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1
Viscoelastic properties of vimentin compared with other filamentous biopolymer networks.波形蛋白与其他丝状生物聚合物网络相比的粘弹性特性。
J Cell Biol. 1991 Apr;113(1):155-60. doi: 10.1083/jcb.113.1.155.
2
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Emergent properties of composite semiflexible biopolymer networks.复合半柔性生物聚合物网络的涌现特性。
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Diffusing wave spectroscopy microrheology of actin filament networks.肌动蛋白丝网络的扩散波谱微观流变学
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5
Vimentin intermediate filaments and filamentous actin form unexpected interpenetrating networks that redefine the cell cortex.波形蛋白中间纤维和丝状肌动蛋白形成意想不到的贯穿网络,重新定义了细胞皮质。
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Effects of Vimentin Intermediate Filaments on the Structure and Dynamics of In Vitro Multicomponent Interpenetrating Cytoskeletal Networks.中间丝角蛋白对体外多组分互穿细胞骨架网络结构和动力学的影响。
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A direct interaction between actin and vimentin filaments mediated by the tail domain of vimentin.波形蛋白尾域介导的肌动蛋白与波形蛋白丝之间的直接相互作用。
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8
Desmin and vimentin intermediate filament networks: their viscoelastic properties investigated by mechanical rheometry.结蛋白和波形蛋白中间丝网络:通过力学流变学研究其粘弹性特性。
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9
Mechanical effects of neurofilament cross-bridges. Modulation by phosphorylation, lipids, and interactions with F-actin.神经丝交叉桥的机械效应。磷酸化、脂质以及与F-肌动蛋白相互作用的调节作用。
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The mechanical properties of actin gels. Elastic modulus and filament motions.肌动蛋白凝胶的力学性能。弹性模量和细丝运动。
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Vimentin - Force regulator in confined environments.波形蛋白——受限环境中的力调节因子。
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The umbrella cell keratin network: organization as a tile-like mesh, formation of a girded layer in response to bladder filling, and dependence on the plectin cytolinker.伞细胞角蛋白网络:呈瓦片样网格状组织,响应膀胱充盈形成束状层,并依赖于网蛋白细胞连接蛋白。
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本文引用的文献

1
Structural polarity of kinetochore microtubules in PtK1 cells.PtK1细胞中动粒微管的结构极性。
J Cell Biol. 1981 May;89(2):338-45. doi: 10.1083/jcb.89.2.338.
2
Purification of the intermediate filament protein vimentin from Ehrlich ascites tumor cells.从艾氏腹水瘤细胞中纯化中间丝蛋白波形蛋白。
J Biol Chem. 1982 May 25;257(10):5536-43.
3
In vitro assembly of homopolymer and copolymer filaments from intermediate filament subunits of muscle and fibroblastic cells.由肌肉细胞和成纤维细胞的中间丝亚基进行同聚物和共聚物细丝的体外组装。
Proc Natl Acad Sci U S A. 1981 Jun;78(6):3692-6. doi: 10.1073/pnas.78.6.3692.
4
ATP-induced formation of an associated complex between microtubules and neurofilaments.三磷酸腺苷(ATP)诱导微管与神经丝之间形成相关复合物。
Proc Natl Acad Sci U S A. 1981 Mar;78(3):1431-5. doi: 10.1073/pnas.78.3.1431.
5
Physical basis of the rheologic properties of F-actin.F-肌动蛋白流变学特性的物理基础。
J Biol Chem. 1983 Sep 25;258(18):11004-9.
6
Dynamic light scattering study of muscle F-actin.肌肉F-肌动蛋白的动态光散射研究
Biophys Chem. 1984 Aug;20(1-2):1-21. doi: 10.1016/0301-4622(84)80001-0.
7
Interaction of microtubule-associated proteins with actin filaments. Studies using the fluorescence-photobleaching recovery technique.微管相关蛋白与肌动蛋白丝的相互作用。运用荧光光漂白恢复技术的研究。
J Biol Chem. 1984 Oct 10;259(19):11730-4.
8
Implications of cytoskeletal interactions for cellular architecture and behavior.细胞骨架相互作用对细胞结构和行为的影响。
Philos Trans R Soc Lond B Biol Sci. 1982 Nov 4;299(1095):199-205. doi: 10.1098/rstb.1982.0126.
9
Heterogeneity of bovine fibrinogen and fibrin.牛纤维蛋白原和纤维蛋白的异质性。
J Biol Chem. 1973 Oct 10;248(19):6896-903.
10
Viscoelastic properties of fibrin clots.纤维蛋白凝块的粘弹性特性。
Biorheology. 1973 Mar;10(1):29-42. doi: 10.3233/bir-1973-10105.

