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1.
微管骨架是细胞骨架系统的主要组成成员,大多数微管的一个显著特征便是具有能够不断解聚、聚合的动态特性,这是微管骨架完成诸多生理功能的重要保证。本文着重介绍了有关微管的动态模型及其体内、体外组装的不同特点,并进一步探讨了生物体在各层次、各水平上对细胞内微管行为的调控。  相似文献   

2.
植物细胞微管骨架的不同排列方式对细胞的生长分化及形态建成具有重要意义,微管的这种动态组织行为不仅需要自身的组成蛋白-微管蛋白(tubulin),还要有微管辅助蛋白MAPs(Microtubule-associated proteins)的参与[1,2]。即MAPs是一类能够与微管骨架特异结合并调节其动态装配过程及其结构、进而影响微管功能的蛋白大分子。其中,MAP65是最先在烟草悬浮细胞BY-2中纯化出来的、分子量约为65KDa的一个微管结合蛋白家族。  相似文献   

3.
原生动物贻贝棘尾虫微管胞器的荧光标记与显示   总被引:17,自引:4,他引:13  
采用FLUTAX直接荧光标记和抗α微管蛋白抗体的间接免疫荧光标记显示,原生动物贻贝棘尾虫(Stylonychia mytilus)细胞微管胞器由口围带、波动膜、额腹横棘毛、左右缘棘毛、背纤毛等纤毛器微管骨架、纤毛器基部附属微管和其他皮层微管骨架组成。纤毛器微管骨架和基部附属微管按皮层纤毛模式定位;皮层左、右侧微管带和领肋壁微管等其他皮层微管构成细胞特定位置的皮层微管骨架,并可能为具有背腹分化的腹毛目纤毛虫所特有,对维持细胞背腹面的形态、支持附近纤毛器(如左、右缘棘毛)的运动起作用。本文较完整地阐述了其细胞骨架的三维构形,对于深入了解纤毛虫细胞微管骨架的结构和分布特征,进一步揭示微管类胞器的功能是有意义的。  相似文献   

4.
微管骨架在植物适应低温胁迫中的功能研究进展   总被引:4,自引:0,他引:4  
植物细胞骨架对低温胁迫的响应是近年来研究的一个活跃的前沿领域。本文综述了该领域研究的进展情况和发展趋势:植物微管骨架的结构和功能的简介,低温诱导植物细胞微管骨架稳定性的变化;并对微管骨架在冷信号传导中的作用进行了探讨。  相似文献   

5.
沈锦波 《植物学报》2018,53(6):741-744
微管是细胞骨架的重要组成部分,为真核细胞生命活动所必需。与其它生物体类似,微管不仅在植物生长发育中起重要作用,而且参与响应外界环境信号。近期,中国科学家在解析植物微管精准切割及微管骨架动态重构调控机制的研究中取得突破性进展。  相似文献   

6.
本文建立了单细胞免疫荧光标记技术并以此结合单对细胞融合技术对细胞融合过程中微管骨架组织形式的动态变化进行了追踪观察。发现在聚乙二醇(PEG)诱导条件下,一旦细胞开始粘连,细胞内微管骨架便开始解聚。在细胞融合的整个过程中一直维持着这种解聚的状态,直到融合完成,在后续的培养中微管骨架才重新出现。在微管骨架呈解聚状态时融合产物不能完成与另外的细胞融合。实验揭示了细胞的再融合能力可能受细胞本身微管骨架状态的影响。该结果为解释高等植物如何避免多精入卵提供了新的可能性。  相似文献   

7.
本文建立了单细胞免疫荧光标记技术并以此结合单对细胞融合技术对细胞融合过程中微管骨架组织形式的动态变化进行了追踪观察。发现在聚乙二醇(PEG)诱导条件下,一旦细胞开始粘连,细胞内微管骨架便开始解聚。在细胞融合的整个过程中一直维持着这种解聚的状态,直到融合完成,在后续的培养中微管骨架才重新出现。在微管骨架呈解聚状态时融合产物不能完成与另外的细胞融合。实验揭示了细胞的再融合能力可能受细胞本身微管骨架状态的影响。该结果为解释高等植物如何避免多精入卵提供了新的可能性。  相似文献   

