Author:
Obermann Wiebke,Azri Mohammad Farhan Darin,Konopka Leonie,Schmidt Nina,Magari Francesca,Sherman Julian,Silva Liliana M. R.,Hermosilla Carlos,Ludewig Andreas H.,Houhou Hicham,Haeberlein Simone,Luo Mona Yiting,Häcker Irina,Schetelig Marc F.,Grevelding Christoph G.,Schroeder Frank C.,Lau Gilbert Sei Kung,Taubert Anja,Rodriguez Ana,Heine Andreas,Yeo Tiong Chia,Grünweller Arnold,Taroncher-Oldenburg Gaspar
Abstract
AbstractInhibition of eukaryotic initiation factor 4A has been proposed as a strategy to fight pathogens. Rocaglates exhibit the highest specificities among eIF4A inhibitors, but their anti-pathogenic potential has not been comprehensively assessed across eukaryotes. In silico analysis of the substitution patterns of six eIF4A1 aa residues critical to rocaglate binding, uncovered 35 variants. Molecular docking of eIF4A:RNA:rocaglate complexes, and in vitro thermal shift assays with select recombinantly expressed eIF4A variants, revealed that sensitivity correlated with low inferred binding energies and high melting temperature shifts. In vitro testing with silvestrol validated predicted resistance in Caenorhabditiselegans and Leishmaniaamazonensis and predicted sensitivity in Aedes sp., Schistosomamansoni, Trypanosomabrucei, Plasmodiumfalciparum, and Toxoplasmagondii. Our analysis further revealed the possibility of targeting important insect, plant, animal, and human pathogens with rocaglates. Finally, our findings might help design novel synthetic rocaglate derivatives or alternative eIF4A inhibitors to fight pathogens.
Funder
LOEWE Center DRUID
German Ministry of Science and Education
National Institutes of Health
Howard Hughes Medical Institute
Philipps-Universität Marburg
Publisher
Springer Science and Business Media LLC
Cited by
2 articles.
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