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丝状伪足肌动蛋白束对于微管向海兔神经元生长锥的外周区域推进并非必需。

Filopodial actin bundles are not necessary for microtubule advance into the peripheral domain of Aplysia neuronal growth cones.

作者信息

Burnette Dylan T, Schaefer Andrew W, Ji Lin, Danuser Gaudenz, Forscher Paul

机构信息

Department of Molecular, Cellular and Developmental Biology, Yale University, New Haven, CT 06511, USA.

出版信息

Nat Cell Biol. 2007 Dec;9(12):1360-9. doi: 10.1038/ncb1655. Epub 2007 Nov 18.

Abstract

Filopodial actin bundles guide microtubule assembly in the growth cone peripheral (P) domain and retrograde actin-network flow simultaneously transports microtubules rearward. Therefore, microtubule-end position is determined by the sum of microtubule assembly and retrograde transport rates. However, how filopodia actually affect microtubule assembly dynamics is unknown. To address this issue we quantitatively assessed microtubule and actin dynamics before and after selective removal of filopodia. Filopodium removal had surprisingly little effect on retrograde actin-flow rates or underlying network structures, but resulted in an approximate doubling of peripheral microtubule density and deeper penetration of microtubules into the P domain. The latter stemmed from less efficient coupling of microtubules to remaining actin networks and not from a change in microtubule polymer dynamics. Loss of filopodia also resulted in increased lateral microtubule movements and a more randomized microtubule distribution in the P domain. In summary, filopodia do not seem to be formally required for microtubule advance; however, their presence ensures radial distribution of microtubules in the P domain and facilitates microtubule transport by retrograde flow. The resulting dynamic steady state has interesting implications for rapid microtubule-positioning responses in the P domain.

摘要

丝状伪足肌动蛋白束在生长锥外周(P)结构域引导微管组装,同时肌动蛋白网络逆向流动将微管向后运输。因此,微管末端位置由微管组装速率和逆向运输速率之和决定。然而,丝状伪足实际上如何影响微管组装动力学尚不清楚。为了解决这个问题,我们在选择性去除丝状伪足前后定量评估了微管和肌动蛋白动力学。去除丝状伪足对肌动蛋白逆向流动速率或潜在网络结构的影响出人意料地小,但导致外周微管密度增加约一倍,并且微管向P结构域的深入渗透。后者源于微管与剩余肌动蛋白网络的耦合效率降低,而非微管聚合物动力学的变化。丝状伪足的缺失还导致微管横向运动增加以及微管在P结构域的分布更加随机。总之,丝状伪足似乎并非微管前进所正式必需的;然而,它们的存在确保了微管在P结构域的径向分布,并通过逆向流动促进微管运输。由此产生的动态稳态对P结构域中微管的快速定位反应具有有趣的影响。

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