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Published on: December 2, 2022
Structural insight of DNA topoisomerases I from camptothecin-producing plants revealed by molecular dynamics
Supaart Sirikantaramas1, Arthitaya Meeprasert2, Thanyada Rungrotmongkol2
1Department of Biochemistry, Faculty of Science, Chulalongkorn University, Thailand; Department of Molecular Biology and Biotechnology, Graduate School of Pharmaceutical Sciences, Chiba University, Japan.
Abstract:
DNA topoisomerase I (Top1) catalyzes changes in DNA topology by cleaving and rejoining one strand of the double stranded (ds)DNA. Eukaryotic Top1s are the cellular target of the plant-derived anticancer indole alkaloid camptothecin (CPT), which reversibly stabilizes the Top1-dsDNA complex. However, CPT-producing plants, including Camptotheca acuminata, Ophiorrhiza pumila and Ophiorrhiza liukiuensis, are highly resistant to CPT because they possess point-mutated Top1. Here, the adaptive convergent evolution is reported between CPT production ability and mutations in their Top1, as a universal resistance mechanism found in all tested CPT-producing plants. This includes Nothapodytes nimmoniana, one of the major sources of CPT. To obtain a structural insight of the resistance mechanism, molecular dynamics simulations of CPT- resistant and -sensitive plant Top1s complexed with dsDNA and topotecan (a CPT derivative) were performed, these being compared to that for the CPT-sensitive human Top1. As a result, two mutations, Val617Gly and Asp710Gly, were identified in O. pumila Top1 and C. acuminata Top1, respectively. The substitutions at these two positions, surprisingly, are the same as those found in a CPT derivative-resistant human colon adenocarcinoma cell line. The results also demonstrated an increased linker flexibility of the CPT-resistant Top1, providing an additional explanation for the resistance mechanism found in CPT-producing plants. These mutations could reflect the long evolutionary adaptation of CPT-producing plant Top1s to confer a higher degree of resistance.
Insights
Camptothecin (CPT)-producing plants evolved resistance to CPT through mutations in DNA topoisomerase I (Top1). These adaptive mutations, identified via molecular dynamics, confer universal resistance, offering insights into plant evolution and anticancer drug development.
Area of Science:
- Biochemistry
- Evolutionary Biology
- Molecular Pharmacology
Background:
- DNA topoisomerase I (Top1) is crucial for DNA topology regulation.
- The anticancer drug camptothecin (CPT) targets eukaryotic Top1, stabilizing the Top1-DNA complex.
- CPT-producing plants exhibit natural resistance to CPT due to mutated Top1 enzymes.
Purpose of the Study:
- To investigate the convergent evolution of CPT resistance in CPT-producing plants.
- To elucidate the structural basis of Top1 mutations conferring CPT resistance.
- To understand the evolutionary adaptation of plant Top1.
Main Methods:
- Comparative analysis of Top1 mutations in various CPT-producing plant species.
- Molecular dynamics simulations of plant and human Top1-DNA-drug complexes.
- Structural analysis of Top1 variants to identify resistance-conferring mutations.
Main Results:
- Identified specific Top1 mutations (Val617Gly, Asp710Gly) conferring CPT resistance in O. pumila and C. acuminata.
- Observed that these mutations mirror those found in CPT-resistant human cell lines.
- Demonstrated increased linker flexibility in CPT-resistant plant Top1, contributing to the resistance mechanism.
Conclusions:
- CPT resistance in producing plants is a result of adaptive convergent evolution.
- Specific Top1 mutations represent a universal resistance mechanism across CPT-producing plants.
- These findings provide insights into evolutionary strategies and potential therapeutic targets.
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