Corals are critical ecosystem builders and important for biodiversity in ocean and human health1,2,3. They are under threat due to climate change and other anthropogenic stressors, and many coral species are considered critically endangered. Thus, there is a significant need for cellular and molecular tools to diagnose corals under stress. Also, there is little understood about where genes are expressed within adult coral tissue, and therefore little understanding of the functions of these genes. To address this issue, we have adapted the in situ hybridization (ISH) protocol, commonly used in human medicine and evolutionary developmental biology, for use on paraffin-embedded tissue samples of adult corals. This technique is most powerful when used on adult corals that have undergone a stressful event such as exposure to heat stress. However, this technique can be used on a wide range of tissues and life stages in corals and is not limited to only heat-stressed corals4,6,7. Additionally, this technique can be used on tissues or cells of any metazoan as long as there is cDNA sequence information available.
The purpose of this method is to visualize RNA probes within adult coral tissue that has been preserved and embedded in paraffin and sectioned onto slides. This method is a powerful diagnostic tool that allows for the visualization of nucleic acids within adult coral tissue. Initially this method was developed for medical diagnostics, and it has since become a popular tool in fields such as developmental biology and evolutionary developmental biology8,9,10. ISH is also a critical method, particularly in non-model systems, when genomic and transcriptomic sequence data are available but spatial gene expression patterns are unknown. For diagnostic work in non-model systems, this technique is powerful because it can indicate which cells and tissues express a gene of interest and can lead to more targeted therapeutic approaches8,9,10,11,12. Lastly, this technique is qualitative and more powerful when paired with quantitative gene expression data11.
The approach outlined in this paper will be of interest to researchers who have already designed a digoxigenin (DIG)-labeled RNA probe (both the sense and antisense probes) and are now ready to perform in situ hybridization of the probes to a sample. To perform this method, two serial sections of a paraffin coral tissue will be needed for each probe being tested. One section will be used for the sense probe and the other for the antisense probe. The sense probe will be a control to indicate non-specific binding. If staining is observed in the sense probe, then the antisense probe is not specific to the RNA of interest. Probes can be designed for any gene expressed. In this protocol, several examples are used that were previously found to be expressed during heat stress in corals: FBJ murine osteosarcoma viral oncogene homolog B (Fos-B), Activator protein (AP1), and Tumor necrosis factor receptor 41 (TNFR 41)11. ISH using DIG-labeled RNA probes is preferred over using radioactive probes because their handling is much safer10. In addition, this technique is highly sensitive and can be performed on a wide range of tissues and embryos beyond heat-stressed adult corals13,14,15,16.