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Using Fluorescent Proteins to Monitor Glycosome Dynamics in the African Trypanosome
Published on: August 19, 2014
A Small Molecule Inhibitor of Pex3-Pex19 Interaction Disrupts Glycosome Biogenesis and Causes Lethality in
Hiren Banerjee1, Paul LaPointe1, Gary Eitzen1
1Department of Cell Biology, University of Alberta, Edmonton, AB, Canada.
Abstract:
Trypanosomatid parasites, including Trypanosoma and Leishmania, are infectious zoonotic agents for a number of severe diseases such as African sleeping sickness and American trypanosomiasis (Chagas disease) that affect millions of people, mostly in the emergent world. The glycosome is a specialized member of the peroxisome family of organelles found in trypanosomatids. These organelles compartmentalize essential enzymes of the glycolytic pathway, making them a prime target for drugs that can kill these organisms by interfering with either their biochemical functions or their formation. Glycosome biogenesis, like peroxisome biogenesis, is controlled by a group of proteins called peroxins (Pex). Pex3 is an early acting peroxin that docks Pex19, the receptor for peroxisomal membrane proteins, to initiate biogenesis of peroxisomes from the endoplasmic reticulum. Identification of Pex3 as the essential master regulator of glycosome biogenesis has implications in developing small molecule inhibitors that can impede Pex3-Pex19 interaction. Low amino acid sequence conservation between trypanosomatid Pex3 and human Pex3 (HsPex3) would aid in the identification of small molecule inhibitors that selectively interfere with the trypanosomatid Pex3-Pex19 interaction. We tested a library of pharmacologically active compounds in a modified yeast two-hybrid assay and identified a compound that preferentially inhibited the interaction of Trypanosoma brucei Pex3 and Pex19 versus HsPex3 and Pex19. Addition of this compound to either the insect or bloodstream form of T. brucei disrupted glycosome biogenesis, leading to mislocalization of glycosomal enzymes to the cytosol and lethality for the parasite. Our results show that preferential disruption of trypanosomal Pex3 function by small molecule inhibitors could help in the accelerated development of drugs for the treatment of trypanosomiases.
Insights
Researchers identified a compound that disrupts glycosome biogenesis in Trypanosoma parasites by inhibiting the Pex3-Pex19 interaction. This finding offers a promising strategy for developing new drugs against African sleeping sickness and Chagas disease.
Area of Science:
- Parasitology
- Cell Biology
- Drug Discovery
Background:
- Trypanosomatid parasites cause severe neglected tropical diseases like sleeping sickness and Chagas disease.
- Glycosomes, specialized organelles in trypanosomatids, are crucial for parasite survival and are key drug targets.
- Glycosome biogenesis is regulated by peroxins (Pex), with Pex3 and Pex19 playing critical roles.
Purpose of the Study:
- To identify small molecules that selectively inhibit the interaction between trypanosomal Pex3 and Pex19.
- To investigate the potential of targeting Pex3-Pex19 interaction for developing novel anti-parasitic drugs.
Main Methods:
- Utilized a modified yeast two-hybrid assay to screen pharmacologically active compounds.
- Tested compound efficacy in disrupting Pex3-Pex19 interaction in *Trypanosoma brucei*.
- Assessed the impact of the identified compound on glycosome biogenesis and parasite viability.
Main Results:
- Identified a compound that preferentially inhibits the interaction of *Trypanosoma brucei* Pex3 and Pex19 over human homologs.
- The compound disrupted glycosome biogenesis in both insect and bloodstream forms of *T. brucei*.
- Disruption led to mislocalization of glycosomal enzymes and parasite lethality.
Conclusions:
- Targeting the trypanosomal Pex3-Pex19 interaction with small molecule inhibitors is a viable strategy for drug development.
- Selective inhibition of Pex3 function offers a promising avenue for treating trypanosomiases.
- This research accelerates the development of urgently needed drugs for neglected tropical diseases.
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