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Updated: Oct 9, 2026

Rapid Encapsulation of Reconstituted Cytoskeleton Inside Giant Unilamellar Vesicles
Published on: November 10, 2021
Local fluidization of an active cytoplasmic gel partitions large cells
Abstract:
Early animal embryos undergo rapid cleavages that partition cytoplasmic volumes orders of magnitude larger than those of somatic cells 1 . Each division must reposition nuclei and centrosomes and distribute organelles within minutes, over distances up to hundreds of micrometers 2 . Cleavage furrows are positioned by microtubule asters 3,4 , but the mechanical mechanism for long-range transport of cytoplasmic components before cytokinesis was unknown. Here, we show that cytoplasm behaves as a locally switchable active material. Fluidization at the midplane allows bulk actomyosin to convert a local mechanical asymmetry into directed global flows of all components as a composite material. Using an actin-intact cycling Xenopus egg extract together with Xenopus and medaka embryos, we find that F-actin mechanically couples microtubule asters, organelles, nuclei and centrosomes into a gel-like composite that propagates forces over hundreds of micrometers. After mitosis, Aurora B kinase patterns a locally fluidized midplane, from which myosin-II contractility drives coherent cytoplasmic flows. A fluid dynamics model accounts for the observed flow geometry and rates. Our results reveal how local control of the material state of cytoplasm converts mitotic symmetry breaking into long-range intracellular transport and identify bulk actomyosin as the active stress generator that partitions embryonic cytoplasm as a composite gel.
