Infect. Immun.
67: 3297-3301
[Abstract]
[Full Text]
-
Komori, H., Ichikawa, S., Hirabayashi, Y., Ito, M.
(1999). Regulation of Intracellular Ceramide Content in B16 Melanoma Cells. BIOLOGICAL IMPLICATIONS OF CERAMIDE GLYCOSYLATION. J. Biol. Chem.
274: 8981-8987
[Abstract]
[Full Text]
-
Zuckert, W. R., Marquis, H., Goldfine, H.
(1998). Modulation of Enzymatic Activity and Biological Function of Listeria monocytogenes Broad-Range Phospholipase C by Amino Acid Substitutions and by Replacement with the Bacillus cereus Ortholog. Infect. Immun.
66: 4823-4831
[Abstract]
[Full Text]
-
Flores-Diaz, M., Alape-Giron, A., Titball, R. W., Moos, M., Guillouard, I., Cole, S., Howells, A. M., von Eichel-Streiber, C., Florin, I., Thelestam, M.
(1998). UDP-glucose Deficiency Causes Hypersensitivity to the Cytotoxic Effect of Clostridium perfringens Phospholipase C. J. Biol. Chem.
273: 24433-24438
[Abstract]
[Full Text]
-
Schmiel, D. H., Wagar, E., Karamanou, L., Weeks, D., Miller, V. L.
(1998). Phospholipase A of Yersinia enterocolitica Contributes to Pathogenesis in a Mouse Model. Infect. Immun.
66: 3941-3951
[Abstract]
[Full Text]
-
Pal, S., Datta, A., Nair, G. B., Guhathakurta, B.
(1998). Use of Monoclonal Antibodies To Identify Phospholipase C as the Enterotoxic Factor of the Bifunctional Hemolysin-Phospholipase C Molecule of Vibrio cholerae O139. Infect. Immun.
66: 3974-3977
[Abstract]
[Full Text]
-
Thaler, J.-O., Duvic, B., Givaudan, A., Boemare, N.
(1998). Isolation and Entomotoxic Properties of the Xenorhabdus nematophilus F1 Lecithinase. Appl. Environ. Microbiol.
64: 2367-2373
[Abstract]
[Full Text]
Copyright © 1993 by the American Society for Microbiology. All rights reserved.