Proton transfer in the mechanism of polyadenylate polymerase

Paul B Balbo1, Andrew Bohm

  • 1Tufts University School of Medicine and the Sackler School of Graduate Biomedical Sciences, Department of Biochemistry, Boston, MA 02111, USA. pbalbo@gate.sinica.edu.tw

Insights

Polyadenylate polymerase (PAP) enzyme activity is pH-dependent, requiring specific protonation states for optimal catalysis. Residues Lys215 and Tyr224 play a key role in this proton transfer mechanism.

Area of Science:

  • Biochemistry
  • Enzymology
  • Molecular Biology

Background:

  • Polyadenylate polymerase (PAP) synthesizes the 3' poly(A) tails of mRNA.
  • Understanding the catalytic mechanism of PAP, particularly the role of proton transfer, is crucial for RNA processing research.

Purpose of the Study:

  • To investigate the role of proton transfer in the catalytic mechanism of yeast PAP.
  • To determine the pH dependence of kinetic parameters for both forward and reverse reactions of PAP.

Main Methods:

  • Steady-state kinetic analysis of yeast PAP at varying pH.
  • Deuterium solvent isotope effect measurements.
  • pKa calculations using the MCCE method.

Main Results:

  • Enzyme-RNA-MgATP complex formation is pH-independent, while enzyme-RNA-MgPPi complex formation is pH-dependent.
  • Optimal PAP activity requires a specific protonation state, involving both protonated and deprotonated species.
  • Proton transfer is implicated in a rate-determining step, supported by deuterium isotope effects.
  • pKa calculations suggest Lys215 and Tyr224 co-operatively influence substrate binding/dissociation.

Conclusions:

  • Proton transfer is integral to the catalytic mechanism of PAP.
  • Residues Lys215 and Tyr224 are critical for PAP function, likely mediating electrostatic catalysis.
  • The findings provide insights into the molecular basis of mRNA polyadenylation.

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