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Antitumour drugs impede DNA uncoiling by topoisomerase I
Daniel A Koster1, Komaraiah Palle, Elisa S M Bot
1Kavli Institute of Nanoscience, Faculty of Applied Sciences, Delft University of Technology, Lorentzweg 1, 2628 CJ Delft, The Netherlands.
Abstract:
Increasing the ability of chemotherapeutic drugs to kill cancer cells is often hampered by a limited understanding of their mechanism of action. Camptothecins, such as topotecan, induce cell death by poisoning DNA topoisomerase I, an enzyme capable of removing DNA supercoils. Topotecan is thought to stabilize a covalent topoisomerase-DNA complex, rendering it an obstacle to DNA replication forks. Here we use single-molecule nanomanipulation to monitor the dynamics of human topoisomerase I in the presence of topotecan. This allowed us to detect the binding and unbinding of an individual topotecan molecule in real time and to quantify the drug-induced trapping of topoisomerase on DNA. Unexpectedly, our findings also show that topotecan significantly hinders topoisomerase-mediated DNA uncoiling, with a more pronounced effect on the removal of positive (overwound) versus negative supercoils. In vivo experiments in the budding yeast verified the resulting prediction that positive supercoils would accumulate during transcription and replication as a consequence of camptothecin poisoning of topoisomerase I. Positive supercoils, however, were not induced by drug treatment of cells expressing a catalytically active, camptothecin-resistant topoisomerase I mutant. This combination of single-molecule and in vivo data suggests a cytotoxic mechanism for camptothecins, in which the accumulation of positive supercoils ahead of the replication machinery induces potentially lethal DNA lesions.
Insights
Topotecan traps DNA topoisomerase I, hindering DNA uncoiling and causing positive supercoils. This accumulation of DNA damage leads to cancer cell death, revealing a novel cytotoxic mechanism for camptothecins.
Area of Science:
- Biochemistry
- Molecular Biology
- Genetics
Background:
- Chemotherapeutic drug efficacy is limited by incomplete understanding of their mechanisms.
- Camptothecins, like topotecan, kill cancer cells by inhibiting DNA topoisomerase I.
- Topoisomerase I removes DNA supercoils, and topotecan is believed to trap it on DNA.
Purpose of the Study:
- To elucidate the real-time dynamics of human topoisomerase I in the presence of topotecan.
- To quantify the drug-induced trapping of topoisomerase I on DNA.
- To investigate the impact of topotecan on DNA supercoil removal and its cytotoxic mechanism.
Main Methods:
- Single-molecule nanomanipulation to observe human topoisomerase I and topotecan interactions.
- Real-time detection of topotecan binding and unbinding events.
- In vivo experiments in budding yeast to validate findings.
Main Results:
- Topotecan binding and unbinding to topoisomerase I were observed in real time.
- Topotecan significantly inhibits topoisomerase I-mediated DNA uncoiling, particularly positive supercoils.
- In vivo, camptothecin treatment led to the accumulation of positive supercoils during transcription and replication.
Conclusions:
- Topotecan's cytotoxic effect involves hindering topoisomerase I activity, leading to positive supercoil accumulation.
- Accumulation of positive supercoils ahead of replication forks may induce lethal DNA lesions.
- This study reveals a novel cytotoxic mechanism for camptothecins based on DNA supercoil dynamics.
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