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  1. Outputs

Multitarget, Selective Compound Design Yields Potent Inhibitors of a Kinetoplastid Pteridine Reductase 1

Academic Article
Publication Date:
2022
abstract:
The optimization of compounds with multiple targets is a difficult multidimensional problem in the drug discovery cycle. Here, we present a systematic, multidisciplinary approach to the development of selective antiparasitic compounds. Computational fragment-based design of novel pteridine deriva-tives along with iterations of crystallographic structure determi-nation allowed for the derivation of a structure-activity relation-ship for multitarget inhibition. The approach yielded compounds showing apparent picomolar inhibition of T. brucei pteridine reductase 1 (PTR1), nanomolar inhibition of L. major PTR1, and selective submicromolar inhibition of parasite dihydrofolate reductase (DHFR) versus human DHFR. Moreover, by combining design for polypharmacology with a property-based on-parasite optimization, we found three compounds that exhibited micromolar EC50 values against T. brucei brucei while retaining their target inhibition. Our results provide a basis for the further development of pteridine-based compounds, and we expect our multitarget approach to be generally applicable to the design and optimization of anti-infective agents.
Iris type:
1.1 Articolo in rivista
List of contributors:
Pöhner, Ina; Quotadamo, Antonio; Panecka-Hofman, Joanna; Luciani, Rosaria; Santucci, Matteo; Linciano, Pasquale; Landi, Giacomo; Di Pisa, Flavio; Dello Iacono, Lucia; Pozzi, Cecilia; Mangani, Stefano; Gul, Sheraz; Witt, Gesa; Ellinger, Bernhard; Kuzikov, Maria; Santarem, Nuno; Cordeiro-da-Silva, Anabela; Costi, Maria P; Venturelli, Alberto; Wade, Rebecca C
Authors of the University:
LINCIANO PASQUALE
Handle:
https://iris.unipv.it/handle/11571/1476558
Published in:
JOURNAL OF MEDICINAL CHEMISTRY
Journal
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