共查询到19条相似文献,搜索用时 93 毫秒
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肌动蛋白解聚因-子/丝切蛋白:肌动蛋白重塑蛋白质家系 总被引:2,自引:0,他引:2
肌动蛋白解聚因子/丝切蛋白(actin depolymerizing factor/cofilin,ADF/cofilin)是肌动蛋白结合蛋白(actin—binding protein)家系。迄今为止,可以在所有的真核细胞中检测到ADF/cofilin。它们调节(纤)丝状肌动蛋白细胞骨架(F—actin eytoskeleton),影响细胞的各种生理功能。不同的生物有不同的ADF/cofilin,但其功能基本相似。ADF/cofilin可以使(纤)丝状肌动蛋白(F—actin)解聚合,而且这种解聚合活性是可逆的,ADF/cofilin切割F-actin并且能提高球状肌动蛋白(G—actin)离开纤维突出端(pointedend)的能力,其作用受很多因素调控。 相似文献
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拟南芥肌动蛋白解聚因子4基因(AtADF4)在烟草中表达引起植株形态变化 总被引:3,自引:0,他引:3
用PCR方法从拟南芥基因组DNA中分离克隆肌动蛋白解聚因子基因(AtADF4),并进行了序列分析。通过农杆菌介导转化将AtADF4导入烟草,PCR和RT—PCR检测证明AtADF4已整合到烟草基因组中并得到表达。转基因烟草幼苗下胚轴的弯曲度在暗培养与光照培养条件下均比对照的大,暗培养条件下下胚轴弯曲程度较高;下胚轴薄壁细胞壁比对照大,维管束排列不整齐;根毛稀少弯曲,而对照根毛密集且直;转基因烟草开花时间比对照平均延迟了7~8d,花粉萌发时花粉管比对照粗短。 相似文献
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细胞骨架由微丝、微管及中等纤维组成受不同蛋白因子调控以不同方式组装成不同直径的纤维 ,遍布于一切细胞 ,决定细胞的形状 ,赋予其抗压强度 ,对细胞器及大分子进行空间组织 ,实现胞内的能量转换。在肌动蛋白 (actin)组装成张力纤维和张力纤维解离成肌动蛋白单体过程中有多种蛋白因子参与调控 ,从而使细胞骨架处于一个生理的动态平衡中 ,执行和完成不同的生化反应。在众多的调控蛋白中 ,肌动蛋白集束调控蛋白因子 (actinbundlingprotein)不仅参与肌动蛋白结构调节 ,还与细胞内信号传导有密切关系。已发现的肌动蛋… 相似文献
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文章介绍植物细胞内几类肌动蛋白结合蛋白(如:前纤维蛋白、形成素、肌动蛋白相关蛋白2/3复合体、肌动蛋白解聚因子和成束蛋白)的结构、性质和功能的研究进展。 相似文献
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ADF/cofilin分子家族的研究进展 总被引:2,自引:0,他引:2
细胞骨架中的肌动蛋白参与了一系列重要生理活动,如肌肉收缩、胞质环流、细胞运动、胞质分裂等。这些过程的发生除了需要肌动蛋白以外,还需要一些与之结合的调节蛋白参与,现在已经发现了100多种肌动蛋白结合蛋白,其中有一类分子量为15—20KD的蛋白,如肌动蛋白解聚因子(actin depolymerizing factor,ADF)、cofilin、profilin、actophorin、depactin、de-strin、UNC-60)等,在一定条件下可以使肌动蛋白微丝解聚,统称为ADF/cofilin分子家族。 相似文献
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植物中逆境反应相关的WRKY转录因子研究进展 总被引:3,自引:0,他引:3
WRKY转录因子是植物体内一类比较大的转录因子家族,它在植物的生长发育以及抗逆境反应中起着非常重要的作用。本文综述了WRKY转录因子在植物应对冻害、干旱、盐害等非生物胁迫与病原菌、虫害等生物胁迫反应中的重要调控功能,并概括了WRKY转录因子在调控这些逆境反应中的机制。 相似文献
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4个棉花ADF基因的分子鉴定及其差异表达 总被引:4,自引:0,他引:4
肌动蛋白解聚合因子(actin-depolymerizing factor, ADF)是一种在真核生物中广泛存在的低分子量的肌动蛋白结合蛋白,它在调控细胞内肌动蛋白纤丝的解聚合和再聚合中起着关键作用。我们在棉纤维cDNA文库中分离克隆了4个ADF基因(cDNAs),分别命名为GhADF2,GhADF3,GhADF4,GhADF5。GhADF2 cDNA 长度为705 bp,编码139个氨基酸;GhADF3 cDNA长度为819 bp,编码139个氨基酸;GhADF4 cDNA长度为804 bp,编码143个氨基酸;GhADF5 cDNA长度为644 bp,编码141个氨基酸。分析表明,GhADF2与GhADF3的氨基酸序列同源性为99%。而且,GhADF2/3与矮牵牛PeADF2之间的氨基酸序列同源性也高达89%。GhADF4与拟南芥AtADF6的亲缘关系较近,二者的氨基酸序列同源性为78%。GhADF5与拟南芥AtADF5的亲缘关系较近,氨基酸序列的同源性为83%。上述结果表明植物ADF基因在进化中具有高度保守性。RT-PCR分析表明,GhADF2在纤维中优势表达,而GhADF5基因则在子叶中表达量最高。另一方面,GhADF3和GhADF4似乎不具有组织特异性或偏爱性表达。同一组织中不同GhADF基因表达量有较大的差异,表明它们可能涉及棉花不同组织生长发育过程的调节。而且,在进化过程中,各ADF同分异构体之间可能发展形成某种功能上的差异性。 相似文献
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Kousaka K Kiyonari H Oshima N Nagafuchi A Shima Y Chisaka O Uemura T 《Genesis (New York, N.Y. : 2000)》2008,46(5):246-255
Actin-depolymerizing factor (ADF) and cofilin constitute a family of key regulators of actin filament dynamics. ADF/cofilin is inactivated by phosphorylation at Ser-3 by LIM-kinases and reactivated by dephosphorylation by Slingshot (SSH) family phosphatases. Defects in LIM kinases or ADF/cofilin have been implicated in morbidity in human or mice; however, the roles of mammalian SSH in vivo have not been addressed. In this study, we examined the endogenous expression of each mouse SSH member in various cell lines and tissues, and showed that SSH-3L protein was strongly expressed in epithelial cells. Our structure-function analysis of SSH-3L suggested the possibility that the C-tail unique to SSH-3L negatively regulates the catalytic activity of this phosphatase. Furthermore we made ssh-3 knockout mice to examine its potential in vivo roles. Unexpectedly, ssh-3 was not essential for viability, fertility, or development of epithelial tissues; and ssh-3 did not genetically modify the corneal disorder of the corn1/ADF/destrin mutant. 相似文献
