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Neurofilaments are flexible polymers that often fold and unfold, but they move in a fully extended configuration

机译:神经丝是经常折叠和展开的柔性聚合物,但它们以完全伸展的构型运动

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Time-lapse imaging of neurofilaments in axons of cultured nerve cells has demonstrated that these cytoskeletal polymers move along microtubule tracks in both anterograde and retrograde directions, powered by microtubule motors. The filaments exhibit short bouts of rapid intermittent movement interrupted by prolonged pauses, and the average velocity is slow because they spend most of their time pausing. Here, we show that axonal neurofilaments are also very flexible and frequently exhibit complex and dynamic folding and unfolding behaviors while they are pausing. Remarkably, however, when the filaments move in a sustained manner, we find that they always adopt an unfolded, that is, fully extended configuration, and this applies to movement in both anterograde and retrograde directions. Given the flexibility of neurofilament polymers and the apparent ease with which they can fold back on themselves, the fact that they move in a fully extended configuration suggests that moving neurofilaments may be pulled from their leading end. Thus, we speculate that motors may bind to the leading ends of neurofilaments polymers during both anterograde and retrograde motion.
机译:神经纤维在神经细胞轴突的延时成像显示,这些细胞骨架聚合物在微管马达的驱动下,沿着微管径迹在顺行和逆行方向移动。细丝表现出短暂的快速间歇运动,但由于长时间的停顿而中断,并且平均速度很慢,因为它们花费了大部分时间来暂停。在这里,我们显示轴突神经丝也非常灵活,并且在暂停时经常表现出复杂而动态的折叠和展开行为。但是,值得注意的是,当长丝持续运动时,我们发现它们始终采用未折叠的形式,即完全伸展的构型,这适用于顺行和逆行两个方向的运动。考虑到神经丝聚合物的柔韧性和它们可以向后折叠的明显容易性,它们以完全伸展的构型运动的事实表明运动的神经丝可能会从其前端拉出。因此,我们推测,在顺行和逆行运动过程中,电动机都可能与神经丝聚合物的前端结合。

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