Pore-Forming Toxins: Ancient, but Never Really out of Fashion
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Crystal Structure of the Vibrio Cholerae Cytolysin Heptamer Reveals Common Features Among Disparate Pore-Forming Toxins
Crystal structure of the Vibrio cholerae cytolysin heptamer reveals common features among disparate pore-forming toxins Swastik De and Rich Olson1 Department of Molecular Biology and Biochemistry, Wesleyan University, 52 Lawn Avenue, Middletown, CT 06459 Edited* by Pamela J. Bjorkman, California Institute of Technology, Pasadena, CA, and approved March 21, 2011 (received for review November 19, 2010) Pore-forming toxins (PFTs) are potent cytolytic agents secreted are the staphylococcal PFTs, which display weak sequence iden- by pathogenic bacteria that protect microbes against the cell- tity (approximately 15%) but strong structural similarity with mediated immune system (by targeting phagocytic cells), disrupt the VCC core domain (6). Structures exist for the water-soluble epithelial barriers, and liberate materials necessary to sustain bicomponent LukF (7, 8) and LukS (9) toxins as well as the growth and colonization. Produced by gram-positive and gram- homomeric α-hemolysin (α-HL) heptamer (10), which represents negative bacteria alike, PFTs are released as water-soluble mono- the only fully assembled β-PFTcrystal structure determined until meric or dimeric species, bind specifically to target membranes, and now. Distinct in sequence and structure from VCC (and each assemble transmembrane channels leading to cell damage and/or other), but with a similar heptameric stoichiometry, are the ex- lysis. Structural and biophysical analyses of individual steps in tensively studied aerolysin (11) and anthrax toxins (12) produced the assembly -
The Food Poisoning Toxins of Bacillus Cereus
toxins Review The Food Poisoning Toxins of Bacillus cereus Richard Dietrich 1,†, Nadja Jessberger 1,*,†, Monika Ehling-Schulz 2 , Erwin Märtlbauer 1 and Per Einar Granum 3 1 Department of Veterinary Sciences, Faculty of Veterinary Medicine, Ludwig Maximilian University of Munich, Schönleutnerstr. 8, 85764 Oberschleißheim, Germany; [email protected] (R.D.); [email protected] (E.M.) 2 Department of Pathobiology, Functional Microbiology, Institute of Microbiology, University of Veterinary Medicine Vienna, 1210 Vienna, Austria; [email protected] 3 Department of Food Safety and Infection Biology, Faculty of Veterinary Medicine, Norwegian University of Life Sciences, P.O. Box 5003 NMBU, 1432 Ås, Norway; [email protected] * Correspondence: [email protected] † These authors have contributed equally to this work. Abstract: Bacillus cereus is a ubiquitous soil bacterium responsible for two types of food-associated gastrointestinal diseases. While the emetic type, a food intoxication, manifests in nausea and vomiting, food infections with enteropathogenic strains cause diarrhea and abdominal pain. Causative toxins are the cyclic dodecadepsipeptide cereulide, and the proteinaceous enterotoxins hemolysin BL (Hbl), nonhemolytic enterotoxin (Nhe) and cytotoxin K (CytK), respectively. This review covers the current knowledge on distribution and genetic organization of the toxin genes, as well as mechanisms of enterotoxin gene regulation and toxin secretion. In this context, the exceptionally high variability of toxin production between single strains is highlighted. In addition, the mode of action of the pore-forming enterotoxins and their effect on target cells is described in detail. The main focus of this review are the two tripartite enterotoxin complexes Hbl and Nhe, but the latest findings on cereulide and CytK are also presented, as well as methods for toxin detection, and the contribution of further putative virulence factors to the diarrheal disease. -
Rapid and Simultaneous Detection of Ricin, Staphylococcal Enterotoxin B
