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Kiyomitsu, A.

Publications and source records attributed to Kiyomitsu, A..

5 recordsLinked to original sources

Balanced RCC1 activity organizes the specialized spindle midplane during cleavage divisions

Chromosome-bound RCC1 generates Ran-GTP signals to organize functional spindles for faithful chromosome segregation during mitosis and meiosis. RCC1 is the sole guanine nucleotide exchange factor (GEF) for Ran and is essential for spindle assembly during early, but not late, embryonic divisions. However, how RCC1 organizes the specialized embryonic spindle and when its function changes during early embryogenesis remain unclear. Here, using time-resolved RCC1 depletion and depletion-rescue experiments in medaka embryos, we show that RCC1 GEF activity is specifically required before the blastula stage to organize a specialized metaphase spindle mid-plane that ensures faithful chromosome segregation. Mechanistically, RCC1 promotes the accumulation of the canonical Ran effectors HURP and KIFC1/HSET, and unexpectedly, the microtubule motor dynein at the spindle midplane during early embryonic divisions. Intriguingly, a five-fold increase in RCC1 expression phenocopies RCC1 depletion, disrupting spindle-midplane organization and the accumulation of KIFC1 and dynein in a GEF activity-dependent manner. Together, our findings demonstrate that both insufficient and excessive RCC1 GEF activity compromise embryonic spindle assembly, revealing that balanced Ran activation is required to organize the specialized spindle midplane during vertebrate cleavage divisions. HighlightsRCC1 requirement changes with embryonic spindle remodeling before the blastula stage. RCC1 GEF activity is required to organize the specialized embryonic spindle midplane. RCC1 promotes the accumulation of HURP, KIFC1, and dynein at the spindle midplane. Both insufficient and excessive RCC1 GEF activity disrupt the spindle midplane organization.

cell biology↗

KIFC1 overexpression induces monopolar spindles by preventing centrosome separation during rapid cleavage divisions

Bipolar spindle assembly is essential for accurate chromosome segregation. KIFC1, a conserved Ran- regulated minus-end-directed kinesin-14 motor, accumulates in the nucleus during interphase and promotes chromatin-mediated spindle assembly during mitosis and meiosis. In human oocytes, reduced KIFC1 levels destabilize meiotic spindles, a defect that can be rescued by increasing KIFC1 expression. However, how KIFC1 expression levels affect mitotic spindle stability during cleavage divisions in vertebrates remains unclear. Here, we show that whereas an approximately 50% reduction in KIFC1 causes no detectable defects in spindle assembly, approximately 10-fold overexpression of KIFC1 induces monopolar spindle formation, leading to chromosome mis-segregation and embryonic lethality in medaka early embryos. KIFC1 overexpression results in ectopic centrosomal localization during interphase, impairing the separation of duplicated centrosomes before mitotic entry. Analyses of KIFC1 mutants demonstrated that these centrosome separation defects require KIFC1s microtubule-binding and motor activities and are further enhanced by deletion of KIFC1s nuclear localization sequences. Together, our findings demonstrate that tight regulation of KIFC1 expression and its nuclear sequestration is essential for the proper separation and positioning of duplicated centrosomes before mitotic entry, thereby ensuring efficient bipolar spindle assembly during the rapid cleavage divisions of vertebrate embryos. HighlightsO_LIKIFC1 accumulates in the nucleus and at the embryonic spindle midplane via the Ran pathway. C_LIO_LIPartial KIFC1 depletion does not impair spindle assembly in medaka early embryos. C_LIO_LIKIFC1 overexpression induces monopolar spindles by preventing centrosome separation. C_LIO_LICentrosome separation defects require KIFC1 microtubule-binding and motor activity. C_LI

cell biology↗

Local fluidization of an active cytoplasmic gel partitions large cells

Early animal embryos undergo rapid cleavages that partition cytoplasmic volumes orders of magnitude larger than those of somatic cells1. Each division must reposition nuclei and centrosomes and distribute organelles within minutes, over distances up to hundreds of micrometers2. Cleavage furrows are positioned by microtubule asters3,4, 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.

cell biology↗

Spatiotemporal organization of dynein in bulk cytoplasm promotes aster growth and positioning in large embryos

During cleavage in vertebrates, large microtubule asters grow from centrosomes in anaphase. The microtubule motor dynein pulls on these asters in bulk cytoplasm and positions centrosomes to determine cleavage geometry. However, how aster growth and pulling are coordinated remains unclear. We discovered that small metaphase asters generate a halo-like enrichment of cytoplasmic dynein at the aster periphery in medaka early embryos. In anaphase, dynein relocates from the halo to growing asters and neighboring membranous organelles, coincident with aster expansion and centrosome movement. Dynein inhibition or localized halo disruption prevents centrosome movement. Unexpectedly, dynein inhibition also suppresses aster growth and causes ectopic cytoplasmic microtubule nucleation, which leads to ectopic furrows. We propose that inactive dynein that accumulated at the metaphase aster periphery is activated in anaphase and incorporates both microtubule nucleators and organelles into growing asters to coordinately promote aster growth and pulling for efficient centrosome positioning in rapidly-dividing, large embryos.

cell biology↗

Ran-GTP assembles a specialized spindle structure for accurate chromosome segregation in medaka early embryos

Despite drastic cellular changes during cleavage divisions, a mitotic spindle is assembled in each blastomere to accurately segregate duplicated chromosomes. Recent studies indicate that early embryonic divisions are highly error-prone in bovines and humans. However, processes and mechanisms of embryonic spindle assembly remain little understood in vertebrates. Here, we established live functional assay systems in medaka fish (Oryzias latipes) embryos by combining CRISPR knock-in with an auxin-inducible degron technology. In contrast to mammals, mitoses during cleavage divisions are very rapid (<12 min), but segregation errors are rarely observed. Importantly, we found that the Ran-GTP gradient assembles a specialized, dense microtubule network at the spindle midplane during metaphase, which is essential for faithful chromosome segregation in early embryos. In contrast, Ran-GTP becomes dispensable for chromosome segregation in later stages, where spindles are morphologically remodeled into short, somatic-like spindles lacking the dense microtubule network. We propose that the specialized Ran-based spindle structure ensures high fidelity of chromosome segregation in large, vertebrate early embryos.

developmental biology↗