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In testes, germ cells differentiate from diploid spermatogonia through meiosis into mature, haploid spermatozoa. During this process, the nuclear chromatin structure of germ cells is continuously and dynamically remodeled. Surface spreads are commonly used for the cytological examination of individual spermatogenic cells. A prevailing method of surface spreads employs hypotonic treatment by which individual spermatogenic cells are spread and flattened1. These conditions are optimal for detailed analysis of meiotic chromosomes. Chromosomal features such as synaptic status and recombination foci are easily observed using this method. However, the hypotonic treatment disrupts subnuclear chromatin architecture, thus this technique is not suitable for structural analysis of nuclei. Consequently, an improved method has been designed to preserve the three-dimensional chromatin structure of testicular germ cells. This method has been termed as the three-dimensional (3D) slide method (Figure 1). The 3D slide method has enabled the detection of nascent RNA localization in nuclei because it was initially optimized to examine gene expression and chromatin states during testicular germ cell differentiation by RNA fluorescence in situ hybridization (FISH)2,3. This 3D method is also applicable to the combination of immunofluorescence, DNA, and RNA FISH. Additionally, this method has aided in the discovery of postmeiotic sex chromatin (PMSC), a silent compartment of the sex chromosomes found in postmeiotic spermatids2.
The 3D slide method was originally optimized through the combination of two essential steps of slide preparation commonly used for nuclear staining: the fixation step designed to fix nuclear materials and the permeabilization step intended to remove cytoplasmic materials in order to improve the accessibility of staining reagents, such as antibodies and FISH probes. As previously described in another publication3, it has been determined that the permeabilization step must precede the fixation step in order to obtain optimal results with low cytoplasmic background. In this 3D slide method, the permeabilization step and subsequent fixation step are performed directly on seminiferous tubules and are followed by the mechanical dissociation of germ cells with forceps prior to cytospinning onto slides. An alternative method for RNA FISH of spermatogenic cells was developed in another laboratory4. In this method, consistent with the 3D method, the permeabilization step must precede the fixation step in order to obtain optimal results of RNA FISH.
The following protocol describes the 3D slide method and provides an example of a possible application, Cot-1 RNA FISH for the detection of nuclear nascent RNAs. Cot-1 DNA consists of repetitive elements in the genome. Here, a Cot-1 DNA probe is hybridized to an intron and UTR of the nascent transcripts, thereby detecting the transcriptionally active regions in nucleus5,6. 3D slides are versatile and can be applied to a combination of immunofluorescence, DNA and RNA FISH techniques in order to obtain detailed examination of spatial relationships between chromatin architecture.