PredictONCO: a web tool supporting decision-making in precision oncology by extending the bioinformatics predictions with advanced computing and machine learning

Author:

Stourac Jan12345,Borko Simeon34567ORCID,Khan Rayyan T12,Pokorna Petra8910,Dobias Adam34,Planas-Iglesias Joan12345ORCID,Mazurenko Stanislav345ORCID,Pinto Gaspar345,Szotkowska Veronika34,Sterba Jaroslav1112,Slaby Ondrej8910,Damborsky Jiri12345,Bednar David12345ORCID

Affiliation:

1. Loschmidt Laboratories , Department of Experimental Biology, Faculty of Science, , Brno , Czech Republic

2. Masaryk University , Department of Experimental Biology, Faculty of Science, , Brno , Czech Republic

3. Loschmidt Laboratories , RECETOX, Faculty of Science, , Brno , Czech Republic

4. Masaryk University , RECETOX, Faculty of Science, , Brno , Czech Republic

5. International Clinical Research Center, St. Anne's University Hospital Brno , Brno , Czech Republic

6. IT4Innovations Centre of Excellence , Faculty of Information Technology, , Brno , Czech Republic

7. Brno University of Technology , Faculty of Information Technology, , Brno , Czech Republic

8. Central European Institute of Technology, Masaryk University , Brno , Czech Republic

9. Department of Biology , Faculty of Medicine, , Brno , Czech Republic

10. Masaryk University , Faculty of Medicine, , Brno , Czech Republic

11. Department of Paediatric Oncology , University Hospital Brno and Faculty of Medicine, , Brno , Czech Republic

12. Masaryk University , University Hospital Brno and Faculty of Medicine, , Brno , Czech Republic

Abstract

Abstract PredictONCO 1.0 is a unique web server that analyzes effects of mutations on proteins frequently altered in various cancer types. The server can assess the impact of mutations on the protein sequential and structural properties and apply a virtual screening to identify potential inhibitors that could be used as a highly individualized therapeutic approach, possibly based on the drug repurposing. PredictONCO integrates predictive algorithms and state-of-the-art computational tools combined with information from established databases. The user interface was carefully designed for the target specialists in precision oncology, molecular pathology, clinical genetics and clinical sciences. The tool summarizes the effect of the mutation on protein stability and function and currently covers 44 common oncological targets. The binding affinities of Food and Drug Administration/ European Medicines Agency -approved drugs with the wild-type and mutant proteins are calculated to facilitate treatment decisions. The reliability of predictions was confirmed against 108 clinically validated mutations. The server provides a fast and compact output, ideal for the often time-sensitive decision-making process in oncology. Three use cases of missense mutations, (i) K22A in cyclin-dependent kinase 4 identified in melanoma, (ii) E1197K mutation in anaplastic lymphoma kinase 4 identified in lung carcinoma and (iii) V765A mutation in epidermal growth factor receptor in a patient with congenital mismatch repair deficiency highlight how the tool can increase levels of confidence regarding the pathogenicity of the variants and identify the most effective inhibitors. The server is available at https://loschmidt.chemi.muni.cz/predictonco.

Funder

Czech Ministry of Education

Technology Agency of the Czech Republic

European Union

Brno University of Technology

Czech Ministry of Health

National Institute for Cancer Research

Publisher

Oxford University Press (OUP)

Subject

Molecular Biology,Information Systems

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