McNally Karen Perry, Buster Dan, McNally Francis J
Section of Molecular and Cellular Biology, University of California, Davis 95616, USA.
Cell Motil Cytoskeleton. 2002 Dec;53(4):337-49. doi: 10.1002/cm.10080.
Microtubules are essential for a wide range of cellular processes that vary between cell types. Katanin is a microtubule-severing protein that carries out an essential role in meiotic spindles in Caenorhabditis elegans and a non-essential role in mitotic spindles of vertebrates. In contrast to these M-phase associated roles, katanin is also essential for post-mitotic differentiation events in vertebrate neurons and in Arabidopsis. This diversity of function suggests that katanin's activity might be regulated by multiple mechanisms. Because katanin is active in M-phase Xenopus extracts but not in interphase extracts, we assayed for regulators of katanin's activity in these extracts. The microtubule-severing activity of purified katanin was inhibited by interphase Xenopus extracts. Fractionation revealed that this inhibition was due to at least 4 separable components, one of which contains the MAP4 homolog, XMAP230. Inhibition of katanin-mediated microtubule-disassembly activity by the XMAP230-containing fraction was reversible by cyclinB/cdk1, suggesting one possible mechanism for the increased severing activity observed in M-phase Xenopus extracts. In a previous study, spindle pole association by katanin was essential for its activity during mitosis suggesting that katanin's activity might also be regulated by co-localization with an activator. The polo-like kinase, Plx1, co-localized with katanin at spindle poles in vivo and purified Plx1 increased the microtubule-severing activity of katanin in vitro. These in vitro experiments illustrate the potential complexity of the regulation of katanin's activity in vivo and may explain how katanin can carry out widely different functions in different cell types.
微管对于多种因细胞类型而异的细胞过程至关重要。katanin是一种微管切断蛋白,在秀丽隐杆线虫的减数分裂纺锤体中发挥重要作用,而在脊椎动物的有丝分裂纺锤体中则发挥非必需作用。与这些与M期相关的作用不同,katanin在脊椎动物神经元和拟南芥的有丝分裂后分化事件中也是必不可少的。这种功能的多样性表明katanin的活性可能受多种机制调控。由于katanin在M期非洲爪蟾提取物中具有活性,而在间期提取物中无活性,我们在这些提取物中检测了katanin活性的调节因子。纯化的katanin的微管切断活性受到间期非洲爪蟾提取物的抑制。分级分离显示这种抑制至少归因于4种可分离的成分,其中一种含有MAP4同源物XMAP230。含XMAP230的组分对katanin介导的微管解聚活性的抑制可被细胞周期蛋白B/细胞周期蛋白依赖性激酶1逆转,这提示了在M期非洲爪蟾提取物中观察到的切断活性增加的一种可能机制。在先前的一项研究中,katanin与纺锤体极的结合对其在有丝分裂期间的活性至关重要,这表明katanin的活性也可能通过与激活剂共定位来调控。polo样激酶Plx1在体内与katanin在纺锤体极共定位,纯化的Plx1在体外增加了katanin的微管切断活性。这些体外实验说明了体内katanin活性调控的潜在复杂性,并可能解释katanin如何在不同细胞类型中发挥广泛不同的功能。