Trypanosome doublet microtubule structures reveal flagellum assembly and motility mechanisms.

Xia, Xian; Shimogawa, Michelle M; Wang, Hui; Liu, Samuel; Wijono, Angeline; Langousis, Gerasimos; Kassem, Ahmad M; Wohlschlegel, James A et al. · Science · 2025

basic_science · Level V

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Abstract

The flagellum of <i>Trypanosoma brucei</i> drives the parasite's characteristic screw-like motion and is essential for its replication, transmission, and pathogenesis. However, the molecular details of this process remain unclear. Here, we present high-resolution (up to 2.8 angstrom) cryo-electron microscopy structures of <i>T. brucei</i> flagellar doublet microtubules (DMTs). Integrated modeling identified 154 different axonemal proteins inside and outside the DMT and, together with genetic and proteomic interrogation, revealed conserved and trypanosome-specific foundations of flagellum assembly and motility. We captured axonemal dynein motors in their pre-power stroke state. Comparing atomic models between pre- and post-power strokes defined how dynein structural changes drive sliding of adjacent DMTs during flagellar beating. This study illuminates structural dynamics underlying flagellar motility and identifies pathogen-specific proteins to consider for therapeutic interventions targeting neglected diseases.

Medical subject headings