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.

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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