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Updated: May 28, 2026

Analyzing DNA-Protein Interactions with Streptavidin-Based Biolayer Interferometry
Published on: January 17, 2025
Identifying potential binding sites for complex formation between Tyrosyl-DNA phosphodiesterase 1 and poly
Sophia Wang1, Aykut Üren2, Purushottam B Tiwari2
1Department of Biology, Georgetown University, Washington, D.C. 20057, USA.
Abstract:
DNA topoisomerases manage the supercoiled structure of the genomic DNA through breaking and rejoining DNA strands, which is a key step in many cellular processes. DNA topoisomerase I (TOPI) forms TOPI-DNA cleavage complex (TOPIcc) via formation of a transient covalent bond between TOPI and the DNA single strand. Inhibition of TOPI enzymatic activity is a successful approach for treating multiple types of cancer. Tyrosyl-DNA phosphodiesterase 1 (TDP1) helps release of TOPIccs via catalysis of TOPI-DNA phosphodiester bond hydrolysis. TDP1 is therefore functionally connected with activity of TOPI. Poly [ADP-ribose] polymerase 1 (PARP1) physically interacts with TDP1 to make TDP1 PARylated and enhances TDP1 recruitment to DNA damage sites, thus playing a functional role in TOPIcc repair. If unrepaired, TOPIcc can lead to single strand breaks, which cause cell death. Slowing down TDP1 activity can increase the efficacy of existing TOPI inhibitors and improve their clinical utility. Repair of TOPIccs can be negatively impacted by blocking the physical interactions between TDP1 and PARP1. Therefore, blocking the TDP1-PARP1 complex formations has the potential to enhance the antitumor activity of existing FDA approved TOP1 inhibitors and reduce their side effects. Towards this aim, we identified binding sites that are crucial for the TDP1-PARP1 complex formation using 700 ns long molecular dynamics (MD) simulations. We identified specific interactions between D115(TDP1) and K940 or K943 (PARP1) as well as R137(TDP1) and E883(PARP1) that might be important for the TDP1-PARP1 complex formation. We validated the complex formation between purified recombinant TDP1 and PARP1 proteins using surface plasmon resonance (SPR). We also used SPR to confirm that peptides corresponding to contact points between TDP1 and PARP1 prevent complex formation. Our findings lead the path for creating novel inhibitors that can prevent TDP1 binding to PARP1 and consequently improve the clinical efficacy of the current TOP1 inhibitors for cancer treatment.
Insights
Blocking the interaction between Tyrosyl-DNA phosphodiesterase 1 (TDP1) and Poly [ADP-ribose] polymerase 1 (PARP1) can enhance cancer treatment. This strategy aims to improve the effectiveness of DNA topoisomerase I (TOPI) inhibitors by preventing DNA repair complex formation.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- DNA topoisomerase I (TOPI) manages DNA supercoiling; its inhibition is a cancer treatment strategy.
- TOPI-DNA cleavage complexes (TOPIccs) are repaired by Tyrosyl-DNA phosphodiesterase 1 (TDP1).
- Poly [ADP-ribose] polymerase 1 (PARP1) interacts with TDP1, aiding TOPIcc repair.
Purpose of the Study:
- To investigate the functional connection between TDP1 and PARP1 in TOPIcc repair.
- To identify key binding sites for TDP1-PARP1 complex formation.
- To explore strategies for enhancing the efficacy of TOPI inhibitors.
Main Methods:
- Molecular dynamics (MD) simulations to identify TDP1-PARP1 binding sites.
- Surface plasmon resonance (SPR) to validate protein complex formation.
- SPR to test the effect of peptides on TDP1-PARP1 interaction.
Main Results:
- MD simulations identified crucial interactions between TDP1 (D115, R137) and PARP1 (K940/K943, E883).
- SPR confirmed complex formation between purified TDP1 and PARP1 proteins.
- Peptides corresponding to contact points inhibited TDP1-PARP1 complex formation.
Conclusions:
- Blocking TDP1-PARP1 interactions can enhance the antitumor activity of TOPI inhibitors.
- This approach offers a potential strategy to reduce side effects of current cancer therapies.
- Findings pave the way for novel inhibitors targeting the TDP1-PARP1 complex for improved cancer treatment.

