Related Experiment Video
Updated: Jun 24, 2026

Nucleoside Triphosphates - From Synthesis to Biochemical Characterization
Published on: April 3, 2014
Proton transfer in the mechanism of polyadenylate polymerase
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
Abstract:
PAP (polyadenylate polymerase) is the template-independent RNA polymerase responsible for synthesis of the 3' poly(A) tails of mRNA. To investigate the role of proton transfer in the catalytic mechanism of PAP, the pH dependence of the steady-state kinetic parameters of yeast PAP were determined for the forward (adenyl transfer) and reverse (pyrophosphorolysis) reactions. The results indicate that productive formation of an enzyme-RNA-MgATP complex is pH independent over a broad pH range, but that formation of an active enzyme-RNA-MgPPi complex is strongly pH dependent, consistent with the production of a proton on the enzyme in the forward reaction. The pH dependence of the maximum velocity of the forward reaction suggests two protonic species are involved in enzyme catalysis. Optimal enzyme activity requires one species to be protonated and the other deprotonated. The deuterium solvent isotope effect on Vmax is also consistent with proton transfer involved in catalysis of a rate-determining step. Finally, pKa calculations of PAP were performed by the MCCE (multiconformational continuum electrostatic) method. Together, the data support that the protonation of residues Lys215 and Tyr224 exhibit co-operativity that is important for MgATP2- and MgPPi2- binding/dissociation, and suggest these residues function in electrostatic, but not in general acid, catalysis.
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.
Related Concept Videos
Eukaryotic RNA Polymerases
All three eukaryotic RNAPs require specific transcription factors, of which the...
Eukaryotic RNA Polymerases
All three eukaryotic RNAPs require specific transcription factors, of which the...
ATP and Macromolecule Synthesis
Most macromolecules are composed of single subunits, or building blocks, called monomers. The monomers combine with each other using covalent bonds to form larger molecules known as polymers.
Conversion of...
Proofreading
Errors During Replication are Corrected by the DNA Polymerase Enzyme
Proofreading
Improving Translational Accuracy

