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A Genetic Screen to Isolate Toxoplasma gondii Host-cell Egress Mutants
Published on: February 8, 2012
Structural basis for emetine inhibition of ribosome translocation in Toxoplasma gondii
Wenzhao Dong1,2,3, Fengrong Wang1,2,3,4,5, Brenna A Saladin1,2,3
1Department of Biological Chemistry, University of Michigan, Ann Arbor, MI 48109, USA.
Abstract:
Apicomplexan parasites, including Toxoplasma gondii and Plasmodium falciparum, are major human pathogens that cause toxoplasmosis and malaria, respectively. The existing structures of T. gondii translational machinery are from empty ribosomes that lack several key components, including ribosomal protein RACK1 (Receptor for Activated C Kinase 1). Here, we used cryo-electron microscopy (cryoEM) to determine high-resolution structures of T. gondii ribosomal complexes, including a translating 80S ribosome bound to mRNA and tRNA. These structures reveal that RACK1 occupies the conserved binding site on the 40S subunit observed in other eukaryotic ribosomes. We also determined the architecture of the ribosomal P-stalk and identified the ribosomal proteins uL10 and uL11, which were not observed in previous T. gondii ribosome structures. In addition, we determined structures of the 80S ribosome bound to mRNA, tRNA, and the translation inhibitor emetine in two distinct conformational states. These snapshots reveal two mechanisms by which emetine inhibits the translocation step of mRNA translation: either by dislodging the mRNA from the E-site of the ribosome or by acting as a molecular glue within the E-site, thereby stalling translocation. Together, these findings provide new insights into the molecular basis of protein synthesis in apicomplexan parasites and establish a structural framework for the development of future antiparasitic therapeutics.
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