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Tau 与微管结合的分子机制及其在活细胞中微管动力学中的作用。

Molecular mechanisms of Tau binding to microtubules and its role in microtubule dynamics in live cells.

机构信息

Aix-Marseille Université, Inserm, CRO2 UMR_S 911, Faculté de Pharmacie 13385, Marseille, France.

出版信息

J Cell Sci. 2013 Jul 1;126(Pt 13):2810-9. doi: 10.1242/jcs.120832. Epub 2013 May 9.

Abstract

Despite extensive studies, the molecular mechanisms of Tau binding to microtubules (MTs) and its consequences on MT stability still remain unclear. It is especially true in cells where the spatiotemporal distribution of Tau-MT interactions is unknown. Using Förster resonance energy transfer (FRET), we showed that the Tau-MT interaction was distributed along MTs in periodic hotspots of high and low FRET intensities. Fluorescence recovery after photobleaching (FRAP) revealed a two-phase exchange of Tau with MTs as a rapid diffusion followed by a slower binding phase. A real-time FRET assay showed that high FRET occurred simultaneously with rescue and pause transitions at MT ends. To further explore the functional interaction of Tau with MTs, the binding of paclitaxel (PTX), tubulin acetylation induced by trichostatin A (TSA), and the expression of non-acetylatable tubulin were used. With PTX and TSA, FRAP curves best fitted a single phase with a long time constant, whereas with non-acetylatable α-tubulin, curves best fitted a two phase recovery. Upon incubation with PTX and TSA, the number of high and low FRET hotspots decreased by up to 50% and no hotspot was observed during rescue and pause transitions. In the presence of non-acetylatable α-tubulin, a 34% increase in low FRET hotspots occurred, and our real-time FRET assay revealed that low FRET hotspots appeared with MTs recovering growth. In conclusion, we have identified, by FRET and FRAP, a discrete Tau-MT interaction, in which Tau could induce conformational changes of MTs, favoring recovery of MT self-assembly.

摘要

尽管已经进行了广泛的研究,但 Tau 与微管 (MTs) 结合的分子机制及其对 MT 稳定性的影响仍不清楚。在细胞中尤其如此,因为 Tau-MT 相互作用的时空分布尚不清楚。使用Förster 共振能量转移 (FRET),我们发现 Tau-MT 相互作用沿 MTs 呈周期性热点分布,这些热点具有高和低 FRET 强度。荧光漂白后荧光恢复 (FRAP) 显示 Tau 与 MTs 的交换呈两相反相,即快速扩散随后是缓慢结合相。实时 FRET 测定表明,高 FRET 与 MT 末端的挽救和暂停转变同时发生。为了进一步探讨 Tau 与 MTs 的功能相互作用,使用紫杉醇 (PTX)、曲古抑菌素 A (TSA) 诱导的微管蛋白乙酰化和不可乙酰化的微管蛋白表达进行了研究。用 PTX 和 TSA,FRAP 曲线最佳拟合具有长时间常数的单相,而用不可乙酰化的α-微管蛋白拟合则最佳拟合两相反相恢复。孵育 PTX 和 TSA 后,高和低 FRET 热点的数量减少了多达 50%,并且在挽救和暂停转变过程中没有观察到热点。在存在不可乙酰化的α-微管蛋白的情况下,低 FRET 热点增加了 34%,我们的实时 FRET 测定表明,低 FRET 热点出现在 MT 恢复生长时。总之,我们通过 FRET 和 FRAP 鉴定了一种离散的 Tau-MT 相互作用,其中 Tau 可以诱导 MT 的构象变化,有利于 MT 自组装的恢复。

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