Marrocco Katia, Thomann Alexis, Parmentier Yves, Genschik Pascal, Criqui Marie Claire
Institut de Biologie Moléculaire des Plantes du CNRS, 67084 Strasbourg Cedex, France.
Development. 2009 May;136(9):1475-85. doi: 10.1242/dev.035535. Epub 2009 Mar 31.
Selective protein degradation via the ubiquitin-26S proteasome is a major mechanism underlying DNA replication and cell division in all eukaryotes. In particular, the APC/C (anaphase promoting complex or cyclosome) is a master ubiquitin protein ligase (E3) that targets PDS1/SECURIN and cyclin B for degradation allowing sister chromatid separation and exit from mitosis, respectively. Interestingly, it has been found that the APC/C remains active in differentiated neurons in which the E3 ligase regulates axon growth, neuronal survival and synaptic functions. However, despite these recent findings, the role of APC/C in differentiated cells and the regulation of its activity beyond cell division is still poorly understood. Here, we investigate the activity and function of APC/C in the model plant Arabidopsis thaliana. We used cyclin reporter constructs to follow APC/C activity during plant development and found that this E3 ligase remains active in most post-mitotic plant cells. Strikingly, hypomorphic mutant lines, in which the APC/C activity is reduced, exhibited several developmental abnormalities, including defects in cotyledon vein patterning and internode elongation leading to a characteristic broomhead-like phenotype. Histological analyses revealed an increased amount of vascular tissue, most notably xylem and lignified sclerenchyma, indicating a role for APC/C in plant vasculature development and organization.
通过泛素 - 26S蛋白酶体进行的选择性蛋白质降解是所有真核生物中DNA复制和细胞分裂的主要机制。特别是,后期促进复合体/细胞周期体(APC/C)是一种主要的泛素蛋白连接酶(E3),它靶向PDS1/分离酶抑制蛋白和细胞周期蛋白B进行降解,分别允许姐妹染色单体分离和退出有丝分裂。有趣的是,已经发现APC/C在分化的神经元中仍然活跃,其中E3连接酶调节轴突生长、神经元存活和突触功能。然而,尽管有这些最新发现,但APC/C在分化细胞中的作用及其在细胞分裂之外的活性调节仍知之甚少。在这里,我们研究了模式植物拟南芥中APC/C的活性和功能。我们使用细胞周期蛋白报告构建体来跟踪植物发育过程中的APC/C活性,发现这种E3连接酶在大多数有丝分裂后的植物细胞中仍然活跃。引人注目的是,APC/C活性降低的亚等位基因突变系表现出几种发育异常,包括子叶叶脉模式和节间伸长缺陷,导致特征性的扫帚头样表型。组织学分析显示维管组织数量增加,最明显的是木质部和木质化厚壁组织,表明APC/C在植物维管系统发育和组织中起作用。