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Bobkov AA Muhlrad A Pavlov DA Kokabi K Yilmaz A Reisler E 《Journal of molecular biology》2006,356(2):325-334
Using site-specific fluorescence probes and cross-linking we demonstrated that cofilin (ADF), a key regulator of actin cellular dynamics, weakens longitudinal contacts in F-actin in a cooperative manner. Differential scanning calorimetry detected a dual nature of cofilin effects on F-actin conformation. At sub-stoichiometric cofilin to actin ratios, cofilin stabilized sterically and non-cooperatively protomers at the points of attachment, and destabilized allosterically and cooperatively protomers in the cofilin-free parts of F-actin. This destabilizing effect had a long range, with one cofilin molecule affecting more than 100 protomers, and concentration-dependent amplitude that reached maximum at about 1:2 molar ratio of cofilin to actin. In contrast to existing models, our results suggest an allosteric mechanism of actin depolymerization by cofilin. We propose that cofilin is less likely to sever actin filaments at the points of attachment as thought previously. Instead, due to its dual structural effect, spontaneous fragmentation occurs most likely in cofilin-free segments of filaments weakened allosterically by nearby cofilin molecules. 相似文献
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Zebda N Bernard O Bailly M Welti S Lawrence DS Condeelis JS 《The Journal of cell biology》2000,151(5):1119-1128
In metastatic rat mammary adenocarcinoma cells, cell motility can be induced by epidermal growth factor. One of the early events in this process is the massive generation of actin barbed ends, which elongate to form filaments immediately adjacent to the plasma membrane at the tip of the leading edge. As a result, the membrane moves outward and forms a protrusion. To test the involvement of ADF/cofilin in the stimulus-induced barbed end generation at the leading edge, we inhibited ADF/cofilin's activity in vivo by increasing its phosphorylation level using the kinase domain of LIM-kinase 1 (GFP-K). We report here that expression of GFP-K in rat cells results in the near total phosphorylation of ADF/cofilin, without changing either the G/F-actin ratio or signaling from the EGF receptor in vivo. Phosphorylation of ADF/cofilin is sufficient to completely inhibit the appearance of barbed ends and lamellipod protrusion, even in the continued presence of abundant G-actin. Coexpression of GFP-K, together with an active, nonphosphorylatable mutant of cofilin (S3A cofilin), rescues barbed end formation and lamellipod protrusion, indicating that the effects of kinase expression are caused by the phosphorylation of ADF/cofilin. These results indicate a direct role for ADF/cofilin in the generation of the barbed ends that are required for lamellipod extension in response to EGF stimulation. 相似文献