Analyst PAPER View Article Online View Journal | View Issue Rapid and simultaneous detection of ricin, staphylococcal enterotoxin B and saxitoxin by Cite this: Analyst,2014,139, 5885 chemiluminescence-based microarray immunoassay† a a b b c c A. Szkola, E. M. Linares, S. Worbs, B. G. Dorner, R. Dietrich, E. Martlbauer,¨ R. Niessnera and M. Seidel*a Simultaneous detection of small and large molecules on microarray immunoassays is a challenge that limits some applications in multiplex analysis. This is the case for biosecurity, where fast, cheap and reliable simultaneous detection of proteotoxins and small toxins is needed. Two highly relevant proteotoxins, ricin (60 kDa) and bacterial toxin staphylococcal enterotoxin B (SEB, 30 kDa) and the small phycotoxin saxitoxin (STX, 0.3 kDa) are potential biological warfare agents and require an analytical tool for simultaneous detection. Proteotoxins are successfully detected by sandwich immunoassays, whereas Creative Commons Attribution-NonCommercial 3.0 Unported Licence. competitive immunoassays are more suitable for small toxins (<1 kDa). Based on this need, this work provides a novel and efficient solution based on anti-idiotypic antibodies for small molecules to combine both assay principles on one microarray. The biotoxin measurements are performed on a flow-through chemiluminescence microarray platform MCR3 in 18 minutes. The chemiluminescence signal was Received 18th February 2014 amplified by using a poly-horseradish peroxidase complex (polyHRP), resulting in low detection limits: Accepted 3rd September 2014 2.9 Æ 3.1 mgLÀ1 for ricin, 0.1 Æ 0.1 mgLÀ1 for SEB and 2.3 Æ 1.7 mgLÀ1 for STX. The developed multiplex DOI: 10.1039/c4an00345d system for the three biotoxins is completely novel, relevant in the context of biosecurity and establishes www.rsc.org/analyst the basis for research on anti-idiotypic antibodies for microarray immunoassays. -
Bacillus Anthracis Edema Factor Substrate Specificity: Evidence for New Modes of Action
Toxins 2012, 4, 505-535; doi:10.3390/toxins4070505 OPEN ACCESS toxins ISSN 2072–6651 www.mdpi.com/journal/toxins Review Bacillus anthracis Edema Factor Substrate Specificity: Evidence for New Modes of Action Martin Göttle 1,*, Stefan Dove 2 and Roland Seifert 3 1 Department of Neurology, Emory University School of Medicine, 6302 Woodruff Memorial Research Building, 101 Woodruff Circle, Atlanta, GA 30322, USA 2 Department of Medicinal/Pharmaceutical Chemistry II, University of Regensburg, D-93040 Regensburg, Germany; E-Mail: [email protected] 3 Institute of Pharmacology, Medical School of Hannover, Carl-Neuberg-Str. 1, D-30625 Hannover, Germany; E-Mail: [email protected] * Author to whom correspondence should be addressed; E-Mail: [email protected]; Tel.: +1-404-727-1678; Fax: +1-404-727-3157. Received: 23 April 2012; in revised form: 15 June 2012 / Accepted: 27 June 2012 / Published: 6 July 2012 Abstract: Since the isolation of Bacillus anthracis exotoxins in the 1960s, the detrimental activity of edema factor (EF) was considered as adenylyl cyclase activity only. Yet the catalytic site of EF was recently shown to accomplish cyclization of cytidine 5′-triphosphate, uridine 5′-triphosphate and inosine 5′-triphosphate, in addition to adenosine 5′-triphosphate. This review discusses the broad EF substrate specificity and possible implications of intracellular accumulation of cyclic cytidine 3′:5′-monophosphate, cyclic uridine 3′:5′-monophosphate and cyclic inosine 3′:5′-monophosphate on cellular functions vital for host defense. In particular, cAMP-independent mechanisms of action of EF on host cell signaling via protein kinase A, protein kinase G, phosphodiesterases and CNG channels are discussed. -
The Role of Streptococcal and Staphylococcal Exotoxins and Proteases in Human Necrotizing Soft Tissue Infections
toxins Review The Role of Streptococcal and Staphylococcal Exotoxins and Proteases in Human Necrotizing Soft Tissue Infections Patience Shumba 1, Srikanth Mairpady Shambat 2 and Nikolai Siemens 1,* 1 Center for Functional Genomics of Microbes, Department of Molecular Genetics and Infection Biology, University of Greifswald, D-17489 Greifswald, Germany; [email protected] 2 Division of Infectious Diseases and Hospital Epidemiology, University Hospital Zurich, University of Zurich, CH-8091 Zurich, Switzerland; [email protected] * Correspondence: [email protected]; Tel.: +49-3834-420-5711 Received: 20 May 2019; Accepted: 10 June 2019; Published: 11 June 2019 Abstract: Necrotizing soft tissue infections (NSTIs) are critical clinical conditions characterized by extensive necrosis of any layer of the soft tissue and systemic toxicity. Group A streptococci (GAS) and Staphylococcus aureus are two major pathogens associated with monomicrobial NSTIs. In the tissue environment, both Gram-positive bacteria secrete a variety of molecules, including pore-forming exotoxins, superantigens, and proteases with cytolytic and immunomodulatory functions. The present review summarizes the current knowledge about streptococcal and staphylococcal toxins in NSTIs with a special focus on their contribution to disease progression, tissue pathology, and immune evasion strategies. Keywords: Streptococcus pyogenes; group A streptococcus; Staphylococcus aureus; skin infections; necrotizing soft tissue infections; pore-forming toxins; superantigens; immunomodulatory proteases; immune responses Key Contribution: Group A streptococcal and Staphylococcus aureus toxins manipulate host physiological and immunological responses to promote disease severity and progression. 