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Limited proteolysis of tetanus toxin. Relation to activity and identification of cleavage sites

K G Krieglstein1, A H Henschen, U Weller

  • 1Department of Molecular Biology and Biochemistry, University of California, Irvine 92717.

Insights

Tetanus toxin activation involves proteolytic nicking, increasing its potency. This study details the specific cleavage sites and resulting structures of tetanus isotoxins, revealing structural alterations that enhance pharmacological activity.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Neuroscience

Background:

  • Tetanus toxin, produced by Clostridium tetani, is initially synthesized as a single 151-kDa peptide.
  • Post-translational processing, including methionine removal, disulfide bond formation, and proteolysis, yields mature, more potent toxins.

Purpose of the Study:

  • To elucidate the structural modifications and specific cleavage sites responsible for the increased pharmacological potency of tetanus toxin.
  • To characterize the various tetanus isotoxins generated through limited proteolysis.

Main Methods:

  • Limited proteolysis of single-chain tetanus toxin using various enzymes (trypsin, clostripain, endoproteinase Arg-C, chymotrypsin, endoproteinase Glu-C, papain).
  • Determination of new N-termini via Edman degradation.
  • Identification of C-termini by isolating and analyzing short peptide fragments.

Main Results:

  • All two-chain tetanus toxins result from cleavage within the 445-461 residue segment of the heavy chain.
  • Different proteases exhibit distinct cleavage specificities, generating various N- and C-termini.
  • Papain digestion can lead to additional cleavage within the heavy chain.
  • Pharmacological activity of two-chain toxins was 5-11 times higher than single-chain toxin.

Conclusions:

  • Limited proteolysis generates multiple active tetanus isotoxins with enhanced pharmacological potency.
  • Detailed protein chemical characterization of tetanus isotoxins is provided, including cleavage sites and structural features.

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