The goal of this protocol is to facilitate the isolation of RNA from tardigrades that is of high enough quantity and quality to be applicable for downstream applications that facilitate investigations of tardigrade stress tolerance. The protocol presented here has outlined areas where users may encounter issues, including removing enough water prior to adding Extraction Buffer (XB) (Step 2.5), disrupting tardigrade bodies (Step 3.1–3.3), transferring the supernatant to the column for purification (Step 5.3), and eluting the RNA (Step 8.3). Errors in any of these steps may result in reduced concentration or quality of the resulting RNA. If the resulting RNA concentration is less than 5 ng/µL (as verified by a microvolume spectrophotometer), the user may want to consider redoing the RNA isolation with (1) more starting animals (>100 for small species or >50 for larger species), or (2) repeating the protocol, paying special attention to the water removal, tardigrade disruption, and elution steps.
This article provides examples of RNA quality assessments (RIN, 260/280 ratio, 260/230 ratio) that were deemed appropriate or inappropriate for RNA sequencing (Table 1, Table 2, Figure 3). Occasionally, low (<1.0) 260/230 ratios are observed in some RNA isolations using this protocol (Table 1), suggesting the presence of residual organic compounds. Usually, this was associated with low animal counts. If increasing animal input is not an option, or if users consistently encounter the low 260/230 ratio, including an additional wash step with Wash Buffer 2 (W2) (repeat Step 7.6) is recommended and/or extending the dry-spin centrifugation time in Step 7.7 to ensure the removal of these contaminants. Additionally, it is to be noted that the one representative H. exemplaris isolation with a low 260/230 ratio (Table 1) was performed by a first-time, undergraduate protocol user who, in retrospect, realized that Step 5.7 (spin to remove ethanol after binding RNA to the column) was performed at the incorrect centrifugation speed (too slow). This likely resulted in ethanol being retained on the column and carried through the protocol, resulting in the poor 260/230 ratio. Subsequent isolations by this user have resulted in 260/230 values within a reasonable range (no lower than 1.5). Therefore, all users, especially first-time users, should pay close attention to centrifugation speeds when working through the protocol to avoid these potential issues. Despite occasionally low 260/230 ratios or low RIN in H. exemplaris, RNA with similar quality readings could still be used for downstream RNA sequencing to examine differential gene expression after exposure to ionizing radiation or other stressors8 (Table 1, Table 2, and unpublished data). Similarly, RNA isolated from P. gadabouti with this protocol resulted in high RNA concentration and quality (as verified by RIN, Table 2, Figure 3) and resulted in meaningful RNA sequencing data (unpublished data). Anecdotally, this study successfully used RNA from H. exemplaris with low concentrations (5–9 ng/µL) to make cDNA for successful downstream cloning of H. exemplaris genes8. When RNA from H. exemplaris resulted in low/undetectable concentration and RIN (measured with microfluidics gel electrophoresis), RNA was re-isolated for this treatment before moving forward with library preparation for RNA sequencing (Table 2, Figure 3A,D). The decision to redo RNA isolation for this sample (Figure 3A,D), rather than move forward with sequencing as was done with other samples from H. exemplaris with undetectable RIN (Figure 3B,F), was made based on the lack of clear bands on the microfluidics gel, which can be indicative of a loading error, degraded RNA, or insufficient RNA concentration. In contrast, when RNA isolated from H. exemplaris had a relatively low concentration, an undetectable RIN, and evidence of some RNA degradation, as indicated by higher levels of small-sized RNA, it yielded usable RNA sequencing data after library preparation (unpublished data, Table 2, Figure 3B,F). Therefore, although some guidelines are provided here for determining whether RNA samples are suitable for downstream applications, the user should use their discretion and consider their specific downstream application when assessing whether the quality and quantity of the RNA are sufficient to move forward.
Scientists who want to isolate RNA from tardigrades have multiple aspects to consider when determining which protocol is best suited to their purpose. All of the previously reported RNA isolation methods (including the method reported here) have yielded RNA of sufficient quantity and quality to support downstream applications such as RNA sequencing, cDNA synthesis, and qPCR8,12,13,17,21,22,25,27. Cost is often a consideration, especially for research labs with small budgets or teaching labs. The protocol reported here is more expensive than previously reported protocols per isolation reaction. However, we would argue that the cost increase comes with benefits relative to previously reported protocols. Compared to other column-based RNA isolation protocols23, the RNA isolation protocol reported here can produce ample RNA of sufficient quality from a smaller amount of input material (fewer animals). Additionally, as mentioned in the Introduction, the previously reported column-based RNA isolation protocol worked inconsistently in our hands, often resulting in extremely low RNA yields insufficient for downstream processes (unpublished data). The protocol reported here is also considerably safer compared to a phenol-based RNA isolation approach, as it does not require users to handle hazardous chemicals that require a fume hood. Also, a common user issue with phenol-based RNA extraction protocols is phenol carryover, which affects RNA purity and can disrupt downstream applications. These issues make phenol-based RNA extraction less accessible to undergraduates (whether in research labs or classrooms). However, the phenol-based method is the most cost-effective. The protocol reported here is not suitable for isolating RNA from a single animal to assess single-animal transcriptomic responses (as published in Kirk et al.) but is instead valuable for examining shared changes across individuals in response to a stressor, providing a more holistic view of stress responses. Therefore, users should weigh the importance of cost, animal availability, and user accessibility of existing protocols to determine which protocol best suits their needs.
This report validated that this protocol produces RNA of sufficient quantity and quality from six different tardigrade species, including a representative species from Heterotardigrada. Additionally, this RNA isolation method yields sufficient RNA from a reasonable number of animals (25–200, depending on species size). The validation of this RNA isolation protocol in multiple species opens the door to understanding captivating aspects of tardigrade biology. This is not limited to the investigation of stress tolerance but also extends to understanding the evolution of these animals, including the evolution of resistance mechanisms and their development. This protocol is particularly useful for non-model and field-collected tardigrade species where biomass is limited, and standardized RNA isolation methods are lacking. Lastly, this protocol is accessible to researchers and can be performed reproducibly by undergraduate researchers, making it an asset in teaching or research labs at primarily undergraduate institutions.