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  Spindle oscillations during asymmetric cell division require a threshold number of active cortical force generators

Pecreaux, J., Roper, J.-C., Kruse, K., Julicher, F., Hyman, A. A., Grill, S. W., et al. (2006). Spindle oscillations during asymmetric cell division require a threshold number of active cortical force generators. Current Biology, 16(21), 2111-2122.

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Pecreaux, Jacques1, Autor           
Roper, Jens-Christian1, Autor           
Kruse, Karsten, Autor
Julicher, Frank, Autor
Hyman, Anthony A1, Autor           
Grill, Stephan W1, Autor           
Howard, Jonathon1, Autor           
Affiliations:
1Max Planck Institute of Molecular Cell Biology and Genetics, Max Planck Society, ou_2340692              

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 Zusammenfassung: BACKGROUND: Asymmetric division of the C. elegans zygote is due to the posterior-directed movement of the mitotic spindle during metaphase and anaphase. During this movement along the anterior-posterior axis, the spindle oscillates transversely. These motions are thought to be driven by a force-generating complex-possibly containing the motor protein cytoplasmic dynein-that is located at the cell cortex and pulls on microtubules growing out from the spindle poles. A theoretical analysis indicates that the oscillations might arise from mechanical coordination of the force-generating motors, and this coordination is mediated by the load dependence of the motors' detachment from the microtubules. The model predicts that the motor activity must exceed a threshold for oscillations to occur. RESULTS: We have tested the existence of a threshold by using RNA interference to gradually reduce the levels of dynein light intermediate chain as well as GPR-1 and GPR-2 that are involved in the G protein-mediated regulation of the force generators. We found an abrupt cessation of oscillations as expected if the motor activity dropped below a threshold. Furthermore, we can account for the complex choreography of the mitotic spindle-the precise temporal coordination of the buildup and die-down of the transverse oscillations with the posterior displacement-by a gradual increase in the processivity of a single type of motor machinery during metaphase and anaphase. CONCLUSIONS: The agreement between our results and modeling suggests that the force generators themselves have the intrinsic capability of generating oscillations when opposing forces exceed a threshold.

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 Datum: 2006
 Publikationsstatus: Erschienen
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Titel: Current Biology
Genre der Quelle: Zeitschrift
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Ort, Verlag, Ausgabe: -
Seiten: - Band / Heft: 16 (21) Artikelnummer: - Start- / Endseite: 2111 - 2122 Identifikator: -