Structure–Activity Relationship Exploration of 3′-Deoxy-7-deazapurine Nucleoside Analogues as Anti-Trypanosoma brucei Agents
Author(s) -
Fabian Hulpia,
Gustavo D. Campagnaro,
Khalid J. Alzahrani,
Ibrahim A. Alfayez,
Marzuq A. Ungogo,
Dorien Mabille,
Louis Maes,
Harry P. de Koning,
Guy Caljon,
Serge Van Calenbergh
Publication year - 2020
Publication title -
acs infectious diseases
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.324
H-Index - 39
ISSN - 2373-8227
DOI - 10.1021/acsinfecdis.0c00105
Subject(s) - trypanosoma brucei , nucleoside , african trypanosomiasis , pentamidine , purine , nucleoside transporter , biology , biochemistry , transporter , nucleoside analogue , stereochemistry , structure–activity relationship , hypoxanthine , chemistry , virology , trypanosomiasis , in vitro , enzyme , gene , medicine , pneumonia
Human African trypanosomiasis is a neglected tropical disease caused by Trypanosoma brucei parasites. These protists are unable to produce the purine ring, making them vulnerable to the effects of purine nucleoside analogues. Starting from 3'-deoxytubercidin ( 5 ), a lead compound with activity against central-nervous-stage human African trypanosomiasis, we investigate the structure-activity relationships of the purine and ribofuranose rings. The purine ring tolerated only modifications at C7, while from the many alterations of the 3'-deoxyribofuranosyl moiety only the arabino analogue 48 showed pronounced antitrypanosomal activity. Profiling of the most potent analogues against resistan T. brucei strains (resistant to pentamidine, diminazene, and isometamidium) showed reduced dependence on uptake mediated by the P2 aminopurine transporter relative to 5 . The introduction of a 7-substituent confers up to 10-fold increased affinity for the P1 nucleoside transporter while generally retaining high affinity for P2. Four of the most promising analogues were found to be metabolically stable, earmarking them as suitable backup analogues for lead 5 .
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