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Analysis of biological noise in the flagellar length control system

机译:鞭毛长度控制系统中生物噪声分析

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摘要

Any proposed mechanism for organelle size control should be able to account not only for average size but also for the variation in size. We analyzed cell-to-cell variation and within-cell variation of length for the two flagella in Chlamydomonas, finding that cell-to-cell variation is dominated by cell size, whereas within-cell variation results from dynamic fluctuations. Fluctuation analysis suggests tubulin assembly is not directly coupled with intraflagellar transport (IFT) and that the observed length fluctuations reflect tubulin assembly and disassembly events involving large numbers of tubulin dimers. Length variation is increased in long-flagella mutants, an effect consistent with theoretical models for flagellar length regulation. Cells with unequal flagellar lengths show impaired swimming but improved gliding, raising the possibility that cells have evolved mechanisms to tune biological noise in flagellar length. Analysis of noise at the level of organelle size provides a way to probe the mechanisms determining cell geometry.
机译:任何提出的细胞器尺寸控制机制都应该能够考虑平均大小,但也能够进行大小的变化。我们分析了衣原体中两个鞭毛的细胞对细胞变异和细胞内的细胞内变化,发现细胞 - 细胞变异由细胞尺寸主导,而在细胞内变化是由动态波动导致的。波动分析表明小管蛋白组件不与内颗粒输送(IFT)直接偶联,并且观察到的长度波动反射涉及大量小管蛋白二聚体的管蛋白组装和拆卸事件。长鞭毛突变体的长度变异增加,与鞭毛长度调节的理论模型一致的效果。具有不平等的羽板长度的细胞显示游泳损害但是改善滑动,提高细胞在鞭毛长度中调整生物噪声的可能性的可能性。细胞器尺寸水平的噪声分析提供了一种方法来探讨确定细胞几何体的机制。

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