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Chlamydomonas flagellar mutants lacking radial spokes and central tubules. Structure, composition, and function of specific axonemal components

机译:衣原体鞭毛突变体缺乏放射状辐条和中央小管。特定轴突成分的结构,组成和功能

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摘要

The fine structure, protein composition, and roles in flagellar movement of specific axonemal components were studied in wild-type Chlamydomonas and paralyzed mutants pf-14, pf-15A, and pf-19. Electron microscope examination of the isolated axoneme of pf-14 showed that it lacks the radial spokes but is otherwise structurally normal. Comparison of isolated axonemes of wild type and pf-14 by sodium dodecyl sulfate-acrylamide gel electrophoresis indicated that the mutant is missing a protein of 118,000 mol wt; this protein is apparently a major component of the spokes. Pf-15A and pf-19 lack the central tubules and sheath; axonemes of these mutants are missing three high molecular weight proteins which are probably components of the central tubule-central sheath complex. Under conditions where wild-type axonemes reactivated, axonemes of the three mutants remained intact but did not form bends. However, mutant and wild-type axonemes underwent identical adenosine triphosphate-induced disintegration after treatment with trypsin; the dynein arms of the mutants are therefore capable of generating interdoublet shearing forces. These findings indicated that both the radial spokes and the central tubule-central sheath complex are essential for conversion of interdoublet sliding into axonemal bending. Moreover, because axonemes of pf-14 remained intact under reactivating conditions, the nexin links alone are sufficient to limit the amount of interdoublet sliding that occurs. The axial periodicities of the central sheath, dynein arms, radial spokes, and nexin links of Chlamydomonas were determined by electron microscopy using the lattice- spacing of crystalline catalase as an internal standard. Some new ultrastructural details of the components are described.
机译:在野生型衣藻和瘫痪的突变体pf-14,pf-15A和pf-19中研究了精细结构,蛋白质组成以及特定轴突组分在鞭毛运动中的作用。电子显微镜检查的pf-14分离的轴突显示,它缺乏放射状辐条,但在结构上是正常的。通过十二烷基硫酸钠-丙烯酰胺凝胶电泳比较分离的野生型和pf-14的轴突,表明该突变体缺少一种118,000 mol wt的蛋白质。这种蛋白质显然是辐条的主要成分。 Pf-15A和pf-19缺少中央小管和鞘;这些突变体的轴突缺少三种高分子量蛋白,它们可能是中央小管-中央鞘复合物的组成部分。在野生型轴突蛋白重新活化的条件下,三个突变体的轴突蛋白保持完整,但没有形成弯曲。然而,用胰蛋白酶处理后,突变型和野生型轴蛋白都经历了相同的三磷酸腺苷诱导的崩解。因此,突变体的动力蛋白臂能够产生双线剪切力。这些发现表明,放射状辐条和中央小管-中央鞘复合体对于将双联体滑动转换为轴突弯曲都是必不可少的。此外,由于pf-14的轴突在再活化条件下保持完整,因此单独的神经元连接就足以限制双链体间滑动的发生。使用结晶过氧化氢酶的晶格间距作为内标,通过电子显微镜确定衣藻的中心鞘,动力蛋白臂,放射状辐条和神经元连接的轴向周期性。描述了组件的一些新的超微结构细节。

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