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An important player in actin remodeling is the actin depolymerizing factor (ADF) which increases actin filament treadmilling rates. Previously, we had prepared fluorescent protein fusions of two Arabidopsis pollen specific ADFs, ADF7 and ADF10. These had enabled us to determine the temporal expression patterns and subcellular localization of these proteins during male gametophyte development. Here we generated stable transformants containing both chimeric genes allowing for simultaneous imaging and direct comparison. One of the striking differences between the two proteins was the localization profile in the growing pollen tube apex. Whereas ADF10 was associated with the filamentous actin array forming the subapical actin fringe, ADF7 was present in the same cytoplasmic region, but in diffuse form. This suggests that ADF7 is involved in the high actin turnover that is likely to occur in the fringe by continuously and efficiently depolymerizing filamentous actin and supplying monomeric actin to the advancing end of the fringe. The possibility to visualize both of these pollen-specific ADFs simultaneously opens avenues for future research into the regulatory function of actin binding proteins in pollen. 相似文献
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Bonnie M. Marsick Kevin C. Flynn Miguel Santiago‐Medina James R. Bamburg Paul C. Letourneau 《Developmental neurobiology》2010,70(8):565-588
Proper neural circuitry requires that growth cones, motile tips of extending axons, respond to molecular guidance cues expressed in the developing organism. However, it is unclear how guidance cues modify the cytoskeleton to guide growth cone pathfinding. Here, we show acute treatment with two attractive guidance cues, nerve growth factor (NGF) and netrin‐1, for embryonic dorsal root ganglion and temporal retinal neurons, respectively, results in increased growth cone membrane protrusion, actin polymerization, and filamentous actin (F‐actin). ADF/cofilin (AC) family proteins facilitate F‐actin dynamics, and we found the inactive phosphorylated form of AC is decreased in NGF‐ or netrin‐1‐treated growth cones. Directly increasing AC activity mimics addition of NGF or netrin‐1 to increase growth cone protrusion and F‐actin levels. Extracellular gradients of NGF, netrin‐1, and a cell‐permeable AC elicit attractive growth cone turning and increased F‐actin barbed ends, F‐actin accumulation, and active AC in growth cone regions proximal to the gradient source. Reducing AC activity blunts turning responses to NGF and netrin. Our results suggest that gradients of NGF and netrin‐1 locally activate AC to promote actin polymerization and subsequent growth cone turning toward the side containing higher AC activity. © 2010 Wiley Periodicals, Inc. Develop Neurobiol 70: 565–588, 2010 相似文献
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The actin-depolymerizing factor (ADF)/cofilin family of proteins play an essential role in actin dynamics and cytoskeletal re-organization. Human tissues express two isoforms in the same cells, ADF and cofilin, and these two proteins are more than 70% identical in amino acid sequence. We show that ADF is a much more potent actin-depolymerizing agent than cofilin: the maximum level of depolymerization at pH 8 by ADF is about 20 microM compared to 5 microM for cofilin, but little depolymerization occurs at pH 6.5 with either protein. However, we find little difference between the two proteins in their binding to filaments, their severing activities or their activation of subunit release from the pointed ends of filaments. Likewise, they show no significant differences in their affinities for monomeric actin: both bind 15-fold more tightly to actin.ADP than to actin.ATP. Complexes between