Bothwell John H F, Kisielewska Jolanta, Genner Martin J, McAinsh Martin R, Brownlee Colin
Marine Biological Association of the UK, The Laboratory, Citadel Hill, Plymouth PL1 2PB,UK.
Development. 2008 Jun;135(12):2173-81. doi: 10.1242/dev.017558. Epub 2008 May 14.
Zygotes of the fucoid brown algae provide excellent models for addressing fundamental questions about zygotic symmetry breaking. Although the acquisition of polarity is tightly coordinated with the timing and orientation of the first asymmetric division--with zygotes having to pass through a G1/S-phase checkpoint before the polarization axis can be fixed--the mechanisms behind the interdependence of polarization and cell cycle progression remain unclear. In this study, we combine in vivo Ca2+ imaging, single cell monitoring of S-phase progression and multivariate analysis of high-throughput intracellular Ca2+ buffer loading to demonstrate that Ca2+ signals coordinate polarization and cell cycle progression in the Fucus serratus zygote. Consistent with earlier studies on this organism, and in contrast to animal models, we observe no fast Ca2+ wave following fertilization. Rather, we show distinct slow localized Ca2+ elevations associated with both fertilization and S-phase progression, and we show that both S-phase and zygotic polarization are dependent on pre-S-phase Ca2+ increases. Surprisingly, this Ca2+ requirement cannot be explained by co-dependence on a single G1/S-phase checkpoint, as S phase and zygotic polarization are differentially sensitive to pre-S-phase Ca2+ elevations and can be uncoupled. Furthermore, subsequent cell cycle progression through M phase is independent of localized actin polymerization and zygotic polarization. This absence of a morphogenesis checkpoint, together with the observed Ca2+-dependences of S phase and polarization, show that the regulation of zygotic division in the brown algae differs from that in other eukaryotic model systems, such as yeast and Drosophila.
岩藻褐藻的合子为解决有关合子对称性打破的基本问题提供了极佳的模型。尽管极性的获得与第一次不对称分裂的时间和方向紧密协调——合子在极化轴固定之前必须通过一个G1/S期检查点——但极化与细胞周期进程相互依存背后的机制仍不清楚。在本研究中,我们结合体内Ca2+成像、S期进程的单细胞监测以及高通量细胞内Ca2+缓冲液加载的多变量分析,以证明Ca2+信号在锯齿墨角藻合子中协调极化和细胞周期进程。与对该生物体的早期研究一致,并且与动物模型不同,我们观察到受精后没有快速的Ca2+波。相反,我们显示出与受精和S期进程相关的明显缓慢的局部Ca2+升高,并且我们表明S期和合子极化都依赖于S期前Ca2+的增加。令人惊讶的是,这种对Ca2+的需求不能通过对单个G1/S期检查点的共同依赖来解释,因为S期和合子极化对S期前Ca2+升高的敏感性不同,并且可以解偶联。此外,随后通过M期的细胞周期进程独立于局部肌动蛋白聚合和合子极化。这种形态发生检查点的缺失,以及观察到的S期和极化对Ca2+的依赖性,表明褐藻中合子分裂的调控不同于其他真核模型系统,如酵母和果蝇。