Related Experiment Video
Updated: Aug 29, 2026

Nucleoside Triphosphates - From Synthesis to Biochemical Characterization
Published on: April 3, 2014
Explorations of peptide and oligonucleotide binding sites of tyrosyl-DNA phosphodiesterase using vanadate complexes
Douglas R Davies1, Heidrun Interthal, James J Champoux
1Department of Biochemistry, P.O. Box 357742, School of Medicine, University of Washington, Seattle, Washington 98195-7242, USA.
Abstract:
Tyrosyl-DNA phosphodiesterase (Tdp1) catalyzes the hydrolysis of a phosphodiester bond between a tyrosine residue and a DNA 3' phosphate and functions as a DNA repair enzyme that cleaves stalled topoisomerase I-DNA complexes. We previously determined a procedure to crystallize a quaternary complex containing Tdp1, vanadate, a DNA oligonucleotide, and a tyrosine-containing peptide that mimics the transition state for hydrolysis of the Tdp1 substrate. Here, the ability of vanadate to accept a variety of different ligands is exploited to produce several different quaternary complexes with a variety of oligonucleotides, and peptides or a tyrosine analogue, in efforts to explore the binding properties of the Tdp1 DNA and peptide binding clefts. Eight crystal structures of Tdp1 with vanadate, oligonucleotides, and peptides or peptide analogues were determined. These structures demonstrated that Tdp1 is able to bind substituents with limited sequence variation in the polypeptide moiety and also bind oligonucleotides with sequence variation at the 3' end. Additionally, the tyrosine analogue octopamine can replace topoisomerase I derived peptides as the apical ligand to vanadate. The versatility of this system suggests that the formation of quaternary complexes around vanadate could be adapted to become a useful method for structure-based inhibitor design and has the potential to be generally applicable to other enzymes that perform chemistry on phosphate esters.
Insights
Tyrosyl-DNA phosphodiesterase (Tdp1) is a DNA repair enzyme. New crystal structures reveal Tdp1
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Tyrosyl-DNA phosphodiesterase (Tdp1) is a crucial DNA repair enzyme.
- Tdp1 resolves stalled topoisomerase I-DNA complexes by cleaving the phosphodiester bond.
- Understanding Tdp1's substrate binding is key for therapeutic strategies.
Purpose of the Study:
- To explore the binding properties of Tdp1's DNA and peptide binding clefts.
- To investigate Tdp1's interaction with various ligands using vanadate-based quaternary complexes.
- To assess the potential of this system for structure-based inhibitor design.
Main Methods:
- Crystallization of quaternary complexes involving Tdp1, vanadate, DNA oligonucleotides, and peptides/analogues.
- Determination of eight crystal structures of Tdp1-vanadate-ligand complexes.
- Analysis of ligand binding variations within the Tdp1 active site.
Main Results:
- Tdp1 accommodates limited sequence variations in peptide ligands.
- Tdp1 exhibits flexibility in binding DNA oligonucleotides, particularly at the 3' end.
- Octopamine, a tyrosine analogue, can substitute for enzyme-derived peptides as a ligand.
Conclusions:
- The vanadate-mediated complex formation system is versatile for probing Tdp1 binding.
- This approach facilitates structure-based inhibitor design for Tdp1 and related enzymes.
- The methodology holds potential for broader application to other phosphate ester-processing enzymes.