8.
细胞极性的确立是真核生物发育过程中的关键环节,丝状真菌作为微生物具有典型的极性生长模式,微管骨架在极性生长中具有重要的作用。对近年来微管骨架在丝状真菌极性生长中的作用进行了综述。  相似文献   

9.
何群  尤瑞麟 《植物学通报》2004,21(5):547-555
微管骨架在植物发育过程中起重要作用.由于植物细胞的特殊性,与动物细胞相比植物微管骨架的研究遇到更多的困难.简略地介绍了曾被国内外学者应用的植物微管骨架的各种研究方法及其局限性.Steedman's wax是一种多脂蜡.它熔点低(35~37℃),具有与石蜡相同的切片性质,能够切成不同厚度的连续切片,适合深埋于器官内部的组织或细胞的免疫细胞化学研究.介绍了应用Steedman's wax切片法观察植物细胞微管骨架的一般程序和方法以及经过作者检验且切实可行的一些技术改进.  相似文献   

10.
冰冻切片法在植物微管骨架研究中的应用   总被引:3,自引:0,他引:3  
介绍了冰冻切片法研究植物微管骨架的一般程序和技术上的一些改进,结果证明,改进的冰冻切片技术,可以对植物不同类型的细胞进行很好的标记。实验结果表明,甘蔗正在迅速伸长的幼叶分布的微管类型主要是与细胞伸长轴方向垂直的周质微管,幼叶基部尤其是第三幼叶基部分布的主要是与细胞伸长轴方向平行的周质微管。表明冰冻切片法在植物微管骨架的研究中具有广阔的应用前景。  相似文献   

11.
T. Hogetsu 《Planta》1986,167(4):437-443
Immunofluorescence microscopy was used to examine the re-formation of microtubules (MT), after cold-induced depolymerization, in Closterium ehrenbergii. The C. ehrenbergii cells undergo cell division followed by semicell expansion in the dark period of daily light-dark cycles. Five types of MTs, namely the MT ring, hair-like MTs around the nuclei, spindle MTs, radially arranged MTs and transverse wall MTs, appeared and disappeared sequentially during and following cell division. The wall MTs were distributed transversely only in the expanding new semicells. When cells were chilled in ice water, wall MTs in expanding cells were fragmented, and then disappeared as did the other types of MTs, within 5 min. When cells were warmed at 20°C after 2 h chilling, wall MTs and the other types of MTs re-formed. At the early stage of wall-MT re-formation in expanding cells, small, star-like MTs were formed, and then randomly oriented MTs developed in both the expanding new and the old semicells. The MT ring was also re-formed at the boundary between the new and old semicells. There were no obvious MT-organizing centers in the random arrangement. As time passed, the randomly oriented wall MTs in the old semicells disappeared and those in the expanding new semicells gradually assumed a transverse orientation. These results indicate that wall MTs can be rearranged transversely after they have been re-formed and that nucleation of wall MTs is separable from the mechanism for ordering them.Abbreviations MT(s) microtubule(s) - MTOC(s) microtubule-organizing center(s)  相似文献   

12.
Tannic acid fixation reveals differences in the number of protofilaments between microtubules (MTs) in the nematode Caenorhabditis elegans. Most cells have MTs with 11 protofilaments but the six touch receptor neurons (the microtubule cells) have MTs with 15 protofilaments. No 13-protofilament (13-p) MT has been seen. The modified cilia of sensory neurons also possess unusual structures. The cilia contain nine outer doublets with A subfibers of 13 protofilaments and B subfibers of 11 protofilaments and a variable number of inner singlet MTs containing 11 protofilaments. The 15-p MTs but not the 11-p MTs are eliminated by colchicine-treatment or by mutation of the gene mec-7. Concomitantly, touch sensitivity is also lost. However, whereas colchicine treatment leads to the loss of all MTs from the microtubule cells, mutations in mec-7 result in the partial replacement of the 15-p MTs with 11-p MTs. Benzimidazoles (benomyl and nocodazole) have more general effects on C. elegans (slow growth, severe uncoordination, and loss of processes from the ventral cord) but do not affect the 15-p MTs. Benomyl will, however, disrupt the replacement 11-p MTs found in the microtubule cells of mec-7 mutants. The 11-p and 15-p MTs also respond differently to temperature and fixation conditions. It is likely that either type of MT will suffice for the proper outgrowth of the microtubule cell process, but only the 15-p MT can function in the specialized role of sensory transduction of the microtubule cells.  相似文献   

