Neuhaus E M, Horstmann H, Almers W, Maniak M, Soldati T
Department of Molecular Cell Research, Max-Planck-Institute for Medical Research, Heidelberg, Germany.
J Struct Biol. 1998;121(3):326-42. doi: 10.1006/jsbi.1998.3971.
In order to dissect at the ultrastructural level the morphology of highly dynamic processes such as cell motility, membrane trafficking events, and organelle movements, it is necessary to fix/stop time-dependent events in the millisecond range. Ideally, immunoelectron microscopical labeling experiments require the availability of high-affinity antibodies and accessibility to all compartments of the cell. The biggest challenge is to define an optimum between significant preservation of the antigenicity in the fixed material without compromising the intactness of fine structures. Here, we present a procedure which offers an opportunity to unify preparation of cell monolayers for immunocytochemistry in fluorescence and electron microscopy. This novel strategy combines a rapid ethane-freezing technique with a low temperature methanol-fixation treatment (EFMF) and completely avoids chemical fixatives. It preserves the position and delicate shape of cells and organelles and leads to improved accessibility of the intracellular antigens and to high antigenicity preservation. We illustrate the establishment of this procedure using Dictyostelium discoideum, a powerful model organism to study molecular mechanisms of membrane trafficking and cytoskeleton.
为了在超微结构水平剖析细胞运动、膜运输事件和细胞器运动等高动态过程的形态,有必要在毫秒范围内固定/停止时间依赖性事件。理想情况下,免疫电子显微镜标记实验需要高亲和力抗体以及能够进入细胞的所有区室。最大的挑战是在不损害精细结构完整性的前提下,确定固定材料中抗原性显著保留的最佳条件。在此,我们提出一种方法,该方法为统一用于荧光和电子显微镜免疫细胞化学的细胞单层制备提供了机会。这种新策略将快速无乙烷冷冻技术与低温甲醇固定处理(EFMF)相结合,完全避免了化学固定剂。它保留了细胞和细胞器的位置及精细形态,提高了细胞内抗原的可及性并保留了高抗原性。我们以盘基网柄菌为例说明该方法的建立,盘基网柄菌是研究膜运输和细胞骨架分子机制的强大模式生物。