Studer D, Gnaegi H
M. E. Müller Institute for Biomechanics, University of Berne, P O Box 30, CH-3010 Bern, Switzerland.
J Microsc. 2000 Jan;197(Pt 1):94-100. doi: 10.1046/j.1365-2818.2000.00638.x.
With the aim to minimize compression artefacts in ultrathin sections, coincident with the stroke direction, we have invented an oscillating diamond knife. Results and theoretical considerations explaining its function are discussed. During conventional ultrathin sectioning the resultant compression is in the order of 20-35% of section height. This holds true for sections of samples embedded into Lowicryl HM20 and of the polymer polystyrene, cut with a 45 degrees diamond knife and floated on water. The oscillating knife reduces this compression almost completely. It consists of a diamond knife on which a low voltage piezoelectric translator (piezo) is mounted, which oscillates when the piezo is driven by an alternating voltage source. No additional cutting artefacts were observed in the micrographs when they were compared with sections produced without oscillating the knife.
为了尽量减少与切片方向一致的超薄切片中的压缩伪像,我们发明了一种振荡金刚石刀。本文讨论了该刀的使用结果以及解释其功能的理论依据。在传统超薄切片过程中,产生的压缩量约为切片高度的20%-35%。对于嵌入低熔点树脂HM20的样品切片以及用45度金刚石刀切割并漂浮在水面上的聚苯乙烯聚合物切片,都是如此。振荡刀几乎完全消除了这种压缩。它由一把金刚石刀组成,上面安装了一个低电压压电转换器(压电元件),当压电元件由交流电压源驱动时会发生振荡。与未振荡刀具所制作的切片相比,显微照片中未观察到额外的切割伪像。