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A positive-feedback-based mechanism for constriction rate acceleration during cytokinesis in Caenorhabditis elegans

机译:秀丽隐杆线虫胞质分裂过程中基于正反馈的收缩速率加速机制

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To ensure timely cytokinesis, the equatorial actomyosin contractile ring constricts at a relatively constant rate despite its progressively decreasing size. Thus, the per-unit-length constriction rate increases as ring perimeter decreases. To understand this acceleration, we monitored cortical surface and ring component dynamics during the first cytokinesis of the Caenorhabditis elegans embryo. We found that, per unit length, the amount of ring components (myosin, anillin) and the constriction rate increase with parallel exponential kinetics. Quantitative analysis of cortical flow indicated that the cortex within the ring is compressed along the axis perpendicular to the ring, and the per-unit-length rate of cortical compression increases during constriction in proportion to ring myosin. We propose that positive feedback between ring myosin and compression-driven flow of cortex into the ring drives an exponential increase in the per-unit-length amount of ring myosin to maintain a high ring constriction rate and support this proposal with an analytical mathematical model.
机译:为了确保及时的胞质分裂,尽管其大小逐渐减小,但赤道放线菌素收缩环以相对恒定的速率收缩。因此,单位长度的收缩率随着环周长的减小而增加。为了了解这种加速,我们在秀丽隐杆线虫胚胎的第一次胞质分裂过程中监测了皮质表面和环成分的动态。我们发现,每单位长度,环组分(肌球蛋白,阿尼林)的数量和收缩率随平行指数动力学而增加。皮质流动的定量分析表明,环内的皮质沿着垂直于环的轴被压缩,并且在收缩过程中,单位长度的皮质压缩率与环肌球蛋白成比例地增加。我们提出,环肌球蛋白与压缩驱动的皮质进入环的流动之间的正反馈驱动环肌球蛋白的单位长度量呈指数增长,以维持较高的环收缩率,并以解析数学模型支持该提议。

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