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Electric fields generated by synchronized oscillations of microtubules centrosomes and chromosomes regulate the dynamics of mitosis and meiosis

机译:微管中心体和染色体同步振荡产生的电场调节有丝分裂和减数分裂的动力学

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摘要

Super-macromolecular complexes play many important roles in eukaryotic cells. Classical structural biological studies focus on their complicated molecular structures, physical interactions and biochemical modifications. Recent advances concerning intracellular electric fields generated by cell organelles and super-macromolecular complexes shed new light on the mechanisms that govern the dynamics of mitosis and meiosis. In this review we synthesize this knowledge to provide an integrated theoretical model of these cellular events. We suggest that the electric fields generated by synchronized oscillation of microtubules, centrosomes, and chromatin fibers facilitate several events during mitosis and meiosis, including centrosome trafficking, chromosome congression in mitosis and synapsis between homologous chromosomes in meiosis. These intracellular electric fields are generated under energy excitation through the synchronized electric oscillations of the dipolar structures of microtubules, centrosomes and chromosomes, three of the super-macromolecular complexes within an animal cell.
机译:超大分子复合物在真核细胞中起许多重要作用。古典结构生物学研究的重点是复杂的分子结构,物理相互作用和生化修饰。由细胞器和超大分子复合物产生的细胞内电场的最新进展为控制有丝分裂和减数分裂动力学的机制提供了新的思路。在这篇综述中,我们综合了这些知识以提供这些细胞事件的综合理论模型。我们建议微管,中心体和染色质纤维同步振荡产生的电场促进有丝分裂和减数分裂过程中的几个事件,包括中心体运输,有丝分裂中的染色体大会和减数分裂中同源染色体之间的突触。这些细胞内电场是在能量激发下通过微管,中心体和染色体(动物细胞中的三种超大分子复合物)的偶极结构的同步电振荡产生的。

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