Genomic insights into the evolution and ecology of botulinum neurotoxins
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[1] R. Zarivach,et al. Metalloprotease type III effectors that specifically cleave JNK and NF‐κB , 2011, The EMBO journal.
[2] Eric A. Johnson,et al. The C-terminus of botulinum neurotoxin type A light chain contributes to solubility, catalysis, and stability. , 2004, Protein expression and purification.
[3] Silvio C. E. Tosatto,et al. The N-terminal half of the receptor domain of botulinum neurotoxin A binds to microdomains of the plasma membrane. , 2009, Biochemical and biophysical research communications.
[4] J. Payne,et al. A Summer Carrion Study of the Baby Pig Sus Scrofa Linnaeus , 1965 .
[5] M. Karin,et al. The stress-induced MAP kinase p38 regulates endocytic trafficking via the GDI:Rab5 complex. , 2001, Molecular cell.
[6] M. Allard,et al. Closed Genome Sequence of Chryseobacterium piperi Strain CTMT/ATCC BAA-1782, a Gram-Negative Bacterium with Clostridial Neurotoxin-Like Coding Sequences , 2017, Genome Announcements.
[7] Gary Xie,et al. Molecular characterization of a novel botulinum neurotoxin type H gene. , 2014, The Journal of infectious diseases.
[8] East,et al. Phylogeny and taxonomy of the food‐borne pathogen Clostridium botulinum and its neurotoxins , 1998, Journal of applied microbiology.
[9] B. Segerman,et al. Horizontal gene transfer of toxin genes in Clostridium botulinum , 2011, Mobile genetic elements.
[10] Brian H. Raphael,et al. Functional characterization of botulinum neurotoxin serotype H as a hybrid of known serotypes F and A (BoNT F/A). , 2015, Analytical chemistry.
[11] D. Ebert. Host-parasite coevolution: Insights from the Daphnia-parasite model system. , 2008, Current opinion in microbiology.
[12] A. Bairoch,et al. A unique signature identifies a family of zinc‐dependent metallopeptidases , 1989, FEBS letters.
[13] B. Charlesworth,et al. Biological and biomedical implications of the co-evolution of pathogens and their hosts , 2002, Nature Genetics.
[14] A. T. Carter,et al. Genomes, neurotoxins and biology of Clostridium botulinum Group I and Group II , 2015, Research in microbiology.
[15] K. Niwa,et al. “Non-Toxic” Proteins of the Botulinum Toxin Complex Exert In-vivo Toxicity , 2016, Scientific Reports.
[16] I. Barker,et al. TOXICITY OF CLOSTRIDIUM BOTULINUM TYPE E NEUROTOXIN TO GREAT LAKES FISH: IMPLICATIONS FOR AVIAN BOTULISM , 2006, Journal of wildlife diseases.
[17] K. Kitadokoro,et al. Crystal Structure of Clostridium botulinum Whole Hemagglutinin Reveals a Huge Triskelion-shaped Molecular Complex* , 2013, The Journal of Biological Chemistry.
[18] R. Stevens,et al. Crystal structure of botulinum neurotoxin type G light chain: serotype divergence in substrate recognition. , 2005, Biochemistry.
[19] Rong-Fong Shen,et al. Comparative pathogenomics of Clostridium tetani , 2017, PloS one.
[20] Neil Hall,et al. Antagonistic coevolution accelerates molecular evolution , 2010, Nature.
[21] C. Montecucco,et al. Botulinum neurotoxins: genetic, structural and mechanistic insights , 2014, Nature Reviews Microbiology.
[22] Raj Kumar,et al. Evolution of Toxin , 2016 .
[23] C. Montecucco,et al. Botulinum Neurotoxins: Biology, Pharmacology, and Toxicology , 2017, Pharmacological Reviews.
[24] Peter J. Schaap,et al. Molecular characterization of the , 1997 .
[25] B. McConkey,et al. Insights into the evolutionary origins of clostridial neurotoxins from analysis of the Clostridium botulinum strain A neurotoxin gene cluster , 2008, BMC Evolutionary Biology.
