Department of Biophysics and Department of Critical Care Medicine of Sir Run Run Shaw Hospital, Zhejiang University School of Medicine, Hangzhou, 310058, China.
College of Life Sciences, Zhejiang University, Hangzhou, 310058, China.
Nat Commun. 2024 Feb 22;15(1):1628. doi: 10.1038/s41467-024-46018-z.
Euglena gracilis, a model organism of the eukaryotic supergroup Discoba harbouring also clinically important parasitic species, possesses diverse metabolic strategies and an atypical electron transport chain. While structures of the electron transport chain complexes and supercomplexes of most other eukaryotic clades have been reported, no similar structure is currently available for Discoba, limiting the understandings of its core metabolism and leaving a gap in the evolutionary tree of eukaryotic bioenergetics. Here, we report high-resolution cryo-EM structures of Euglena's respirasome I + III + IV and supercomplex III + IV. A previously unreported fatty acid synthesis domain locates on the tip of complex I's peripheral arm, providing a clear picture of its atypical subunit composition identified previously. Individual complexes are re-arranged in the respirasome to adapt to the non-uniform membrane curvature of the discoidal cristae. Furthermore, Euglena's conformationally rigid complex I is deactivated by restricting ubiquinone's access to its substrate tunnel. Our findings provide structural insights for therapeutic developments against euglenozoan parasite infections.
绿眼虫,真核超组 Discoba 的模式生物,也拥有临床上重要的寄生种,具有多样化的代谢策略和非典型的电子传递链。虽然已经报道了大多数其他真核类群的电子传递链复合物和超级复合物的结构,但目前还没有 Discoba 的类似结构,这限制了对其核心代谢的理解,并在真核生物生物能进化树中留下了一个空白。在这里,我们报告了绿眼虫(respirasome I + III + IV)和超级复合物 III + IV 的高分辨率冷冻电镜结构。一个以前未报道的脂肪酸合成结构域位于复合物 I 的外周臂的顶端,为以前确定的其非典型亚基组成提供了清晰的图片。在呼吸体中,各个复合物被重新排列以适应盘状嵴的非均匀膜曲率。此外,绿眼虫构象刚性的复合物 I 通过限制泛醌进入其底物隧道而失活。我们的发现为针对 Euglenozoa 寄生虫感染的治疗开发提供了结构见解。