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Stronger net posterior cortical forces and asymmetric microtubule arrays produce simultaneous centration and rotation of the pronuclear complex in the early Caenorhabditis elegans embryo

机译:较强的净后皮质力和不对称微管阵列在秀丽隐杆线虫早期胚胎中同时产生原核复合物的集中和旋转

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Positioning of microtubule-organizing centers (MTOCs) incorporates biochemical and mechanical cues for proper alignment of the mitotic spindle and cell division site. Current experimental and theoretical studies in the early Caenorhabditis elegans embryo assume remarkable changes in the origin and polarity of forces acting on the MTOCs. These changes must occur over a few minutes, between initial centration and rotation of the pronuclear complex and entry into mitosis, and the models do not replicate in vivo timing of centration and rotation. Here we propose a model that incorporates asymmetry in the microtubule arrays generated by each MTOC, which we demonstrate with in vivo measurements, and a similar asymmetric force profile to that required for posterior-directed spindle displacement during mitosis. We find that these asymmetries are capable of and important for recapitulating the simultaneous centration and rotation of the pronuclear complex observed in vivo. The combination of theoretical and experimental evidence provided here offers a unified framework for the spatial organization and forces needed for pronuclear centration, rotation, and spindle displacement in the early C. elegans embryo.
机译:微管组织中心(MTOCs)的定位结合了生化和机械线索,以使有丝分裂纺锤体和细胞分裂部位正确对齐。当前在秀丽隐杆线虫胚胎中的实验和理论研究假设作用在MTOC上的力的起源和极性发生了显着变化。这些变化必须在原核复合体的最初集中和旋转与进入有丝分裂之间的几分钟内发生,并且模型不能复制体内集中和旋转的时间。在这里,我们提出了一个模型,该模型在每个MTOC生成的微管阵列中合并了不对称性,我们通过体内测量证明了这一模型,并且该模型与有丝分裂期间后向纺锤体移位所需的不对称力曲线相似。我们发现这些不对称能力能够概括在体内观察到的原核复合物的同时集中和旋转。这里提供的理论和实验证据的结合为线虫早期胚中的原核集中,旋转和纺锤体移位所需的空间组织和力提供了统一的框架。

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