[26] S. Davis,et al. Biodiversity of Clostridium botulinum Type E Associated with a Large Outbreak of Botulism in Wildlife from Lake Erie and Lake Ontario , 2010, Applied and Environmental Microbiology.
[27] Roshan Kukreja,et al. Biologically Active Novel Conformational State of Botulinum, the Most Poisonous Poison* , 2005, Journal of Biological Chemistry.
[28] J. Krupp,et al. Engineered botulinum neurotoxin B with improved efficacy for targeting human receptors , 2017, Nature Communications.
[29] J. Barbieri,et al. Mechanism of Substrate Recognition by Botulinum Neurotoxin Serotype A* , 2007, Journal of Biological Chemistry.
[30] G. Arrigoni,et al. The first non Clostridial botulinum-like toxin cleaves VAMP within the juxtamembrane domain , 2016, Scientific Reports.
[31] M. Peck. Biology and genomic analysis of Clostridium botulinum. , 2009, Advances in microbial physiology.
[32] Jie Zhang,et al. Identification of a Botulinum Neurotoxin-like Toxin in a Commensal Strain of Enterococcus faecium. , 2018, Cell host & microbe.
[33] O. Ptitsyn,et al. The ‘molten globule’ state is involved in the translocation of proteins across membranes? , 1988, FEBS letters.
[34] Nichollas E. Scott,et al. The Type III Effector NleD from Enteropathogenic Escherichia coli Differentiates between Host Substrates p38 and JNK , 2016, Infection and Immunity.
[35] Michael J Mansfield,et al. Botulinum neurotoxin homologs in non‐Clostridium species , 2015, FEBS letters.
[36] R. Stevens,et al. The structure of the neurotoxin-associated protein HA33/A from Clostridium botulinum suggests a reoccurring beta-trefoil fold in the progenitor toxin complex. , 2005, Journal of molecular biology.
[37] H. Barth,et al. High Conservation of Tetanus and Botulinum Neurotoxins Cleavage Sites on Human SNARE Proteins Suggests That These Pathogens Exerted Little or No Evolutionary Pressure on Humans , 2017, Toxins.
[38] C. Shoemaker,et al. Botulinum Neurotoxin Is Shielded by NTNHA in an Interlocked Complex , 2012, Science.
[39] J. Lakey,et al. A 'molten-globule' membrane-insertion intermediate of the pore-forming domain of colicin A , 1991, Nature.
[40] S. Swaminathan,et al. Structure- and Substrate-based Inhibitor Design for Clostridium botulinum Neurotoxin Serotype A* , 2008, Journal of Biological Chemistry.
[41] Structural insights into the functional role of the Hcn sub-domain of the receptor-binding domain of the botulinum neurotoxin mosaic serotype C/D. , 2013, Biochimie.
[42] E. Brzuszkiewicz,et al. Genomics of Clostridium tetani. , 2015, Research in microbiology.
[43] B. Dasgupta,et al. Botulinum neurotoxins: perspective on their existence and as polyproteins harboring viral proteases. , 2006, The Journal of general and applied microbiology.
[44] Jie Zhang,et al. Identification and characterization of a novel botulinum neurotoxin , 2022 .
[45] I. Joseph,et al. The use of insects in forensic investigations: An overview on the scope of forensic entomology , 2011, Journal of forensic dental sciences.
[46] Brian H. Raphael,et al. Implications of Genome-Based Discrimination between Clostridium botulinum Group I and Clostridium sporogenes Strains for Bacterial Taxonomy , 2015, Applied and Environmental Microbiology.
[47] G. Schiavo,et al. Tetanus and botulinum neurotoxins: mechanism of action and therapeutic uses. , 1999, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[48] S. Kozaki,et al. Characterization of the Neurotoxin Produced by Isolates Associated with Avian Botulism , 2005, Avian diseases.
[49] Eric A. Johnson,et al. Widespread Sequence Variations in VAMP1 across Vertebrates Suggest a Potential Selective Pressure from Botulinum Neurotoxins , 2014, PLoS pathogens.
