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Assessment of Resistance to Tyrosine Kinase Inhibitors by an Interrogation of Signal Transduction Pathways by Antibody Arrays
Published on: September 19, 2018
Signal Transduction Pathways as Therapeutic Target for Chagas Disease
Alejandra Cecilia Schoijet1, Tamara Sternlieb1, Guillermo Daniel Alonso1,2
1Laboratorio de Senalizacion y Mecanismos Adaptativos en Tripanosomatidos, Instituto de Investigaciones en Ingenieria Genetica y Biologia Molecular "Dr. Hector N. Torres"; Vuelta de Obligado 2490 (C1428ADN), Buenos Aires, Argentina.
Abstract:
Trypanosomatids are a group of flagellated unicellular eukaryotes, causing serious human diseases including Chagas disease (Trypanosoma cruzi), sleeping sickness (Trypanosoma brucei spp.) and Leishmaniasis (Leishmania spp.). The second messenger cAMP is involved in numerous and fundamental processes in these parasites including differentiation between stages, proliferation, osmoregulation, oxidative stress and quorum sensing. Interestingly, its signaling pathway is quite different from that of mammals, including structurally different adenylyl cyclases, the shortage of orthologous effector proteins and the absence of G-protein-coupled-receptors, among others. These characteristics make the proteins involved in these transduction pathways good candidates for therapeutic targets. However, the identification of new unknown druggable targets involves extensive research time and is economically very expensive, making difficult the transition from basic research to the clinical phase. Trypanosomatid PDEs have characteristic binding pockets that allow for a differential inhibition from their human orthologs. Modification in the approved drugs for human to convert them into trypanocidal treatments could lead to more effective therapies, shorter lab time and lower costs. In view of the fact that kinetoplastid PDEs are highly conserved with their mammalian counterparts, and since there are already numerous drugs on the market against human PDEs, the drug repositioning approach is highly promising. The development of new technologies, higher government and industrial involvement and more scientists committed to basic investigation, are the key to ultimately find an effective treatment and cure for the neglected tropical diseases.
Insights
Trypanosomatid parasites, causing diseases like Chagas and sleeping sickness, utilize a unique cAMP signaling pathway. Targeting their phosphodiesterases (PDEs) offers a promising, cost-effective therapeutic strategy via drug repositioning.
Area of Science:
- Parasitology
- Molecular Biology
- Drug Discovery
Background:
- Trypanosomatids are unicellular eukaryotes causing significant human diseases.
- The second messenger cAMP regulates vital processes in these parasites.
- Their cAMP signaling pathway differs substantially from mammals, presenting unique therapeutic targets.
Purpose of the Study:
- To explore druggable targets within the trypanosomatid cAMP signaling pathway.
- To investigate phosphodiesterases (PDEs) as potential therapeutic targets.
- To evaluate drug repositioning as a strategy for developing new treatments.
Main Methods:
- Comparative analysis of trypanosomatid and human signaling proteins.
- Identification of unique structural features in trypanosomatid PDEs.
- Exploration of drug repositioning for existing PDE inhibitors.
Main Results:
- Trypanosomatid PDEs possess distinct binding pockets compared to human PDEs.
- These differences allow for selective inhibition.
- Drug repositioning of human PDE inhibitors is a viable strategy.
Conclusions:
- Targeting trypanosomatid PDEs offers a promising avenue for novel therapeutics.
- Drug repositioning can accelerate the development of cost-effective treatments.
- Advancements in technology and research commitment are crucial for combating neglected tropical diseases.
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