1. Introduction Necrotizing soft tissue infections (NSTIs) are rare and represent a more severe rapidly progressing form of soft tissue infections that account for significant morbidity and mortality [1]. -
Clostridium Perfringens Enterotoxin: the Toxin Forms Highly Cation-Selective Channels in Lipid Bilayers Roland Benz, Michel Popoff
Clostridium perfringens Enterotoxin: The Toxin Forms Highly Cation-Selective Channels in Lipid Bilayers Roland Benz, Michel Popoff To cite this version: Roland Benz, Michel Popoff. Clostridium perfringens Enterotoxin: The Toxin Forms Highly Cation- Selective Channels in Lipid Bilayers. Toxins, MDPI, 2018, 10 (9), pp.341. 10.3390/toxins10090341. pasteur-02448636 HAL Id: pasteur-02448636 https://hal-pasteur.archives-ouvertes.fr/pasteur-02448636 Submitted on 22 Jan 2020 HAL is a multi-disciplinary open access L’archive ouverte pluridisciplinaire HAL, est archive for the deposit and dissemination of sci- destinée au dépôt et à la diffusion de documents entific research documents, whether they are pub- scientifiques de niveau recherche, publiés ou non, lished or not. The documents may come from émanant des établissements d’enseignement et de teaching and research institutions in France or recherche français ou étrangers, des laboratoires abroad, or from public or private research centers. publics ou privés. Distributed under a Creative Commons Attribution| 4.0 International License toxins Article Clostridium perfringens Enterotoxin: The Toxin Forms Highly Cation-Selective Channels in Lipid Bilayers Roland Benz 1 ID and Michel R. Popoff 2,* 1 Department of Life Sciences and Chemistry, Jacobs University, Campusring 1, 28759 Bremen, Germany; [email protected] 2 Bacterial Toxins, Institut Pasteur, 28 rue du Dr Roux, 75015 Paris, France * Correspondence: [email protected] Received: 30 July 2018; Accepted: 14 August 2018; Published: 22 August 2018 Abstract: One of the numerous toxins produced by Clostridium perfringens is Clostridium perfringens enterotoxin (CPE), a polypeptide with a molecular mass of 35.5 kDa exhibiting three different domains. -
Directed Antigen Delivery As a Vaccine Strategy for an Intracellular Bacterial Pathogen
Directed antigen delivery as a vaccine strategy for an intracellular bacterial pathogen H. G. Archie Bouwer*, Christine Alberti-Segui†, Megan J. Montfort*, Nathan D. Berkowitz†, and Darren E. Higgins†‡ *Immunology Research, Earle A. Chiles Research Institute and Veterans Affairs Medical Center, Portland, OR 97239; and †Department of Microbiology and Molecular Genetics, Harvard Medical School, Boston, MA 02115 Edited by John J. Mekalanos, Harvard Medical School, Boston, MA, and approved February 8, 2006 (received for review October 27, 2005) We have developed a vaccine strategy for generating an attenu- murine infection model. Many facets of pathogenesis and protective ated strain of an intracellular bacterial pathogen that, after uptake immunity to Lm are well characterized. After uptake by APCs, Lm by professional antigen-presenting cells, does not replicate intra- escapes from the phagocytic vacuole into the cytosol, an event cellularly and is readily killed. However, after degradation of the facilitated by a secreted pore-forming cytolysin, listeriolysin O vaccine strain within the phagolysosome, target antigens are (LLO) (8). After escape from the vacuole, Lm replicates freely released into the cytosol for endogenous processing and presen- within the cytosol, allowing bacterial products to access the endog- tation for stimulation of CD8؉ effector T cells. Applying this enous MHC Class I presentation pathway. Consistent with this strategy to the model intracellular pathogen Listeria monocyto- cytosolic replication niche, protective antilisterial immunity de- genes, we show that an intracellular replication-deficient vaccine pends on Lm-specific CD8ϩ effector T cells, with antibody playing strain is cleared rapidly in normal and immunocompromised ani- no significant role (9). -
Biological Toxins Fact Sheet
