Molecular Evolutionary Constraints that Determine the Avirulence State of Clostridium botulinum C2 Toxin

被引:7
|
作者
Prisilla, A. [1 ]
Prathiviraj, R. [1 ]
Chellapandi, P. [1 ]
机构
[1] Bharathidasan Univ, Sch Life Sci, Dept Bioinformat, Mol Syst Engn Lab, Tiruchirappalli 620024, Tamil Nadu, India
关键词
Binary toxin A; ADP ribosyltransferase; Site-directed mutagenesis; Molecular dynamics; Coevolution; ADP-RIBOSYLTRANSFERASE; CRYSTAL-STRUCTURE; NAD-BINDING; STRUCTURE PREDICTION; PROTEIN STABILITY; STRUCTURAL BASIS; DELIVERY-SYSTEM; CATALYTIC SITE; PORE FORMATION; C3; EXOENZYME;
D O I
10.1007/s00239-017-9791-y
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Clostridium botulinum (group-III) is an anaerobic bacterium producing C2 toxin along with botulinum neurotoxins. C2 toxin is belonged to binary toxin A family in bacterial ADP-ribosylation superfamily. A structural and functional diversity of binary toxin A family was inferred from different evolutionary constraints to determine the avirulence state of C2 toxin. Evolutionary genetic analyses revealed evidence of C2 toxin cluster evolution through horizontal gene transfer from the phage or plasmid origins, site-specific insertion by gene divergence, and homologous recombination event. It has also described that residue in conserved NAD-binding core, family-specific domain structure, and functional motifs found to predetermine its virulence state. Any mutational changes in these residues destabilized its structure-function relationship. Avirulent mutants of C2 toxin were screened and selected from a crucial site required for catalytic function of C2I and poreforming function of C2II. We found coevolved amino acid pairs contributing an essential role in stabilization of its local structural environment. Avirulent toxins selected in this study were evaluated by detecting evolutionary constraints in stability of protein backbone structure, folding and conformational dynamic space, and antigenic peptides. We found 4 avirulent mutants of C2I and 5 mutants of C2II showing more stability in their local structural environment and backbone structure with rapid fold rate, and low conformational flexibility at mutated sites. Since, evolutionary constraints-free mutants with lack of catalytic and poreforming function suggested as potential immunogenic candidates for treating C. botulinum infected poultry and veterinary animals. Single amino acid substitution in C2 toxin thus provides a major importance to understand its structure-function link, not only of a molecule but also of the pathogenesis.
引用
收藏
页码:174 / 186
页数:13
相关论文
共 50 条
  • [21] Clostridium botulinum C2 toxin:: binding studies with fluorescence-activated cytometry
    Stiles, BG
    Blöcker, D
    Hale, ML
    Guethoff, MA
    Barth, H
    TOXICON, 2002, 40 (08) : 1135 - 1140
  • [22] CHARACTERIZATION OF THE ADP-RIBOSYLATION OF ACTIN BY CLOSTRIDIUM-BOTULINUM C2 TOXIN AND CLOSTRIDIUM-PERFRINGENS IOTA TOXIN
    AKTORIES, K
    GEIPEL, U
    WILLE, M
    JUST, I
    JOURNAL DE PHYSIOLOGIE, 1990, 84 (04): : 262 - 266
  • [23] Studying on botulinum C2 toxin gene
    Kubota, T
    Kimura, K
    Ohishi, I
    Moriishi, K
    Isogai, E
    Isogai, H
    Fujii, N
    JAPANESE JOURNAL OF MEDICAL SCIENCE & BIOLOGY, 1996, 49 (5-6): : 267 - 269
  • [24] The C terminus of component C2II of Clostridium botulinum C2 toxin is essential for receptor binding
    Blöcker, D
    Barth, H
    Maier, E
    Benz, R
    Barbieri, JT
    Aktories, K
    INFECTION AND IMMUNITY, 2000, 68 (08) : 4566 - 4573
  • [25] DE-ADP-RIBOSYLATION ACTIN BY CLOSTRIDIUM-PERFRINGENS IOTA-TOXIN AND CLOSTRIDIUM-BOTULINUM C2 TOXIN
    JUST, I
    GEIPEL, U
    WEGNER, A
    AKTORIES, K
    EUROPEAN JOURNAL OF BIOCHEMISTRY, 1990, 192 (03): : 723 - 727
  • [26] Structure function analysis of the actin ADP-ribosylating Clostridium botulinum C2 toxin
    Barth, H
    Preiss, J
    Roebling, R
    Hofmann, F
    Just, I
    Aktories, K
    NAUNYN-SCHMIEDEBERGS ARCHIVES OF PHARMACOLOGY, 1998, 357 (04) : R60 - R60
  • [27] Internalization of Clostridium botulinum C2 Toxin Is Regulated by Cathepsin B Released from Lysosomes
    Nagahama, Masahiro
    Kobayashi, Keiko
    Ochi, Sadayuki
    Takehara, Masaya
    TOXINS, 2021, 13 (04)
  • [28] Role of phenylalanine-428 in up-take of Clostridium botulinum C2 toxin
    Lang, A. E.
    Aktories, K.
    NAUNYN-SCHMIEDEBERGS ARCHIVES OF PHARMACOLOGY, 2008, 377 : 87 - 87
  • [29] Role of oligomerization, pore formation and unfolding in cellular action of Clostridium botulinum C2 toxin
    Wilde, C
    Blöcker, D
    Aktories, K
    Barth, H
    NAUNYN-SCHMIEDEBERGS ARCHIVES OF PHARMACOLOGY, 2001, 363 (04) : R5 - R5
  • [30] Binding of Clostridium botulinum C2 toxin to asparagine-linked complex and hybrid carbohydrates
    Eckhardt, M
    Barth, H
    Blöcker, D
    Aktories, K
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (04) : 2328 - 2334