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Purification of Extracellular Trypanosomes, Including African, from Blood by Anion-Exchangers Diethylaminoethyl-cellulose Columns
Published on: April 6, 2019
Two cold shock domain containing proteins trigger the development of infectious Trypanosoma brucei
Justin Y Toh1, Agathe Nkouawa1, Gang Dong2
1Department of Epidemiology of Microbial Diseases, Yale School of Public Health, New Haven, Connecticut, United States of America.
Abstract:
Cold shock proteins are members of a family of DNA- and RNA-binding proteins with one or more evolutionarily conserved cold shock domain (CSD). These proteins have a wide variety of biological functions, including DNA-damage repair, mRNA stability, and regulation of transcription, splicing and translation. We previously identified two CSD containing proteins, CSD1 and CSD2, in the protozoan parasite Trypanosoma brucei to be required for RBP6-driven metacyclic production, albeit at different steps of the developmental program. During metacyclogenesis T. brucei undergoes major morphological and metabolic changes that culminate in the establishment of quiescent metacyclic parasites and the acquisition of mammalian infectivity. To investigate the specific role of CSD1 and CSD2 in this process, we ectopically expressed CSD1 or CSD2 in non-infectious procyclic parasites and discovered that each protein is sufficient to produce infectious metacyclic parasites in 24 hours. Domain truncation assays determined that the N-terminal domain, but not the C-terminal domain, of CSD1 and CSD2 was required for metacyclic development. Furthermore, conserved amino acid residues in the CSD of CSD1 and CSD2, known to be important for binding nucleic acids, were found to be necessary for metacyclic production. Using single-end enhanced crosslinking and immunoprecipitation (seCLIP) we identified the specific binding motif of CSD1 and CSD2 as "ANACAU" and the bound mRNAs were enriched for biological processes, including lipid metabolism, microtubule-based movement and nucleocytoplasmic transport that are likely involved in the transition to bloodstream form-like cells.
Insights
Two cold shock domain (CSD) proteins in Trypanosoma brucei are crucial for producing infectious metacyclic parasites. Their N-terminal domains and nucleic acid-binding sites are essential for this developmental transition.
Area of Science:
- Molecular Biology
- Parasitology
- Cell Biology
Background:
- Cold shock proteins (CSDs) are DNA/RNA-binding proteins involved in diverse cellular processes.
- CSD1 and CSD2 in Trypanosoma brucei are implicated in metacyclic production, a key developmental stage for parasite infectivity.
Purpose of the Study:
- To elucidate the specific roles of CSD1 and CSD2 in Trypanosoma brucei metacyclogenesis.
- To identify the functional domains and nucleic acid-binding requirements of CSD1 and CSD2 during parasite development.
Main Methods:
- Ectopic expression of CSD1 and CSD2 in procyclic parasites.
- Domain truncation assays to map functional regions.
- Single-end enhanced crosslinking and immunoprecipitation (seCLIP) to identify RNA targets.
Main Results:
- Ectopic expression of CSD1 or CSD2 alone induced infectious metacyclic parasite production within 24 hours.
- The N-terminal domain, not the C-terminal domain, of CSD1 and CSD2 was essential for metacyclic development.
- Conserved nucleic acid-binding residues within the CSD were necessary for metacyclic production.
- seCLIP identified the CSD1/CSD2 binding motif as "ANACAU" and enriched bound mRNAs in lipid metabolism, microtubule-based movement, and nucleocytoplasmic transport pathways.
Conclusions:
- CSD1 and CSD2 are sufficient to drive metacyclogenesis in Trypanosoma brucei.
- Specific domains and nucleic acid-binding capabilities of CSDs are critical for parasite development and infectivity.
- CSD1 and CSD2 regulate key cellular processes during the transition to infective bloodstream forms.

