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皮层下微管与原生动物寄生虫刚地弓形虫的膜内颗粒晶格相关联。

Subpellicular microtubules associate with an intramembranous particle lattice in the protozoan parasite Toxoplasma gondii.

作者信息

Morrissette N S, Murray J M, Roos D S

机构信息

Department of Biology, University of Pennsylvania, Philadelphia 19104-6018, USA.

出版信息

J Cell Sci. 1997 Jan;110 ( Pt 1):35-42. doi: 10.1242/jcs.110.1.35.

Abstract

Application of Fourier analysis techniques to images of isolated, frozen-hydrated subpellicular microtubules from the protozoan parasite Toxoplasma gondii demonstrates a distinctive 32 nm periodicity along the length of the microtubules. A 32 nm longitudinal repeat is also observed in the double rows of intramembranous particles seen in freeze-fracture images of the parasite's pellicle; these rows are thought to overlie the subpellicular microtubules. Remarkably, the 32 nm intramembranous particle periodicity is carried over laterally to the single rows of particles that lie between the microtubule-associated double rows. This creates a two-dimensional particle lattice, with the second dimension at an angle of approximately 75 degrees to the longitudinal rows (depending on position along the length of the parasite). Drugs that disrupt known cytoskeletal components fail to destroy the integrity of the particle lattice. This intramembranous particle organization suggests the existence of multiple cytoskeletal filaments of unknown identity. Filaments associated with the particle lattice provide a possible mechanism for motility and shape change in Toxoplasma: distortion of the lattice may mediate the twirling motility seen upon host-cell lysis, and morphological changes observed during invasion.

摘要

将傅里叶分析技术应用于原生动物寄生虫刚地弓形虫分离的冻水合皮层下微管图像,结果显示沿微管长度存在独特的32纳米周期性。在该寄生虫皮层的冷冻断裂图像中看到的膜内颗粒双行中也观察到32纳米的纵向重复;这些行被认为覆盖在皮层下微管之上。值得注意的是,32纳米的膜内颗粒周期性横向延伸到位于微管相关双行之间的单行颗粒。这形成了一个二维颗粒晶格,第二维与纵向行成约75度角(取决于沿寄生虫长度的位置)。破坏已知细胞骨架成分的药物未能破坏颗粒晶格的完整性。这种膜内颗粒组织表明存在身份不明的多种细胞骨架细丝。与颗粒晶格相关的细丝为弓形虫的运动和形状变化提供了一种可能的机制:晶格的扭曲可能介导宿主细胞裂解时看到的旋转运动,以及入侵期间观察到的形态变化。

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