Pertussis toxin: transition state analysis for ADP-ribosylation of G-protein peptide alphai3C20

J Scheuring1, V L Schramm

  • 1Department of Biochemistry, Albert Einstein College of Medicine, 1300 Morris Park Avenue, Bronx, New York 10461, USA.

Biochemistry
|July 8, 1997
PubMed

Insights

Pertussis toxin catalyzes ADP-ribosylation via a transition state with oxocarbenium character. The peptide substrate

Area of Science:

  • Biochemistry
  • Enzymology
  • Toxicology

Background:

  • Pertussis toxin, an ADP-ribosylating toxin from Bordetella pertussis, is a key cytotoxic agent in infectious diseases.
  • ADP-ribosylating toxins are targets for therapeutic intervention, with transition state analogues as potential inhibitors.

Purpose of the Study:

  • To elucidate the catalytic mechanism of pertussis toxin by determining kinetic isotope effects and transition state structure.
  • To compare the transition states of peptide ADP-ribosylation and NAD+ hydrolysis catalyzed by pertussis toxin.

Main Methods:

  • Kinetic isotope effect studies using 3H-, 14C-, and 15N-labeled NAD+.
  • Isotope trapping experiments to determine commitment factors.
  • Normal mode bond vibrational analysis for transition state structure determination.
  • Solvent deuterium kinetic isotope effects.

Main Results:

  • Primary kinetic isotope effects for [1'N-14C] and [1N-15N] NAD+ were determined.
  • Secondary kinetic isotope effects were measured for various 3H-labeled positions.
  • Transition state analysis revealed a nicotinamide leaving group bond order of 0.14 and incoming thiolate nucleophile bond order of 0.11.
  • The ribose ring exhibited strong oxocarbenium ion character.
  • The peptide substrate's cysteine thiolate actively participated in the transition state, unlike water in hydrolysis.

Conclusions:

  • The transition state for pertussis toxin-catalyzed ADP-ribosylation of peptide alphai3C20 is loose and retains oxocarbenium character.
  • The active participation of the cysteine thiolate nucleophile neutralizes developing positive charge, increasing SN2 character compared to NAD+ hydrolysis.
  • Understanding these transition state properties can inform the design of novel therapeutic inhibitors.

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