Mooney Paul, Sulerud Taylor, Pelletier James F, Dilsaver Matthew R, Tomschik Miroslav, Geisler Christoph, Gatlin Jesse C
Department of Molecular Biology, University of Wyoming, Laramie, Wyoming, 82071, USA.
Molecular and Cellular Life Sciences Program, University of Wyoming, Laramie, Wyoming, 82071, USA.
Cytoskeleton (Hoboken). 2017 Jun;74(6):221-232. doi: 10.1002/cm.21368. Epub 2017 May 22.
The ability to visualize cytoskeletal proteins and their dynamics in living cells has been critically important in advancing our understanding of numerous cellular processes, including actin- and microtubule (MT)-dependent phenomena such as cell motility, cell division, and mitosis. Here, we describe a novel set of fluorescent protein (FP) fusions designed specifically to visualize MTs in living systems using fluorescence microscopy. Each fusion contains a FP module linked in frame to a modified phospho-deficient version of the MT-binding domain of Tau (mTMBD). We found that expressed and purified constructs containing a single mTMBD decorated Xenopus egg extract spindles more homogenously than similar constructs containing the MT-binding domain of Ensconsin, suggesting that the binding affinity of mTMBD is minimally affected by localized signaling gradients generated during mitosis. Furthermore, MT dynamics were not grossly perturbed by the presence of Tau-based FP fusions. Interestingly, the addition of a second mTMBD to the opposite terminus of our construct caused dramatic changes to the spatial localization of probes within spindles. These results support the use of Tau-based FP fusions as minimally perturbing tools to accurately visualize MTs in living systems.
在活细胞中可视化细胞骨架蛋白及其动力学的能力对于推进我们对众多细胞过程的理解至关重要,这些过程包括肌动蛋白和微管(MT)依赖性现象,如细胞运动、细胞分裂和有丝分裂。在此,我们描述了一组新的荧光蛋白(FP)融合体,其专门设计用于通过荧光显微镜在活体系统中可视化微管。每个融合体包含一个与Tau的微管结合结构域的修饰磷酸化缺陷版本(mTMBD)框内连接的FP模块。我们发现,与含有Ensconsin微管结合结构域的类似构建体相比,含有单个mTMBD的表达和纯化构建体更均匀地装饰非洲爪蟾卵提取物纺锤体,这表明mTMBD的结合亲和力受有丝分裂期间产生的局部信号梯度的影响最小。此外,基于Tau的FP融合体的存在并未严重扰乱微管动力学。有趣的是,在我们构建体的相对末端添加第二个mTMBD会导致纺锤体内探针的空间定位发生显著变化。这些结果支持将基于Tau的FP融合体用作最小干扰工具,以在活体系统中准确可视化微管。