Literature DB >> 30088101

Computational design of new protein kinase 2 inhibitors for the treatment of inflammatory diseases using QSAR, pharmacophore-structure-based virtual screening, and molecular dynamics.

Josiane V Cruz1,2, Rodolfo B Serafim3, Gabriel M da Silva4, Silvana Giuliatti4, Joaquín M C Rosa5, Moysés F Araújo Neto6, Franco H A Leite6, Carlton A Taft7, Carlos H T P da Silva8, Cleydson B R Santos9,10,11.   

Abstract

Receptor-interacting protein kinase 2 (RIPK2) plays an essential role in autoimmune response and is suggested as a target for inflammatory diseases. A pharmacophore model was built from a dataset with ponatinib (template) and 18 RIPK2 inhibitors selected from BindingDB database. The pharmacophore model validation was performed by multiple linear regression (MLR). The statistical quality of the model was evaluated by the correlation coefficient (R), squared correlation coefficient (R2), explanatory variance (adjusted R2), standard error of estimate (SEE), and variance ratio (F). The best pharmacophore model has one aromatic group (LEU24 residue interaction) and two hydrogen bonding acceptor groups (MET98 and TYR97 residues interaction), having a score of 24.739 with 14 aligned inhibitors, which were used in virtual screening via ZincPharmer server and the ZINC database (selected in function of the RMSD value). We determined theoretical values of biological activity (logRA) by MLR, pharmacokinetic and toxicology properties, and made molecular docking studies comparing binding affinity (kcal/mol) results with the most active compound of the study (ponatinib) and WEHI-345. Nine compounds from the ZINC database show satisfactory results, yielding among those selected, the compound ZINC01540228, as the most promising RIPK2 inhibitor. After binding free energy calculations, the following molecular dynamics simulations showed that the receptor protein's backbone remained stable after the introduction of ligands.

Entities:  

Keywords:  Anti-inflammatory drugs; Molecular dynamics; Pharmacokinetic; RIPK2; Toxicological

Mesh:

Substances:

Year:  2018        PMID: 30088101     DOI: 10.1007/s00894-018-3756-y

Source DB:  PubMed          Journal:  J Mol Model        ISSN: 0948-5023            Impact factor:   1.810


  27 in total

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Review 3.  Computational drug discovery.

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Journal:  ACS Med Chem Lett       Date:  2013-11-04       Impact factor: 4.345

5.  Structure guided design of potent and selective ponatinib-based hybrid inhibitors for RIPK1.

Authors:  Malek Najjar; Chalada Suebsuwong; Soumya S Ray; Roshan J Thapa; Jenny L Maki; Shoko Nogusa; Saumil Shah; Danish Saleh; Peter J Gough; John Bertin; Junying Yuan; Siddharth Balachandran; Gregory D Cuny; Alexei Degterev
Journal:  Cell Rep       Date:  2015-03-24       Impact factor: 9.423

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Authors:  Alison L E Pereira; Gabriela B Dos Santos; Márcia S F Franco; Leonardo B Federico; Carlos H T P da Silva; Cleydson B R Santos
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Journal:  Rheumatology (Oxford)       Date:  2001-10       Impact factor: 7.580

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Authors:  Josiane V Cruz; Moysés F A Neto; Luciane B Silva; Ryan da S Ramos; Josivan da S Costa; Davi S B Brasil; Cleison C Lobato; Glauber V da Costa; José Adolfo H M Bittencourt; Carlos H T P da Silva; Franco H A Leite; Cleydson B R Santos
Journal:  Molecules       Date:  2018-02-18       Impact factor: 4.411

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Authors:  Cleydson Breno Rodrigues Dos Santos; Ryan da Silva Ramos; Brenda Lorena Sánchez Ortiz; Gabriel Monteiro da Silva; Silvana Giuliatti; José Luis Balderas-Lopez; Andrés Navarrete; José Carlos Tavares Carvalho
Journal:  J Ethnopharmacol       Date:  2018-04-30       Impact factor: 4.360

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2.  Identification of New Inhibitors with Potential Antitumor Activity from Polypeptide Structures via Hierarchical Virtual Screening.

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3.  Identification of Novel Chemical Entities for Adenosine Receptor Type 2A Using Molecular Modeling Approaches.

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4.  Stress Driven Discovery of Natural Products From Actinobacteria with Anti-Oxidant and Cytotoxic Activities Including Docking and ADMET Properties.

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Journal:  Molecules       Date:  2022-01-28       Impact factor: 4.411

6.  Harnessing Protein-Ligand Interaction Fingerprints to Predict New Scaffolds of RIPK1 Inhibitors.

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7.  Identification of Potential New Aedes aegypti Juvenile Hormone Inhibitors from N-Acyl Piperidine Derivatives: A Bioinformatics Approach.

Authors:  Lúcio R Lima; Ruan S Bastos; Elenilze F B Ferreira; Rozires P Leão; Pedro H F Araújo; Samuel S da R Pita; Humberto F De Freitas; José M Espejo-Román; Edla L V S Dos Santos; Ryan da S Ramos; Williams J C Macêdo; Cleydson B R Santos
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8.  An In Silico Study of the Antioxidant Ability for Two Caffeine Analogs Using Molecular Docking and Quantum Chemical Methods.

Authors:  Josivan da Silva Costa; Ryan da Silva Ramos; Karina da Silva Lopes Costa; Davi do Socorro Barros Brasil; Carlos Henrique Tomich de Paula da Silva; Elenilze Figueiredo Batista Ferreira; Rosivaldo Dos Santos Borges; Joaquín María Campos; Williams Jorge da Cruz Macêdo; Cleydson Breno Rodrigues Dos Santos
Journal:  Molecules       Date:  2018-10-29       Impact factor: 4.411

9.  Phytochemicals from Selective Plants Have Promising Potential against SARS-CoV-2: Investigation and Corroboration through Molecular Docking, MD Simulations, and Quantum Computations.

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10.  Identification of Potential COX-2 Inhibitors for the Treatment of Inflammatory Diseases Using Molecular Modeling Approaches.

Authors:  Pedro H F Araújo; Ryan S Ramos; Jorddy N da Cruz; Sebastião G Silva; Elenilze F B Ferreira; Lúcio R de Lima; Williams J C Macêdo; José M Espejo-Román; Joaquín M Campos; Cleydson B R Santos
Journal:  Molecules       Date:  2020-09-12       Impact factor: 4.411

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