13.
The polarity of kinetochore microtubules (MTs) has been studied in lysed PtK1 cells by polymerizing hook-shaped sheets of neurotubulin onto walls of preexisting cellular MTs in a fashion that reveals their structural polarity. Three different approaches are presented here: (a) we have screened the polarity of all MTs in a given spindle cross section taken from the region between the kinetochores and the poles, (b) we have determined the polarity of kinetochore MTs are more stable to cold-treated spindles; this approach takes advantage of the fact that kinetochore MTs are more stable to cold treatment than other spindle MTs; and (c) we have tracked bundles of kinetochore MTs from the vicinity of the pole to the outer layer of the kinetochore in cold- treated cells. In an anaphase cell, 90-95% of all MTs in an area between the kinetochores and the poles are of uniform polarity with their plus ends (i.e., fast growing ends) distal to the pole. In cold- treated cells, all bundles of kinetochore MTs show the same polarity; the plus ends of the MTs are located at the kinetochores. We therefore conclude that kinetochore MTs in both metaphase and anaphase cells have the same polarity as the aster MTs in each half-spindle. These results can be interpreted in two ways: (a) virtually all MTs are initiated at the spindle poles and some of the are "captured" by matured kinetochores using an as yet unknown mechanism to bind the plus ends of existing MTs; (b) the growth of kinetochore MTs is initiated at the kinetochore in such a way that the fast growing MT end is proximal to the kinetochore. Our data are inconsistent with previous kinetochore MT polarity determinations based on growth rate measurements in vitro. These studies used drug-treated cells from which chromosomes were isolated to serve as seeds for initiation of neurotubule polymerization. It is possible that under these conditions kinetochores will initiate MTs with a polarity opposite to the one described here.  相似文献   

14.
Kaori Takesue  Hiroh Shibaoka 《Planta》1998,205(4):539-546
The orientation of microtubules (MTs) was examined in epidermal cells of azuki bean (Vigna angularis Ohwi et Ohashi) epicotyls. The orientation of MTs adjacent to the outer tangential wall of the cells, which has a crossed polylamellate structure with lamellae of longitudinal cellulose microfibrils alternating with lamellae of transverse cellulose microfibrils, differed from one cell to another. Treatment with an auxin-free solution caused the accumulation of cells with longitudinal MTs and subsequent treatment with a solution that contained auxin resulted in the accumulation of cells with transverse MTs, showing that sequential treatments with auxin-free and auxin-containing solutions can synchronize the reorientation of MTs. The MTs, once reoriented from longitudinal to transverse, returned to longitudinal and then back to transverse once again, the duration of the cycle being about 6 h. Gibberellic acid, known to increase the percentage of cells with transverse MTs, promoted reorientation of MTs from longitudinal to transverse and inhibited that from transverse to longitudinal. Cytochalasin D, an agent that disrupts actin filaments, speeded up the reorientation from transverse to longitudinal and slowed down that from longitudinal to transverse. It caused an increase in the percentage of cells with MTs in mixed orientation, and the percentage of such cells was highest when the percentage of cells with longitudinal MTs was decreasing and that of cells with transverse MTs was increasing. Received: 27 November 1997 / Accepted: 7 January 1998  相似文献   

