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具有高时间分辨率的肌动蛋白收缩图分析揭示了神经丝转运动力学的新特征。

Kymograph analysis with high temporal resolution reveals new features of neurofilament transport kinetics.

作者信息

Fenn J Daniel, Johnson Christopher M, Peng Juan, Jung Peter, Brown Anthony

机构信息

Department of Neuroscience and Medical Scientist Training Program, Ohio State University, Columbus, Ohio 43210.

Quantitative Biology Institute and Department of Physics and Astronomy, Ohio University, Athens, Ohio 45701.

出版信息

Cytoskeleton (Hoboken). 2018 Jan;75(1):22-41. doi: 10.1002/cm.21411. Epub 2017 Nov 18.

Abstract

We have used kymograph analysis combined with edge detection and an automated computational algorithm to analyze the axonal transport kinetics of neurofilament polymers in cultured neurons at 30 ms temporal resolution. We generated 301 kymographs from 136 movies and analyzed 726 filaments ranging from 0.6 to 42 µm in length, representing ∼37,000 distinct moving and pausing events. We found that the movement is even more intermittent than previously reported and that the filaments undergo frequent, often transient, reversals which suggest that they can engage simultaneously with both anterograde and retrograde motors. Average anterograde and retrograde bout velocities (0.9 and 1.2 µm s , respectively) were faster than previously reported, with maximum sustained bout velocities of up to 6.6 and 7.8 µm s , respectively. Average run lengths (∼1.1 µm) and run times (∼1.4 s) were in the range reported for molecular motor processivity in vitro, suggesting that the runs could represent the individual processive bouts of the neurofilament motors. Notably, we found no decrease in run velocity, run length or run time with increasing filament length, which suggests that either the drag on the moving filaments is negligible or that longer filaments recruit more motors.

摘要

我们使用了记波图分析,并结合边缘检测和一种自动计算算法,以30毫秒的时间分辨率分析培养神经元中神经丝聚合物的轴突运输动力学。我们从136部影片中生成了301个记波图,并分析了726根长度在0.6至42微米之间的细丝,这些细丝代表了约37,000个不同的移动和暂停事件。我们发现,这种移动比之前报道的更加断断续续,并且细丝会频繁发生,通常是短暂的逆转,这表明它们可以同时与顺行和逆行马达结合。平均顺行和逆行片段速度(分别为0.9和1.2微米/秒)比之前报道的更快,最大持续片段速度分别高达6.6和7.8微米/秒。平均运行长度(约1.1微米)和运行时间(约1.4秒)在体外分子马达持续性报道的范围内,这表明这些运行可能代表神经丝马达的单个持续性片段。值得注意的是,我们发现随着细丝长度的增加,运行速度、运行长度或运行时间并没有降低,这表明要么移动细丝上的阻力可以忽略不计,要么更长的细丝招募了更多的马达。

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