[50] Suzanne R. Kalb,et al. Historical Perspectives and Guidelines for Botulinum Neurotoxin Subtype Nomenclature , 2017, Toxins.
[51] Jeremy Adams,et al. Lineage‐specific mutational clustering in protein structures predicts evolutionary shifts in function , 2017, Bioinform..
[52] E. Bornberg-Bauer,et al. Host–Pathogen Coevolution: The Selective Advantage of Bacillus thuringiensis Virulence and Its Cry Toxin Genes , 2015, PLoS biology.
[53] A. T. Carter,et al. Genome sequence of a proteolytic (Group I) Clostridium botulinum strain Hall A and comparative analysis of the clostridial genomes. , 2007, Genome research.
[54] Alexandros Stamatakis,et al. RAxML version 8: a tool for phylogenetic analysis and post-analysis of large phylogenies , 2014, Bioinform..
[55] Leonard A. Smith,et al. The C Terminus of the Catalytic Domain of Type A Botulinum Neurotoxin May Facilitate Product Release from the Active Site* , 2013, The Journal of Biological Chemistry.
[56] S. Nuismer,et al. Identifying the Molecular Basis of Host-Parasite Coevolution: Merging Models and Mechanisms , 2014, The American Naturalist.
[57] R. Mateo,et al. New insight in the epidemiology of avian botulism outbreaks: necrophagous flies as vectors of Clostridium botulinum type C/D. , 2014, Environmental microbiology reports.
[58] S. Nauenburg,et al. Proteolysis of SNAP‐25 Isoforms by Botulinum Neurotoxin Types A, C, and E , 1999, Journal of neurochemistry.
[59] Neil D. Rawlings,et al. Twenty years of the MEROPS database of proteolytic enzymes, their substrates and inhibitors , 2015, Nucleic Acids Res..
[60] C. Montecucco,et al. Mechanism of action of tetanus and botulinum neurotoxins , 1994, Molecular microbiology.
[61] Leonard A. Smith,et al. Comparative genomic analyses reveal broad diversity in botulinum-toxin-producing Clostridia , 2016, BMC Genomics.
[62] Tzuu-Wang Chang,et al. Evolutionary Traits of Toxins , 2014 .
[63] Andrew C. Doxey,et al. Newly identified relatives of botulinum neurotoxins shed light on their molecular evolution , 2017, bioRxiv.
[64] A. Doxey,et al. Discovery of novel bacterial toxins by genomics and computational biology , 2018, Toxicon : official journal of the International Society on Toxinology.
[65] Eric A. Johnson,et al. Neurotoxin Gene Clusters in Clostridium botulinum Type A Strains: Sequence Comparison and Evolutionary Implications , 2003, Current Microbiology.
[66] C. Montecucco,et al. On Botulinum Neurotoxin Variability , 2015, mBio.
[67] B. Foley,et al. Botulinum-neurotoxin-like sequences identified from an Enterococcus sp. genome assembly , 2017, bioRxiv.
[68] Leonard A. Smith,et al. Analysis of the Neurotoxin Complex Genes in Clostridium botulinum A1-A4 and B1 Strains: BoNT/A3, /Ba4 and /B1 Clusters Are Located within Plasmids , 2007, PloS one.
[69] M. Dorner,et al. Molecular basis for disruption of E-cadherin adhesion by botulinum neurotoxin A complex , 2014, Science.
[70] C. Montecucco,et al. Comparison of the pH-induced conformational change of different clostridial neurotoxins. , 2004, Biochemical and biophysical research communications.
[71] K. A. Segraves,et al. Testing for coevolutionary diversification: linking pattern with process. , 2014, Trends in ecology & evolution.
[72] A. T. Carter,et al. Identification of a novel botulinum neurotoxin gene cluster in Enterococcus , 2018, FEBS letters.
[73] D. Higgins,et al. Fast, scalable generation of high-quality protein multiple sequence alignments using Clustal Omega , 2011, Molecular systems biology.