15.
Summary Microtubule (MT) arrays in stomatal complexes ofLolium have been studied using cryosectioning and immunofluorescence microscopy. This in situ analysis reveals that the arrangement of MTs in pairs of guard cells (GCs) or subsidiary cells (SCs) within a complex is very similar, indicating that MT deployment is closely coordinated during development. In premitotic guard mother cells (GMCs), MTs of the transverse interphase MT band (IMB) are reorganized into a longitudinal array via a transitory array in which the MTs appear to radiate from the cell edges towards the centre of the walls. Following the longitudinal division of GMCs, cortical MTs are reinstated in the GCs at the edge of the periclinal and ventral walls. The MTs become organized into arrays which radiate across the periclinal walls, initially from along the length of the ventral wall and later only from the pore site. As the GCs elongate, the organization of MTs and the patterns of wall expansion differ on the internal and external periclinal walls. A final reorientation of MTs from transverse to longitudinal is associated with the elongation and constriction of GCs to produce mature complexes. During cytokinesis in the subsidiary mother cells (SMCs), MTs appear around the reforming nucleus in the daughter epidermal cells but appear in the cortex of the SC once division is complete. Our results are thus consistent with the idea that interphase MTs are nucleated in the cell cortex in all cells of the stomatal complex but not in adjacent epidermal cells.Abbreviations GMC guard mother cell - GC guard cell - IMB interphase microtubule band - MT microtubule - PPB preprophase band - SMC subsidiary mother cell - SC subsidiary cell  相似文献   

16.
Mizuno K 《Plant physiology》1992,100(2):740-748
In suspension-cultured tobacco (Nicotiana tabacum) cells, we have often encountered cold-stable microtubules (MTs). The cold-stable MTs were found in the pelleted fraction of tobacco cell homogenates. These cold-stable MTs were shown to be accompanied by unidentified filamentous structures that extended along part of their length. However, during the early hours in culture such cold-stable MTs were never observed. They were detectable from 120 h after the beginning of subculture and then their numbers increased gradually. The number of cells with cold-stable MTs eventually accounted for more than 95% of the total population of cells at the stationary phase of culture. The rapid loss of cold stability of MTs occurred when such cells were transferred to fresh medium for subculture. However, if the fresh medium was supplemented with once-used medium, the cold stability of MTs was retained. The active agent in the medium appeared to be of low molecular weight and to be heat resistant. A similar activity was detected in a pectin hydrolyzate. When an inhibitor of protein kinase, either 6-dimethylaminopurine or staurosporin, was added to the cells at an early stage of culture, when cold-stable MTs were normally completely absent, most cells acquired cold-stable MTs. It appears that acquisition or loss of cold stability of MTs in tobacco cells is regulated by the action of a kinase/phosphatase or a phosphorylation/dephosphorylation system on some MT protein(s), such as a cold stabilizer of MTs, some unidentified MT-associated filamentous structure, or even tubulin itself.  相似文献   

17.
Microtubules (MTs) are necessary components of all eukaryotic cells. They fulfill various functions being involved in cell division, ciliar and flagellar beating, cell shape maintaining, organelle distribution in the cell, organization of other cytoskeletal elements. Dynamic features of MTs have been commonly studied in vitro or on undiffirentiated cultured cells by means of molecular and ultrastructural methods. It is generally accepted that the phenomenon of dynamic instability is the major mechanism of MT turnover in the cell. MTs radiate from the centrosome and take part in the distribution of cell organelles. In addition, epithelial, nerve, and skeletal muscle cells contain non-centrosomal MTs. A few hypothesis of their origin have been so far put forward. According to the capture-release hypothesis, MTs are first nucleated on the a centrosome, then release to be driven in various parts of the cell by molecular motors. Some alternative mechanisms of non-centrosomal MT formation are also proposed in literature. For example, the nucleation sites were reported not only in centrosomes but also in other parts of cells, such as the apical membranes of epithelial cells, the nuclear membrane of muscle cells, pigment granule aggregates of melanophores. On studying frog urinary bladder and large intestine epithelial cells the authors observed in these cells numerous non-centrosomal MTs. This makes epithelial cells, good models for analysing structural and dynamic features of non-centrosomal MTs in differentiated cells. For the urinary bladder the pool of specific granules may serve as MT organizing centers. Non-cenrosomal MTs of these cells have big diameters (35-38 nm) and form bundles oriented in the apical-basal axis of the cell. In addition, non-centrosomal MTs of these cells may participate in the transport of specific granules and giant vacuoles that appear under stimulated water flows through the cell.  相似文献   

