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Deciphering the Molecular Mechanism and Function of Pore-Forming Toxins Using Leishmania major
Published on: October 28, 2022
LeishIF4E-5 Is a Promastigote-Specific Cap-Binding Protein in Leishmania
Rohit Shrivastava1, Nitin Tupperwar1,2, Bar Schwartz1
1Department of Life Sciences, Ben-Gurion University of the Negev, Beer-Sheva 84105, Israel.
Abstract:
Leishmania parasites cycle between sand fly vectors and mammalian hosts, transforming from extracellular promastigotes that reside in the vectors' alimentary canal to obligatory intracellular non-motile amastigotes that are harbored by macrophages of the mammalian hosts. The transition between vector and host exposes them to a broad range of environmental conditions that induces a developmental program of gene expression, with translation regulation playing a key role. The Leishmania genome encodes six paralogs of the cap-binding protein eIF4E. All six isoforms show a relatively low degree of conservation with eIF4Es of other eukaryotes, as well as among themselves. This variability could suggest that they have been assigned discrete roles that could contribute to their survival under the changing environmental conditions. Here, we describe LeishIF4E-5, a LeishIF4E paralog. Despite the low sequence conservation observed between LeishIF4E-5 and other LeishIF4Es, the three aromatic residues in its cap-binding pocket are conserved, in accordance with its cap-binding activity. However, the cap-binding activity of LeishIF4E-5 is restricted to the promastigote life form and not observed in amastigotes. The overexpression of LeishIF4E-5 shows a decline in cell proliferation and an overall reduction in global translation. Immuno-cytochemical analysis shows that LeishIF4E-5 is localized in the cytoplasm, with a non-uniform distribution. Mass spectrometry analysis of proteins that co-purify with LeishIF4E-5 highlighted proteins involved in RNA metabolism, along with two LeishIF4G paralogs, LeishIF4G-1 and LeishIF4G-2. These vary in their conserved eIF4E binding motif, possibly suggesting that they can form different complexes.
Insights
Leishmania parasites
Area of Science:
- Parasitology
- Molecular Biology
- Biochemistry
Background:
- Leishmania parasites undergo developmental transitions between sand fly vectors and mammalian hosts.
- These transitions involve significant gene expression changes, with translation regulation being crucial.
- The Leishmania genome encodes six eukaryotic initiation factor 4E (eIF4E) paralogs with low sequence conservation.
Purpose of the Study:
- To characterize LeishIF4E-5, a specific paralog of eIF4E in Leishmania.
- To investigate the function and regulation of LeishIF4E-5 during parasite development.
- To identify interacting partners of LeishIF4E-5.
Main Methods:
- Sequence analysis of LeishIF4E-5.
- Assessing cap-binding activity in different life stages.
- Overexpression studies to evaluate effects on proliferation and translation.
- Immunocytochemistry for subcellular localization.
- Mass spectrometry to identify co-purifying proteins.
Main Results:
- LeishIF4E-5 possesses conserved aromatic residues for cap-binding activity, but this activity is restricted to the promastigote stage.
- Overexpression of LeishIF4E-5 impairs cell proliferation and reduces global translation.
- LeishIF4E-5 localizes to the cytoplasm and interacts with RNA metabolism proteins and LeishIF4G paralogs.
Conclusions:
- LeishIF4E-5 plays a stage-specific role in translation regulation during Leishmania development.
- Its distinct interactions suggest specialized functions within translation initiation complexes.
- LeishIF4E-5 represents a potential target for anti-Leishmania therapies.

