Pezzati R, Grohovaz F
Consiglio Nazionale delle Ricerche, Cellular and Molecular Pharmacology Centre, S. Raffaele Scientific Institute, Milan, Italy.
Philos Trans R Soc Lond B Biol Sci. 1999 Feb 28;354(1381):373-8. doi: 10.1098/rstb.1999.0389.
Until now, most ultrastructural studies on the neuromuscular junction have been carried out on samples first exposed to chemical treatments--with fixatives and/or dehydration agents--that are known to induce, or to be inadequate to prevent, artefactual changes of the native state. We report here on the potential of a physical approach to the preparation of samples that combines quick-freezing and freeze-drying (with or without exposure to OsO4 vapours) followed by direct embedding of the samples in various resins. Thin sections from physically processed frog neuromuscular junctions, when compared to their chemically fixed counterparts, exhibit an overall excellent preservation, with the organelles retaining their native density and shape. These preparations were also investigated by electron spectroscopic imaging and electron energy loss spectroscopy, obtaining high resolution maps of native total calcium distribution within the nerve terminal. Finally, thin sections from analogously processed, however unfixed, preparations embedded in Lowicryl, were immunogold labelled before exposure to OsO4. Nerve-muscle preparations treated this way exhibited adequate preservation of ultrastructure and revealed the distribution of synaptophysin with high sensitivity and resolution. In conclusion, we provide an overview of the potential of the quick-freezing-freeze-drying approach in the study of the neuromuscular junction function.
到目前为止,大多数关于神经肌肉接头的超微结构研究都是在首先经过化学处理(使用固定剂和/或脱水剂)的样本上进行的,这些化学处理已知会诱导或不足以防止天然状态的人为变化。我们在此报告一种物理方法制备样本的潜力,该方法结合了快速冷冻和冷冻干燥(有或没有暴露于四氧化锇蒸汽),然后将样本直接嵌入各种树脂中。与化学固定的青蛙神经肌肉接头相比,经过物理处理的青蛙神经肌肉接头的薄切片整体保存良好,细胞器保持其天然密度和形状。还通过电子光谱成像和电子能量损失光谱对这些制剂进行了研究,获得了神经末梢内天然总钙分布的高分辨率图谱。最后,在暴露于四氧化锇之前,对嵌入Lowicryl中的经过类似处理但未固定的制剂的薄切片进行免疫金标记。以这种方式处理的神经肌肉制剂表现出足够的超微结构保存,并以高灵敏度和分辨率揭示了突触素的分布。总之,我们概述了快速冷冻-冷冻干燥方法在神经肌肉接头功能研究中的潜力。