18.
Interphase cultured monkey kidney (TC-7) cells contain distinct subsets of cellular microtubules (MTs) enriched in posttranslationally detyrosinated (Glu) or tyrosinated (Tyr) alpha tubulin (Gundersen, G. G., M. H. Kalnoski, and J. C. Bulinski. 1984. Cell. 38:779-789). To determine the relative stability of these subsets of MTs, we subjected TC-7 cells to treatments that slowly depolymerized MTs. We found Glu MTs to be more resistant than Tyr MTs to depolymerization by nocodazole in living cells, and to depolymerization by dilution in detergent-permeabilized cell models. However, in cold-treated cells, Glu and Tyr MTs did not differ significantly in their stability. Digestion of permeabilized cell models with pancreatic carboxypeptidase A, to generate Glu MTs from endogenous Tyr MTs, did not significantly alter the resistance of the endogenous Tyr MTs toward dilution-induced depolymerization. Furthermore, in human fibroblasts that contained no distinct Glu MTs, we observed a population of nocodazole-resistant MTs. These data suggest that Glu MTs possess enhanced stability against end-mediated depolymerization, yet detyrosination alone appears to be insufficient to confer this enhanced stability.  相似文献   

19.
The orientation of cortical microtubules (MTs) was synchronously regulated inSpirogyra cells. While the reorganized MTs in distilled water for 1.5 hr, after 1 hr treatment with amiprophos-methyl (APM) and complete depolymerization of the MTs, were all transverse, those reorganized in 0.30 M mannitol were all oblique or longitudinal. After the MTs had reorganized in 0.30 M mannitol, these cells were then incubated in distilled water for 6 hr, and the orientation of the MTs, in the cells in which MTs could be observed, all became transverse.  相似文献   

20.
In living cells microtubules (MTs) continuously grow and shorten. This feature of MTs was discovered in vitro and named dynamic instability. Comparison of dynamic instability of MTs in vitro and in vivo shows a number of differences. MTs in vivo rapidly grow (up to 20 microns/min), duration of their shortening is small (on average 15-20 s), and pauses are prominent. In different animal cells MTs grow from the centrosome and form a radial array. In such cells growth of MTs is persistent, i.e. undergo without interruptions until plus end of a MT reaches cell margin. Analysis of literature and original data shows that interconvertion between phases of growth, shortening and pause is asymmetric: growth often converts into pause, while shortening always converts into growth without pause. We suggest dynamic instability described near the cell margin in numerous publications results not only from intrinsic properties of MTs, but also because of the external obstacles for their growth. MT behavior in the cells with radial array of long MTs could be treated as dynamic instability with boundary conditions. One boundary is the centrosome responsible for rapid initiation of MT growth. Another boundary is cell margin limiting MT elongation. MT growth occurs with constant mean velocity, and potential duration of growth phase might exceed cell radius. MT shortening is usually smaller than MT length however velocity of shortening increases with time. Random episodes of rapid shortening are sufficient for the exchange of MTs in 10-20 min in the cells not more than 40-50 microns in diameter. Experimental data show that similar rate of exchange of MTs is in the large cells. This is achieved employing another mechanism, namely release of MTs and depolymerization from the minus end. In the minus end pathway time required for the exchange of MTs does not depend on cell radius and is determined primarily by the frequency of releases. Thus a small number of free MTs with metastable minus ends significantly reduce time required for the renovation of the radial MT array. Summarizing all experimental data we suggest the life cycle scheme for the MT in a cell. MT is initiated at the centrosome and grows rapidly until it reaches cell margin. At the margin the plus end oscillates, and finally MT depolimerizes. MT "death" comes from a random catastrophe (shortening from the plus end) in small cells or from release and depolymerization of the minus end in large cells.  相似文献   

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