Department of Biological Sciences, Marquette University, Milwaukee, United States.
Department of Biology, Texas A&M University, College Station, United States.
Elife. 2017 Sep 6;6:e26002. doi: 10.7554/eLife.26002.
Although microtubules are known for dynamic instability, the dynamicity is considered to be tightly controlled to support a variety of cellular processes. Yet diverse evidence suggests that this is not applicable to , a biflagellate fresh water green alga, but intense autofluorescence from photosynthesis pigments has hindered the investigation. By expressing a bright fluorescent reporter protein at the endogenous level, we demonstrate in real time discreet sweeping changes in algal microtubules elicited by rises of intracellular H and Na. These results from this model organism with characteristics of animal and plant cells provide novel explanations regarding how pH may drive cellular processes; how plants may respond to, and perhaps sense stresses; and how organisms with a similar sensitive cytoskeleton may be susceptible to environmental changes.
虽然微管以动态不稳定性而闻名,但这种动态性被认为是受到严格控制的,以支持各种细胞过程。然而,各种证据表明,这不适用于一种具有双鞭毛的淡水绿藻,而是光合作用色素的强烈自发荧光阻碍了研究。通过在内源水平上表达明亮的荧光报告蛋白,我们实时演示了细胞内 H 和 Na 升高引起的藻类微管的离散清扫变化。这些来自具有动植物细胞特征的模式生物的结果提供了关于 pH 如何驱动细胞过程的新解释;植物如何应对和感知压力;以及具有类似敏感细胞骨架的生物如何容易受到环境变化的影响。