Braun M, Sievers A
Botanisches Institut, Universität Bonn, Germany.
Eur J Cell Biol. 1994 Apr;63(2):289-98.
The arrangement of the microtubule cytoskeleton in tip-growing and gravisensing Chara rhizoids has been documented by immunofluorescence microscopy. Predominantly axially oriented undulating bundles of cortical microtubules were found in the basal zone of the rhizoids and colocalized with the microfilament bundles underlying the cytoplasmic streaming. Microtubules penetrate the subapical zone, forming a three-dimensional network that envelops the nucleus and organelles. Microtubules are present up to 5 to 10 microns basal from the apical cytoplasmic region containing the statoliths. No microtubules were found in the apical zone of the rhizoid which is the site of tip growth and gravitropism. Depolymerization of microtubules by application of oryzalin does not affect cytoplasmic streaming and gravitropic growth until the relatively stationary and polarly organized apical and subapical cytoplasm is converted into streaming cytoplasm. When the statoliths and the apical cytoplasm are included in the cytoplasmic streaming, tip growth and gravitropism are stopped. Oryzalin-induced disruption of the microtubule cytoskeleton also results in a rearrangement of the dense network of apical and subapical microfilaments into thicker bundles, whereas disruption of the microfilament cytoskeleton by cytochalasin D had no effect on the organization of the microtubule cytoskeleton. It is, therefore, concluded that the arrangement of microtubules is essential for the polar cytoplasmic zonation and the functionally polar organization of the actin cytoskeleton which is responsible for the motile processes in rhizoids. Microtubules are not involved in the primary events of gravitropism in Chara rhizoids.
通过免疫荧光显微镜技术,已经记录了轮藻根状茎在顶端生长和重力感应过程中微管细胞骨架的排列情况。在根状茎的基部区域发现了主要沿轴向排列的起伏状皮质微管束,这些微管束与细胞质流动下方的微丝束共定位。微管穿透根尖下区域,形成一个包围细胞核和细胞器的三维网络。在含有平衡石的顶端细胞质区域基部5到10微米处都存在微管。在根状茎的顶端区域未发现微管,而该区域是顶端生长和向重力性的部位。施用氨磺乐灵使微管解聚,直到相对静止且极性组织化的顶端和根尖下细胞质转变为流动的细胞质之前,都不会影响细胞质流动和向重力性生长。当平衡石和顶端细胞质参与细胞质流动时,顶端生长和向重力性就会停止。氨磺乐灵诱导的微管细胞骨架破坏还会导致顶端和根尖下微丝的致密网络重排为更粗的束状,而细胞松弛素D对微丝细胞骨架的破坏对微管细胞骨架的组织没有影响。因此,可以得出结论,微管的排列对于极性细胞质分区以及肌动蛋白细胞骨架的功能极性组织至关重要,而肌动蛋白细胞骨架负责根状茎中的运动过程。微管不参与轮藻根状茎向重力性的初级事件。