actin.ADP and ADF or cofilin associate with both barbed and pointed ends of filaments at similar rates (close to those of actin.ATP and much higher than those of actin.ADP). This explains why high concentrations of both proteins reverse the activation of subunit release at pointed ends. The major difference between the two proteins is that the nucleating activity of cofilin-actin.ADP complexes is twice that of ADF-actin.ADP complexes and this, in turn, is twice that of actin.ATP alone. It is this weaker nucleating potential of ADF-actin.ADP that accounts for the much higher steady-state depolymerizing activity. The pH-sensitivity is due to the nucleating activity of complexes being greater at pH 6.5 than at pH 8. Sequence analysis of mammalian and avian isoforms shows a consistent pattern of charge differences in regions of the protein associated with F-actin-binding that may account for the differences in activity between ADF and cofilin. 相似文献
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Tropomyosin binds to actin filaments and is implicated in stabilization of actin cytoskeleton. We examined biochemical and cell biological properties of Caenorhabditis elegans tropomyosin (CeTM) and obtained evidence that CeTM is antagonistic to ADF/cofilin-dependent actin filament dynamics. We purified CeTM, actin, and UNC-60B (a muscle-specific ADF/cofilin isoform), all of which are derived from C. elegans, and showed that CeTM and UNC-60B bound to F-actin in a mutually exclusive manner. CeTM inhibited UNC-60B-induced actin depolymerization and enhancement of actin polymerization. Within isolated native thin filaments, actin and CeTM were detected as major components, whereas UNC-60B was present at a trace amount. Purified UNC-60B was unable to interact with the native thin filaments unless CeTM and other associated proteins were removed by high-salt extraction. Purified CeTM was sufficient to restore the resistance of the salt-extracted filaments from UNC-60B. In muscle cells, CeTM and UNC-60B were localized in different patterns. Suppression of CeTM by RNA interference resulted in disorganized actin filaments and paralyzed worms in wild-type background. However, in an ADF/cofilin mutant background, suppression of CeTM did not worsen actin organization and worm motility. These results suggest that tropomyosin is a physiological inhibitor of ADF/cofilin-dependent actin dynamics. 相似文献
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Cofilin is essential for cell viability and for actin-based motility. Cofilin severs actin filaments, which enhances the dynamics of filament assembly. We investigated the mechanism of filament severing by cofilin with direct fluorescence microscopy observation of single actin filaments in real time. In cells, actin filaments are likely to be attached at multiple points along their length, and we found that attaching filaments in such a manner greatly increased the efficiency of filament severing by cofilin. Cofilin severing increased and then decreased with increasing concentration of cofilin. Together, these results indicate that cofilin severs the actin filament by a mechanism of allosteric and cooperative destabilization. Severing is more efficient when relaxation of this cofilin-induced instability of the actin filament is inhibited by restricting the flexibility of the filament. These conclusions have particular relevance to cofilin function during actin-based motility in cells and in synthetic systems. 相似文献