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非洲爪蟾黑素细胞中黑素小体运输过程中微管分子马达的交换是由与细胞内障碍物的碰撞触发的。

Exchange of microtubule molecular motors during melanosome transport in Xenopus laevis melanophores is triggered by collisions with intracellular obstacles.

作者信息

Bruno Luciana, Echarte Maria Mercedes, Levi Valeria

机构信息

Departamento de Física, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Pabellón 1, Ciudad Universitaria, CP 1428, Ciudad de Buenos Aires, Argentina.

出版信息

Cell Biochem Biophys. 2008;52(3):191-201. doi: 10.1007/s12013-008-9034-3. Epub 2008 Nov 12.

Abstract

The observation that several cargoes move bidirectionally along microtubules in vivo raised the question regarding how molecular motors with opposed polarity coordinate during transport. In this work, we analyzed the switch of microtubule motors during the transport of melanosomes in Xenopus melanophores by registering trajectories of these organelles moving along microtubules using a fast and precise tracking method. We analyzed in detail the intervals of trajectories showing reversions in the original direction of transport and processive motion in the opposite direction for at least 250 nm. In most of the cases, the speed of the melanosome before the reversion slowly decreases with time approaching zero then, the organelle returns over the same path moving initially at a very high speed and slowing down with time. These results could be explained according to a model in which reversions are triggered by an elastic collision of the cargo with obstacles in the cytosol. This interaction generates a force opposed to the movement of the motor-driven organelle increasing the probability of detaching the active motors from the track. The model can explain reversions in melanosome trajectories as well as other characteristics of in vivo transport along microtubules observed by other authors. Our results suggest that the crowded cytoplasm plays a key role in regulating the coordination of microtubules-dependent motors.

摘要

在体内观察到几种货物沿着微管双向移动,这引发了一个问题,即具有相反极性的分子马达在运输过程中是如何协调的。在这项工作中,我们通过使用快速精确的跟踪方法记录这些细胞器沿着微管移动的轨迹,分析了非洲爪蟾黑素细胞中黑素小体运输过程中微管马达的转换。我们详细分析了轨迹间隔,这些间隔显示了运输原始方向的逆转以及在相反方向上至少250纳米的持续运动。在大多数情况下,逆转前黑素小体的速度随着时间的推移缓慢下降至接近零,然后,细胞器沿着相同路径返回,最初以非常高的速度移动,随着时间的推移而减慢。这些结果可以根据一个模型来解释,在这个模型中,逆转是由货物与细胞质中的障碍物的弹性碰撞触发的。这种相互作用产生了一个与马达驱动的细胞器运动方向相反的力,增加了活性马达从轨道上脱离的可能性。该模型可以解释黑素小体轨迹的逆转以及其他作者观察到的沿着微管的体内运输的其他特征。我们的结果表明,拥挤的细胞质在调节微管依赖性马达的协调中起关键作用。

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