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Simultaneous Mapping and Quantitation of Ribonucleotides in Human Mitochondrial DNA
Published on: November 14, 2017
Comparative modeling of DNA and RNA polymerases from Moniliophthora perniciosa mitochondrial plasmid
Bruno S Andrade1, Alex G Taranto, Aristóteles Góes-Neto
1Departamento de Ciências Biológicas, Universidade Estadual de Feira de Santana, Feira de Santana, Brazil. bandradefsa@yahoo.com.br
Background:
The filamentous fungus Moniliophthora perniciosa (Stahel) Aime & Phillips-Mora is a hemibiotrophic Basidiomycota that causes witches' broom disease of cocoa (Theobroma cacao L.). This disease has resulted in a severe decrease in Brazilian cocoa production, which changed the position of Brazil in the market from the second largest cocoa exporter to a cocoa importer. Fungal mitochondrial plasmids are usually invertrons encoding DNA and RNA polymerases. Plasmid insertions into host mitochondrial genomes are probably associated with modifications in host generation time, which can be involved in fungal aging. This association suggests activity of polymerases, and these can be used as new targets for drugs against mitochondrial activity of fungi, more specifically against witches' broom disease. Sequencing and modeling: DNA and RNA polymerases of M. perniciosa mitochondrial plasmid were completely sequenced and their models were carried out by Comparative Homology approach. The sequences of DNA and RNA polymerase showed 25% of identity to 1XHX and 1ARO (pdb code) using BLASTp, which were used as templates. The models were constructed using Swiss PDB-Viewer and refined with a set of Molecular Mechanics (MM) and Molecular Dynamics (MD) in water carried out with AMBER 8.0, both working under the ff99 force fields, respectively. Ramachandran plots were generated by Procheck 3.0 and exhibited models with 97% and 98% for DNA and RNA polymerases, respectively. MD simulations in water showed models with thermodynamic stability after 2000 ps and 300 K of simulation.
Conclusion:
This work contributes to the development of new alternatives for controlling the fungal agent of witches' broom disease.
Insights
Researchers sequenced and modeled DNA and RNA polymerases from Moniliophthora perniciosa, the fungus causing cocoa witches
Area of Science:
- Molecular Biology
- Mycology
- Biochemistry
Background:
- Moniliophthora perniciosa causes witches' broom disease in cocoa, significantly impacting Brazilian production.
- Fungal mitochondrial plasmids encode DNA and RNA polymerases, potentially influencing fungal aging and generation time.
- These polymerases represent potential drug targets for controlling fungal mitochondrial activity and witches' broom disease.
Purpose of the Study:
- To sequence and structurally model the DNA and RNA polymerases of the M. perniciosa mitochondrial plasmid.
- To investigate the potential of these polymerases as novel therapeutic targets against witches' broom disease.
Main Methods:
- Complete sequencing of M. perniciosa mitochondrial plasmid DNA and RNA polymerases.
- Comparative Homology modeling using BLASTp against PDB templates (1XHX, 1ARO).
- Model refinement using Molecular Mechanics (MM) and Molecular Dynamics (MD) simulations with AMBER 8.0.
- Validation of model quality using Ramachandran plots (Procheck 3.0).
Main Results:
- Sequences showed 25% identity to known polymerases, enabling homology modeling.
- Modeled DNA and RNA polymerases achieved high stereochemical quality (97% and 98% respectively).
- MD simulations confirmed thermodynamic stability of the models under simulated physiological conditions.
Conclusions:
- The study provides structural insights into M. perniciosa polymerases.
- These findings support the development of new strategies for controlling witches' broom disease.
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