Events3rd International Electronic Conference on Medicinal Chemistry
Published
This submission belongs to the session D. Round Table on Parasitic Diseases of the event 3rd International Electronic Conference on Medicinal Chemistry
Published date
01 Nov, 2017
Citation
Christophe Dardonville, Francisco José Fueyo González, Carolina Izquierdo García, Teresa Díaz Ayuga, Godwin U Ebiloma, Emmanuel Balogun, Kiyoshi Kita, Harry P de Koning, Targeting the Trypanosome Alternative Oxidase (TAO) as Promising Chemotherapeutic Approach for African Trypanosomiasis, in Proceedings of 3rd International Electronic Conference on Medicinal Chemistry, 1 November–30 November 2017, MDPI: Basel, Switzerland, doi: 10.3390/ecmc-3-04641
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Targeting the Trypanosome Alternative Oxidase (TAO) as Promising Chemotherapeutic Approach for African Trypanosomiasis

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Francisco José Fueyo González 1
Carolina Izquierdo García 1
Teresa Díaz Ayuga 1
Godwin U Ebiloma 2
Kiyoshi Kita 3,5
1. Instituto de Química Médica, IQM–CSIC, Juan de la Cierva 3, E–28006 Madrid, Spain
2. Institute of Infection, Immunity and Inflammation, College of Medical, Veterinary and Life Sciences, University of Glasgow, Glasgow, United Kingdom.
3. Department of Biomedical Chemistry, Graduate School of Medicine, The University of Tokyo, Japan
4. Department of Biochemistry, Ahmadu Bello University, Zaria 2222, Nigeria
5. School of Tropical Medicine and Global Health, Nagasaki University, Nagasaki, 852-8523, Japan
Abstract

In Trypanosoma brucei, a parasite that causes African trypanosomiasis in humans (sleeping sickness) and in livestock (nagana) throughout sub-Saharan Africa, the trypanosome alternative oxidase (TAO) is essential for the respiration of bloodstream form parasites (i.e. the human-infective form). Since TAO has no counterpart in mammalian cells and it is conserved among T. brucei subspecies, it has been validated as a promising target for the chemotherapy of African trypanosomiasis.

We present here a successful approach to boost the activity of TAO inhibitors based on the conjugation of the inhibitor with lipophilic cations (LC) that can cross lipid bilayers by non-carrier mediated transport, and thus accumulate specifically into mitochondria, driven by the plasma and mitochondrial transmembrane potentials (negative inside). This design afforded several LC–TAO inhibitor conjugates active in the submicromolar to low nanomolar range against wild type and resistant strains of African trypanosomes (T. b. brucei, T. congolense), with selectivity over human cells >500.

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