Work with FACT SHEET Biological Toxins The University of Utah Institutional Biosafety Committee (IBC) reviews registrations for work with, possession of, use of, and transfer of acute biological toxins (mammalian LD50 <100 µg/kg body weight) or toxins that fall under the Federal Select Agent Guidelines, as well as the organisms, both natural and recombinant, which produce these toxins Toxins Requiring IBC Registration Laboratory Practices Guidelines for working with biological toxins can be found The following toxins require registration with the IBC. The list in Appendix I of the Biosafety in Microbiological and is not comprehensive. Any toxin with an LD50 greater than 100 µg/kg body weight, or on the select agent list requires Biomedical Laboratories registration. Principal investigators should confirm whether or (http://www.cdc.gov/biosafety/publications/bmbl5/i not the toxins they propose to work with require IBC ndex.htm). These are summarized below. registration by contacting the OEHS Biosafety Officer at [email protected] or 801-581-6590. Routine operations with dilute toxin solutions are Abrin conducted using Biosafety Level 2 (BSL2) practices and Aflatoxin these must be detailed in the IBC protocol and will be Bacillus anthracis edema factor verified during the inspection by OEHS staff prior to IBC Bacillus anthracis lethal toxin Botulinum neurotoxins approval. BSL2 Inspection checklists can be found here Brevetoxin (http://oehs.utah.edu/research-safety/biosafety/ Cholera toxin biosafety-laboratory-audits). All personnel working with Clostridium difficile toxin biological toxins or accessing a toxin laboratory must be Clostridium perfringens toxins Conotoxins trained in the theory and practice of the toxins to be used, Dendrotoxin (DTX) with special emphasis on the nature of the hazards Diacetoxyscirpenol (DAS) associated with laboratory operations and should be Diphtheria toxin familiar with the signs and symptoms of toxin exposure. -
(12) United States Patent (10) Patent No.: US 8,585,627 B2 Dacey, Jr
US008585627B2 (12) United States Patent (10) Patent No.: US 8,585,627 B2 Dacey, Jr. et al. (45) Date of Patent: Nov. 19, 2013 (54) SYSTEMS, DEVICES, AND METHODS (51) Int. Cl. INCLUDING CATHETERS CONFIGURED TO A6B 9/00 (2006.01) MONITOR BOFILMI FORMATION HAVING (52) U.S. Cl. BOFILMI SPECTRAL INFORMATION USPC ................................... 604/8; 604/6.08; 604/9 CONFIGURED ASA DATASTRUCTURE (58) Field of Classification Search USPC ........................................... 604/6.08, 8, 9, 20 (75) Inventors: Ralph G. Dacey, Jr., St. Louis,MO See application file for complete search history. (US); Roderick A. Hyde, Redmond, WA (US); Muriel Y. Ishikawa, Livermore, CA (US); Jordin T. Kare, Seattle, WA (56) References Cited (US); Eric C. Leuthardt, St. Louis,MO U.S. PATENT DOCUMENTS (US); Nathan P. Myhrvold, Bellevue, WA (US); Dennis J. Rivet, Chesapeake, 3,274.406 A 9/1966 Sommers, Jr. VA (US); Michael A. Smith, Phoenix, 3,825,016 A 7, 1974 Lale et al. AZ (US); Elizabeth A. Sweeney, Seattle, (Continued) WA (US); Clarence T. Tegreene, Bellevue, WA (US); Lowell L. Wood, FOREIGN PATENT DOCUMENTS Jr., Bellevue, WA (US); Victoria Y. H. EP 1614 442 A2 1, 2006 Wood, Livermore, CA (US) WO WO91,06855 A2 5, 1991 (73) Assignee: The Invention Science Fund I, LLC (Continued) (*) Notice: Subject to any disclaimer, the term of this OTHER PUBLICATIONS patent is extended or adjusted under 35 PCT International Search Report; International App. No. PCT/ U.S.C. 154(b) by 291 days. US2010/003088; Apr. 1, 2011; pp. 1-4. (21) Appl. No.: 12/927,294 (Continued) (22) Filed: Nov. -
Targeted Neuronal Cell Ablation in the Drosophila Embryo: Pathfinding by Follower Growth Cones in the Absence of Pioneers
Neuron, Vol. 14, 707-715, April, 1995, Copyright© 1995 by Cell Press Targeted Neuronal Cell Ablation in the Drosophila Embryo: Pathfinding by Follower Growth Cones in the Absence of Pioneers David M. Lin,* Vanessa J. Auld,*t reach their targets in the CNS (Wigglesworth, 1953). The and Corey S. Goodman ability of the initial axons to guide later growth cones has Howard Hughes Medical Institute led to the suggestion that pioneering growth cones might Division of Neurobiology be endowed with special pathfinding abilities. Do subse- Department of Molecular and Cell Biology quent growth cones possess the same pathfinding abili- Life Science Addition, Room 519 ties, or are they different from the pioneers? University of California, Berkeley Ablation