Spatiotemporal regulation of LGN/NuMA and astral microtubules generate mirror symmetric spindle rotations
Chenevert, J.; Rosfelter, A.; Gonzalez-Suarez, D.; Caballero-Mancebo, S.; Costache, V.; Stolz, P.; Besnardeau, L.; Dumollard, R.; McDougall, A.
Show abstract
The positioning of the mitotic spindle controls the size, content, and position of daughter cells within embryos and tissues. A major spindle positioning mechanism is cortical pulling whereby the membrane-bound complex LGN/NuMA/Dynein captures astral microtubules and pulls centrosomes toward the cell cortex. Cytoplasmic dynein and astral growth tend to counteract cortical pulling and position spindles at the cell center. It remains unclear how these opposing forces cooperate. Here we examine the ascidian embryo, where spindles of two germ line cells rotate toward one another causing divisions which are both mirror symmetric and unequal. We find that this spindle behavior is governed by transient enrichment of LGN and NuMA and enhanced cortical pulling at the shared cell contact. Inhibition of the LGN/NuMA complex disrupts spindle alignment, unequal cleavage, and mirror symmetry. Temporal analysis shows that cortical pulling force initates at anaphase when there is a sharp increase in astral microtubule length. These results point towards two phases of spindle positioning forces, with cytoplasmic pulling and cortical pulling operating sequentially during early and late mitosis.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Rapid transcriptional response to a dynamic morphogen by time integration 96%
- Disassembly of actin and keratin networks by Aurora B kinase at the midplane of cleaving Xenopus laevis eggs 96%
- Simultaneous regulation of cytokinetic furrow and nucleus positions by cortical tension contributes to proper DNA segregation during late mitosis 95%
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- Temporal and spatial coordination of DNA segregation and cell division in an archaeon. 94%
- Mad dephosphorylation at the nuclear envelope is essential for asymmetric stem cell division 94%
- Spindle reorientation in response to mechanical stress is an emergent property of the spindle positioning mechanisms 94%
Similar papers in this journal
- Coordinated chromosome motion emerges from mechanical coupling mediated by the physical spindle environment 96%
- Abl signaling shapes the intrinsic fluctuations of actin to direct growth of a pioneer axon in Drosophila 96%
- Isotropic myosin-generated tissue tension is required for the dynamic orientation of the mitotic spindle 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.