Proteolytic Processing and Activation of Clostridium perfringens Epsilon Toxin by Caprine Small Intestinal Contents

被引:20
作者
Freedman, John C. [1 ]
Li, Jihong [1 ]
Uzal, Francisco A. [2 ]
McClane, Bruce A. [1 ]
机构
[1] Univ Pittsburgh, Sch Med, Dept Microbiol & Mol Genet, Pittsburgh, PA 15260 USA
[2] Univ Calif Davis, Sch Vet Med, San Bernardino Branch, Calif Anim Hlth & Food Safety Lab, San Bernardino, CA USA
来源
MBIO | 2014年 / 5卷 / 05期
关键词
LAMBDA-TOXIN; GOATS; PROTOTOXIN; SHEEP; INFECTIONS; DIAGNOSIS; MOLECULE; DISEASE; MICE;
D O I
10.1128/mBio.01994-14
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Epsilon toxin (ETX), a pore-forming toxin produced by type B and D strains of Clostridium perfringens, mediates severe enterotoxemia in livestock and possibly plays a role in human disease. During enterotoxemia, the nearly inactive ETX prototoxin is produced in the intestines but then must be activated by proteolytic processing. The current study sought to examine ETX prototoxin processing and activation ex vivo using the intestinal contents of a goat, a natural host species for ETX-mediated disease. First, this study showed that the prototoxin has a KEIS N-terminal sequence with a molecular mass of 33,054 Da. When the activation of ETX prototoxin ex vivo by goat small intestinal contents was assessed by SDS-PAGE, the prototoxin was processed in a stepwise fashion into an similar to 27-kDa band or higher-molecular-mass material that could be toxin oligomers. Purified ETX corresponding to the similar to 27-kDa band was cytotoxic. When it was biochemically characterized by mass spectrometry, the co-presence of three ETX species, each with different C-terminal residues, was identified in the purified similar to 27-kDa ETX preparation. Cytotoxicity of each of the three ETX species was then demonstrated using recombinant DNA approaches. Serine protease inhibitors blocked the initial proteotoxin processing, while carboxypeptidase inhibitors blocked further processing events. Taken together, this study provides important new insights indicating that, in the intestinal lumen, serine protease (including trypsin and possibly chymotrypsin) initiates the processing of the prototoxin but other proteases, including carboxypeptidases, then process the prototoxin into multiple active and stable species. IMPORTANCE Processing and activation by intestinal proteases is a prerequisite for ETX-induced toxicity. Previous studies had characterized the activation of ETX using only arbitrarily chosen amounts of purified trypsin and/or chymotrypsin. Therefore, the current study examined ETX activation ex vivo by natural host intestinal contents. These analyses demonstrated that (i) ETX processing in host intestinal contents occurs in an ordered, stepwise fashion, (ii) processing of prototoxin by host intestinal contents results in higher-molecular-mass material and 3 distinct similar to 27-kDa ETX species, and (iii) serine proteases, such as trypsin, chymotrypsin, and other proteases, including carboxypeptidases, play a role in the activation of ETX by intestinal contents. These studies provide new insights into the activation and processing of ETX and demonstrate that this process is more complicated than previously appreciated.
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页数:10
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共 27 条
  • [1] Mechanisms of disease: protease functions in intestinal mucosal pathobiology
    Antalis, Toni M.
    Shea-Donohue, Terez
    Vogel, Stefanie N.
    Sears, Cynthia
    Fasano, Alessio
    [J]. NATURE CLINICAL PRACTICE GASTROENTEROLOGY & HEPATOLOGY, 2007, 4 (07): : 393 - 402
  • [2] STRUCTURAL STUDIES ON EPSILON-PROTOTOXIN OF CLOSTRIDIUM-PERFRINGENS TYPE-D - LOCALIZATION OF SITE OF TRYPTIC SCISSION NECESSARY FOR ACTIVATION TO EPSILON-TOXIN
    BHOWN, AS
    HABEEB, AFSA
    [J]. BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1977, 78 (03) : 889 - 896
  • [3] Neurological disorders produced by Clostridium perfringens type D epsilon toxin
    Finnie, JW
    [J]. ANAEROBE, 2004, 10 (02) : 145 - 150
  • [4] Epsilon Toxin Is Essential for the Virulence of Clostridium perfringens Type D Infection in Sheep, Goats, and Mice
    Garcia, J. P.
    Adams, V.
    Beingesser, J.
    Hughes, M. L.
    Poon, R.
    Lyras, D.
    Hill, A.
    McClane, B. A.
    Rood, J. I.
    Uzal, F. A.
    [J]. INFECTION AND IMMUNITY, 2013, 81 (07) : 2405 - 2414
  • [5] GLEESONWHITE MH, 1955, LANCET, V1, P384
  • [6] Clostridium perfringens Epsilon Toxin Increases the Small Intestinal Permeability in Mice and Rats
    Goldstein, Jorge
    Morris, Winston E.
    Fabian Loidl, Cesar
    Tironi-Farinatti, Carla
    McClane, Bruce A.
    Uzal, Francisco A.
    Fernandez Miyakawa, Mariano E.
    [J]. PLOS ONE, 2009, 4 (09):
  • [7] STUDIES ON EPSILON-PROTOTOXIN OF CLOSTRIDIUM PERFRINGENS TYPE D .I. PRUIFICATION METHODS - EVIDENCE FOR MULTIPLE FORMS OF EPSILON-PROTOTOXIN
    HABEEB, AFS
    [J]. ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1969, 130 (1-2) : 430 - &
  • [8] MORPHOLOGICAL ALTERATIONS IN MDCK CELLS INDUCED BY EXPOSURE TO CLOSTRIDIUM-PERFRINGENS EPSILON-TOXIN
    HAMBROOK, JL
    LINDSAY, CD
    HUGHES, N
    [J]. BIOCHEMICAL SOCIETY TRANSACTIONS, 1995, 23 (01) : S44 - S44
  • [9] Identification of a lambda toxin-negative Clostridium perfringens strain that processes and activates epsilon prototoxin intracellularly
    Harkness, Justine M.
    Li, Jihong
    McClane, Bruce A.
    [J]. ANAEROBE, 2012, 18 (05) : 546 - 552
  • [10] CLONING AND NUCLEOTIDE SEQUENCING OF THE CLOSTRIDIUM-PERFRINGENS EPSILON-TOXIN GENE AND ITS EXPRESSION IN ESCHERICHIA-COLI
    HUNTER, SEC
    CLARKE, IN
    KELLY, DC
    TITBALL, RW
    [J]. INFECTION AND IMMUNITY, 1992, 60 (01) : 102 - 110