experiments in a variety of organisms thus far Berkeley, California 94720 have provided a range of conflicting answers to this ques- tion. In the grasshopper embryo CNS, the G growth cone turns anteriorly along the P axons in the NP fascicle, a Summary pathway formed by the three descending P and the two ascending A axons. Although the A and P axons normally We developed a rapid method that uses diphtheria fasciculate and follow one another, either can pioneer the toxin, the flp recognition target sequences, and the complete pathway on its own. Furthermore, any one of GAL4-UAS activation system, to ablate specific neu- the P axons will suffice, since when any two of them are rons in the Drosophila embryo and to examine the con- ablated the remaining P pioneers the pathway. When the sequences in large numbers of embryos at many time three P axons are ablated, the G growth cone stalls, and points. -
Role of Perforin-2 in Regulating Type I Interferon Signaling
https://www.scientificarchives.com/journal/journal-of-cellular-immunology Journal of Cellular Immunology Review Article Role of Perforin-2 in Regulating Type I Interferon Signaling Gregory V Plano, Noula Shembade* Department of Microbiology and Immunology, Sylvester Comprehensive Cancer Center Miller School of Medicine, University of Miami, Miami, FL 33136, USA *Correspondence should be addressed to Noula Shembade; [email protected] Received date: November 21, 2020, Accepted date: February 02, 2021 Copyright: © 2021 Plano G, et al. This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. Abstract Sepsis is a systemic inflammatory response caused by a harmful host immune reaction that is activated in response to microbial infections. Infection-induced type I interferons (IFNs) play critical roles during septic shock. Type I IFNs initiate their biological effects by binding to their transmembrane interferon receptors and initiating the phosphorylation and activation of tyrosine kinases TYK2 and JAK1, which promote phosphorylation and activation of STAT molecules. Type I IFN-induced activation of JAK/STAT pathways is a complex process and not well understood. Improper regulation of type I IFN responses can lead to the development of infectious and inflammation-related diseases, including septic shock, autoimmune diseases, and inflammatory syndromes. This review is mainly focused on the possible mechanistic roles of the transmembrane Perforin-2 molecule in the regulation of type I IFN- induced signaling. Keywords: JAK/STAT, Interferons, TYK2, STATs, Perforin-2, IFNAR1, IFNAR2 and Signaling Introduction and activator of transcription 2), respectively, under normal physiological conditions [4,5]. -
Biosafety Level 1 and Rdna Training
Biosafety Level 1and rDNA Training Office of Biological Safety Biosafety Level 1 and rDNA Training • Difference between Risk Group and Biosafety Level • NIH and UC policy on recombinant DNA • Work conducted at Biosafety Level 1 • UC Code of Conduct for researchers Biosafety Level 1 and rDNA Training What is the difference between risk group and biosafety level? Risk Groups vs Biosafety Level • Risk Groups: Assigned to infectious organisms by global agencies (NIH, CDC, WHO, etc.) • In US, only assigned to human pathogens (NIH) • Biosafety Level (BSL): How the organisms are managed/contained (increasing levels of protection) Risk Groups vs Biosafety Level • RG1: Not associated with disease in healthy adults (non‐pathogenic E. coli; S. cerevisiae) • RG2: Cause diseases not usually serious and are often treatable (S. aureus; Legionella; Toxoplasma gondii) • RG3: Serious diseases that may be treatable (Y. pestis; B. anthracis; Rickettsia rickettsii; HIV) • RG4: Serious diseases with no treatment/cure (Hemorrhagic fever viruses, e.g., Ebola; no bacteria) Risk Groups vs Biosafety Level • BSL‐1: Usually corresponds to RG1 – Good microbiological technique – No additional safety equipment required for biological work (may still need chemical/radiation protection) – Ability to destroy recombinant organisms (even if they are RG1) Risk Groups vs Biosafety Level • BSL‐2: Same as BSL‐1, PLUS… – Biohazard signs – Protective clothing (lab coat, gloves, eye protection, etc.) – Biosafety cabinet (BSC) for aerosols is recommended but not always required – Negative airflow into room is recommended, but not always required Risk Groups vs Biosafety Level • BSL‐3: Same as BSL‐2, PLUS… – Specialized clothing (respiratory protection, Tyvek, etc.) – Directional air flow is required.