波形蛋白与其他丝状生物聚合物网络相比的粘弹性特性。

Viscoelastic properties of vimentin compared with other filamentous biopolymer networks.

作者信息

Janmey P A, Euteneuer U, Traub P, Schliwa M

机构信息

Hematology Unit, Massachusetts General Hospital, Boston.

出版信息

J Cell Biol. 1991 Apr;113(1):155-60. doi: 10.1083/jcb.113.1.155.

DOI:10.1083/jcb.113.1.155
PMID:2007620
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2288924/
Abstract

The cytoplasm of vertebrate cells contains three distinct filamentous biopolymers, the microtubules, microfilaments, and intermediate filaments. The basic structural elements of these three filaments are linear polymers of the proteins tubulin, actin, and vimentin or another related intermediate filament protein, respectively. The viscoelastic properties of cytoplasmic filaments are likely to be relevant to their biologic function, because their extreme length and rodlike structure dominate the rheologic behavior of cytoplasm, and changes in their structure may cause gel-sol transitions observed when cells are activated or begin to move. This paper describes parallel measurements of the viscoelasticity of tubulin, actin, and vimentin polymers. The rheologic differences among the three types of cytoplasmic polymers suggest possible specialized roles for the different classes of filaments in vivo. Actin forms networks of highest rigidity that fluidize at high strains, consistent with a role in cell motility in which stable protrusions can deform rapidly in response to controlled filament rupture. Vimentin networks, which have not previously been studied by rheologic methods, exhibit some unusual viscoelastic properties not shared by actin or tubulin. They are less rigid (have lower shear moduli) at low strain but harden at high strains and resist breakage, suggesting they maintain cell integrity. The differences between F-actin and vimentin are optimal for the formation of a composite material with a range of properties that cannot be achieved by either polymer alone. Microtubules are unlikely to contribute significantly to interphase cell rheology alone, but may help stabilize the other networks.

摘要

脊椎动物细胞的细胞质包含三种不同的丝状生物聚合物,即微管、微丝和中间丝。这三种丝的基本结构元件分别是蛋白质微管蛋白、肌动蛋白和波形蛋白或另一种相关中间丝蛋白的线性聚合物。细胞质丝的粘弹性特性可能与其生物学功能相关,因为它们的极长长度和棒状结构主导着细胞质的流变行为,并且其结构的变化可能导致细胞被激活或开始移动时观察到的凝胶-溶胶转变。本文描述了对微管蛋白、肌动蛋白和波形蛋白聚合物粘弹性的平行测量。这三种细胞质聚合物之间的流变学差异表明不同类别的丝在体内可能具有特定的作用。肌动蛋白形成刚性最高的网络,在高应变下会流化,这与细胞运动中的作用一致,即稳定的突起可以响应受控的丝断裂而迅速变形。波形蛋白网络此前尚未通过流变学方法进行研究,它表现出一些肌动蛋白或微管蛋白所没有的不寻常粘弹性特性。它们在低应变下刚性较低(剪切模量较低),但在高应变下会变硬并抗断裂,这表明它们维持细胞的完整性。F-肌动蛋白和波形蛋白之间的差异最有利于形成一种具有一系列特性的复合材料,而这是任何一种聚合物单独都无法实现的。微管不太可能单独对间期细胞流变学有显著贡献,但可能有助于稳定其他网络。