| Literature DB >> 27671214 |
Raghavendran Ramaswamy1, Sarah Goomeshi Nobary1, Brett A Eyford1,2, Terry W Pearson1, Martin J Boulanger1.
Abstract
African trypanosomiasis, caused by parasites of the genus Trypanosoma, is a complex of devastating vector-borne diseases of humans and livestock in sub-Saharan Africa. Central to the pathogenesis of African trypanosomes is their transmission by the arthropod vector, Glossina spp. (tsetse fly). Intriguingly, the efficiency of parasite transmission through the vector is reduced following depletion of Trypanosoma brucei Procyclic-Specific Surface Antigen-2 (TbPSSA-2). To investigate the underlying molecular mechanism of TbPSSA-2, we determined the crystal structures of its ectodomain and that of its homolog T. congolense Insect Stage Antigen (TcISA) to resolutions of 1.65 Å and 2.45 Å, respectively using single wavelength anomalous dispersion. Both proteins adopt a novel bilobed architecture with the individual lobes displaying rotational flexibility around the central tether that suggest a potential mechanism for coordinating a binding partner. In support of this hypothesis, electron density consistent with a bound peptide was observed in the inter-lob cleft of a TcISA monomer. These first reported structures of insect stage transmembrane proteins expressed by African trypanosomes provide potentially valuable insight into the interface between parasite and tsetse vector.Entities:
Keywords: Trypanosoma brucei; Trypanosoma congolense; X-ray crystallography; bi-lobed architecture; conformational flexibility; ectodomain; tsetse
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Year: 2016 PMID: 27671214 PMCID: PMC5119560 DOI: 10.1002/pro.3053
Source DB: PubMed Journal: Protein Sci ISSN: 0961-8368 Impact factor: 6.725