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E-MAP-115(ensconsin)在体内与微管动态结合,并非微管动力学的生理调节剂。

E-MAP-115 (ensconsin) associates dynamically with microtubules in vivo and is not a physiological modulator of microtubule dynamics.

作者信息

Faire K, Waterman-Storer C M, Gruber D, Masson D, Salmon E D, Bulinski J C

机构信息

Department of Anatomy, Columbia University, College of Physicians & Surgeons, Rm BB1213, New York, NY 10032-3702, USA.

出版信息

J Cell Sci. 1999 Dec;112 ( Pt 23):4243-55. doi: 10.1242/jcs.112.23.4243.

DOI:10.1242/jcs.112.23.4243
PMID:10564643
Abstract

Microtubule-associated proteins (MAPs) have been hypothesized to regulate microtubule dynamics and/or functions. To test hypotheses concerning E-MAP-115 (ensconsin) function, we prepared stable cell lines expressing conjugates in which the full-length MAP (Ensc) or its microtubule-binding domain (EMTB) was conjugated to one or more green fluorescent protein (GFP) molecules. Because both distribution and microtubule-binding properties of GFP-Ensc, GFP-EMTB, and 2x, 3x, or 4xGFP-EMTB chimeras all appeared to be identical to those of endogenous E-MAP-115 (ensconsin), we used the 2xGFP-EMTB molecule as a reporter for the behavior and microtubule-binding function of endogenous MAP. Dual wavelength time-lapse fluorescence imaging of 2xGFP-EMTB in cells microinjected with labeled tubulin revealed that this GFP-MAP chimera associated with the lattice of all microtubules immediately upon polymerization and dissociated concomitant with depolymerization, suggesting that dynamics of MAP:microtubule interactions were at least as rapid as tubulin:microtubule dynamics in the polymerization reaction. Presence of both GFP-EMTB chimeras and endogenous E-MAP-115 (ensconsin) along apparently all cellular microtubules at all cell cycle stages suggested that the MAP might function in modulating stability or dynamics of microtubules, a capability shown previously in transiently transfected cells. Although cells with extremely high expression levels of GFP-EMTB chimera exhibited stabilized microtubules, cells expressing four to ten times the physiological level of endogenous MAP exhibited microtubule dynamics indistinguishable from those of untransfected cells. This result shows that E-MAP-115 (ensconsin) is unlikely to function as a microtubule stabilizer in vivo. Instead, this MAP most likely serves to modulate microtubule functions or interactions with other cytoskeletal elements.

摘要

微管相关蛋白(MAPs)被假定可调节微管动力学和/或功能。为了验证有关E-MAP-115(ensconsin)功能的假设,我们制备了稳定细胞系,这些细胞系表达的结合物中,全长MAP(Ensc)或其微管结合结构域(EMTB)与一个或多个绿色荧光蛋白(GFP)分子结合。由于GFP-Ensc、GFP-EMTB以及2x、3x或4xGFP-EMTB嵌合体的分布和微管结合特性似乎都与内源性E-MAP-115(ensconsin)相同,我们使用2xGFP-EMTB分子作为内源性MAP行为和微管结合功能的报告分子。对注射了标记微管蛋白的细胞中的2xGFP-EMTB进行双波长延时荧光成像显示,这种GFP-MAP嵌合体在微管聚合时立即与所有微管的晶格结合,并在解聚时伴随解离,这表明MAP与微管相互作用的动力学在聚合反应中至少与微管蛋白与微管的动力学一样快。在所有细胞周期阶段,GFP-EMTB嵌合体和内源性E-MAP-115(ensconsin)显然都存在于所有细胞微管上,这表明该MAP可能在调节微管的稳定性或动力学方面发挥作用,这一能力先前在瞬时转染细胞中已得到证明。尽管GFP-EMTB嵌合体表达水平极高的细胞表现出微管稳定,但表达量为内源性MAP生理水平四到十倍的细胞所表现出的微管动力学与未转染细胞无异。这一结果表明,E-MAP-115(ensconsin)在体内不太可能作为微管稳定剂发挥作用。相反,这种MAP最有可能用于调节微管功能或与其他细胞骨架成分的相互作用。

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