Localized RanGTP accumulation promotes microtubule nucleation at kinetochores in somatic mammalian cells

被引:69
作者
Torosantucci, Liliana [1 ]
De Luca, Maria [1 ]
Guarguaglini, Giulia [1 ]
Lavia, Patrizia [1 ]
Degrassi, Francesca [1 ]
机构
[1] Univ Roma La Sapienza, IBPM, Natl Res Council, I-00185 Rome, Italy
关键词
D O I
10.1091/mbc.E07-10-1050
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Centrosomes are the major sites for microtubule nucleation in mammalian cells, although both chromatin-and kinetochore-mediated microtubule nucleation have been observed during spindle assembly. As yet, it is still unclear whether these pathways are coregulated, and the molecular requirements for microtubule nucleation at kinetochore are not fully understood. This work demonstrates that kinetochores are initial sites for microtubule nucleation during spindle reassembly after nocodazole. This process requires local RanGTP accumulation concomitant with delocalization from kinetochores of the hydrolysis factor RanGAP1. Kinetochore-driven microtubule nucleation is also activated after cold-induced microtubule disassembly when centrosome nucleation is impaired, e. g., after Polo-like kinase 1 depletion, indicating that dominant centrosome activity normally masks the kinetochore-driven pathway. In cells with unperturbed centrosome nucleation, defective RanGAP1 recruitment at kinetochores after treatment with the Crm1 inhibitor leptomycin B activates kinetochore microtubule nucleation after cold. Finally, nascent microtubules associate with the RanGTP-regulated microtubule-stabilizing protein HURP in both cold- and nocodazole-treated cells. These data support a model for spindle assembly in which RanGTP-dependent abundance of nucleation/stabilization factors at centrosomes and kinetochores orchestrates the contribution of the two spindle assembly pathways in mammalian cells. The complex of RanGTP, the export receptor Crm1, and nuclear export signal-bearing proteins regulates microtubule nucleation at kinetochores.
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页码:1873 / 1882
页数:10
相关论文
共 40 条
[11]  
De Luca M, 2006, CELL CYCLE, V5, P296
[12]   CRM1 is an export receptor for leucine-rich nuclear export signals [J].
Fornerod, M ;
Ohno, M ;
Yoshida, M ;
Mattaj, IW .
CELL, 1997, 90 (06) :1051-1060
[13]   Mechanisms and molecules of the mitotic spindle [J].
Gadde, S ;
Heald, R .
CURRENT BIOLOGY, 2004, 14 (18) :R797-R805
[14]   Ran induces spindle assembly by reversing the inhibitory effect of importin α on TPX2 activity [J].
Gruss, OJ ;
Carazo-Salas, RE ;
Schatz, CA ;
Guarguaglini, G ;
Kast, J ;
Wilm, M ;
Le Bot, N ;
Vernos, I ;
Karsenti, E ;
Mattaj, IW .
CELL, 2001, 104 (01) :83-93
[15]   SUMO-1 targets RanGAP1 to kinetochores and mitotic spindles [J].
Joseph, J ;
Tan, SH ;
Karpova, TS ;
McNally, JG ;
Dasso, M .
JOURNAL OF CELL BIOLOGY, 2002, 156 (04) :595-602
[16]   Analysis of a RanGTP-regulated gradient in mitotic somatic cells [J].
Kaláb, P ;
Pralle, A ;
Isacoff, EY ;
Heald, R ;
Weis, K .
NATURE, 2006, 440 (7084) :697-701
[17]   The Ran GTPase regulates mitotic spindle assembly [J].
Kalab, P ;
Pu, RT ;
Dasso, M .
CURRENT BIOLOGY, 1999, 9 (09) :481-484
[18]   Part of Ran is associated with AKAP450 at the centrosome:: Involvement in microtubule-organizing activity [J].
Keryer, G ;
Di Fiore, B ;
Celati, C ;
Lechtreck, KF ;
Mogensen, M ;
Delouvée, A ;
Lavia, P ;
Borens, M ;
Tassin, AM .
MOLECULAR BIOLOGY OF THE CELL, 2003, 14 (10) :4260-4271
[19]   Centrosome-independent mitotic spindle formation in vertebrates [J].
Khodjakov, A ;
Cole, RW ;
Oakley, BR ;
Rieder, CL .
CURRENT BIOLOGY, 2000, 10 (02) :59-67
[20]   Minus-end capture of preformed kinetochore fibers contributes to spindle morphogenesis [J].
Khodjakov, A ;
Copenagle, L ;
Gordon, MB ;
Compton, DA ;
Kapoor, TM .
JOURNAL OF CELL BIOLOGY, 2003, 160 (05) :671-683