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High-throughput Gene Tagging in Trypanosoma brucei
Published on: August 12, 2016
Molecular cloning of p67, a lysosomal membrane glycoprotein from Trypanosoma brucei
R J Kelley1, D L Alexander, C Cowan
1Department of Immunology, Duke University Medical Center, Durham, NC 27710, USA.
Abstract:
We have previously characterized a highly glycosylated membrane protein (p67) in Trypanosoma brucei spp that is apparently targeted to lysosomes in a developmentally regulated manner. Antibody to native p67 identified a partial cDNA clone from a T. b. rhodesiense expression library and RT-PCR was used to complete the sequence of the cDNA. Equal levels of p67 transcript are detected in both procyclic and bloodstream stages of the life cycle. The 2771 nt cDNA contains a 1980 nt orf encoding a 659 amino acid polypeptide (72,567 Da). Hydropathy analysis predicts a Type I membrane topology (N to C): an N-terminal signal sequence, a large hydrophilic lumenal domain with 14 N-glycosylation sites, a trans-membrane domain (19 aa), and a short (24 aa) cytoplasmic domain. Peptide microsequencing of purified p67 identified nine residues identical to the deduced amino acid sequence, confirming the identity of the cDNA and defining the signal sequence cleavage site. Antibody to p67 protein produced in E. coli recognizes the same spectrum of native p67 glycoforms as the antibody used to clone the cDNA. All features of the deduced amino acid sequence are consistent with the known properties of the native protein and suggest a structure similar to mammalian LAMPS. The cytoplasmic domain contains two putative di-leucine targeting motifs similar to those involved in lysosomal targeting in vertebrate cells. Our results suggest that a single p67 polypeptide, or a group of highly related polypeptides, is synthesized in both bloodstream and procyclic trypanosomes and that subsequent post-translational processing and lysosomal targeting is subject to stage-specific regulation.
Insights
This study characterizes the p67 protein in Trypanosoma brucei, revealing its transcript is present in all life stages. Lysosomal targeting of p67 is regulated differently depending on the parasite
Area of Science:
- Parasitology
- Molecular Biology
- Cell Biology
Background:
- Trypanosoma brucei spp. exhibits developmental regulation of protein targeting.
- The p67 protein is a highly glycosylated membrane protein found in T. brucei.
- Previous work suggested p67 is targeted to lysosomes in a developmentally regulated manner.
Purpose of the Study:
- To characterize the p67 protein in Trypanosoma brucei.
- To determine the molecular basis for the developmental regulation of p67 lysosomal targeting.
- To confirm the cDNA sequence and protein structure of p67.
Main Methods:
- cDNA cloning using an expression library and RT-PCR.
- Hydropathy analysis for membrane topology prediction.
- Peptide microsequencing for protein identity confirmation.
- Antibody-based characterization of native and recombinant p67.
Main Results:
- Full-length p67 cDNA sequence (2771 nt) and protein sequence (659 aa) were determined.
- Hydropathy analysis predicted a Type I membrane protein with specific domains.
- Peptide microsequencing confirmed cDNA identity and signal sequence cleavage site.
- p67 transcript levels are equal in procyclic and bloodstream stages.
- Cytoplasmic domain contains di-leucine motifs suggesting lysosomal targeting mechanisms.
Conclusions:
- A single p67 polypeptide is synthesized in both bloodstream and procyclic trypanosomes.
- Post-translational processing and lysosomal targeting of p67 are subject to stage-specific regulation.
- p67 structure is similar to mammalian lysosomal membrane proteins (LAMPs).

