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动力蛋白介导的体内货物运输。一个开关控制运输距离。

Dynein-mediated cargo transport in vivo. A switch controls travel distance.

作者信息

Gross S P, Welte M A, Block S M, Wieschaus E F

机构信息

Howard Hughes Medical Institute, Princeton University, Princeton, New Jersey 08544, USA.

出版信息

J Cell Biol. 2000 Mar 6;148(5):945-56. doi: 10.1083/jcb.148.5.945.

Abstract

Cytoplasmic dynein is a microtubule-based motor with diverse cellular roles. Here, we use mutations in the dynein heavy chain gene to impair the motor's function, and employ biophysical measurements to demonstrate that cytoplasmic dynein is responsible for the minus end motion of bidirectionally moving lipid droplets in early Drosophila embryos. This analysis yields an estimate for the force that a single cytoplasmic dynein exerts in vivo (1.1 pN). It also allows us to quantitate dynein-mediated cargo motion in vivo, providing a framework for investigating how dynein's activity is controlled. We identify three distinct travel states whose general features also characterize plus end motion. These states are preserved in different developmental stages. We had previously provided evidence that for each travel direction, single droplets are moved by multiple motors of the same type (Welte et al. 1998). Droplet travel distances (runs) are much shorter than expected for multiple motors based on in vitro estimates of cytoplasmic dynein processivity. Therefore, we propose the existence of a process that ends runs before the motors fall off the microtubules. We find that this process acts with a constant probability per unit distance, and is typically coupled to a switch in travel direction. A process with similar properties governs plus end motion, and its regulation controls the net direction of transport.

摘要

细胞质动力蛋白是一种基于微管的马达蛋白,在细胞中具有多种作用。在这里,我们利用动力蛋白重链基因中的突变来损害该马达蛋白的功能,并采用生物物理测量方法来证明细胞质动力蛋白负责果蝇早期胚胎中双向移动的脂滴的负端运动。该分析得出了单个细胞质动力蛋白在体内施加的力的估计值(1.1皮牛)。这也使我们能够在体内定量动力蛋白介导的货物运动,为研究动力蛋白的活性如何被控制提供了一个框架。我们识别出三种不同的移动状态,其一般特征也表征了正端运动。这些状态在不同的发育阶段得以保留。我们之前已经提供证据表明,对于每个移动方向,单个脂滴是由多个相同类型的马达蛋白移动的(韦尔特等人,1998年)。基于细胞质动力蛋白持续运动能力的体外估计,脂滴的移动距离(行程)比多个马达蛋白预期的要短得多。因此,我们提出存在一种在马达蛋白从微管上脱落之前结束行程的过程。我们发现这个过程以每单位距离恒定的概率起作用,并且通常与移动方向的切换相关联。一个具有相似特性的过程控制着正端运动,并且其调节控制着运输的净方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2ea7/2174539/701b642774bb/JCB9912058.f1.jpg

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