鞭毛
轴丝
生物
动力蛋白
微管
束状虫
细胞生物学
运动性
布氏锥虫
纤毛
模式生物
低温电子显微
鞭毛内运输
GTP酶
利什曼原虫
基因
遗传学
生物物理学
寄生虫寄主
原生动物
万维网
计算机科学
作者
Matthew Doran,Qingwei Niu,Jianwei Zeng,Tom Beneke,James Smith,Peter Ren,Sophia Fochler,Adrian Coscia,Johanna L. Höög,Shimi Meleppattu,Polina V. Lishko,Richard John Wheeler,Eva Gluenz,Rui Zhang,Alan Brown
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2025-03-13
卷期号:387 (6739)
标识
DOI:10.1126/science.adr5507
摘要
The movement and pathogenicity of trypanosomatid species, the causative agents of trypanosomiasis and leishmaniasis, are dependent on a flagellum that contains an axoneme of dynein-bound doublet microtubules (DMTs). In this work, we present cryo–electron microscopy structures of DMTs from two trypanosomatid species, Leishmania tarentolae and Crithidia fasciculata , at resolutions up to 2.7 angstrom. The structures revealed 27 trypanosomatid-specific microtubule inner proteins, a specialized dynein-docking complex, and the presence of paralogous proteins that enable higher-order periodicities or proximal-distal patterning. Leveraging the genetic tractability of trypanosomatid species, we quantified the location and contribution of each structure-identified protein to swimming behavior. Our study shows that proper B-tubule closure is critical for flagellar motility, exemplifying how integrating structural identification with systematic gene deletion can dissect individual protein contributions to flagellar motility.
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