$$\rightleftharpoonup{xx}$$
$$\longleftharp{xx}$$,
$$\longrightharp{xx}$$,
The method developed in this study represents a significant advancement in fish immunology research and promises to improve the understanding of fish immune responses and the sustainability of marine resources. S. aurata is a valuable marine fish species of the family Sparidae serving as an ideal model organism for several reasons, including its ecological and economic relevance, as well as its versatility in laboratory research across several fields of study such as physiology, immunology, toxicology, and aquaculture20. One of the main advantages of S. aurata is its ease of handling and rearing in the laboratory, with well-established husbandry protocols that ensure consistent and reproducible experimental conditions21. Furthermore, its environmental adaptability (i.e., high tolerance to a wide range of environmental conditions, such as temperature and salinity fluctuations) makes it an ideal candidate for studies aimed at improving farming techniques and assessing environmental impacts on marine organisms22. S. aurata, with its well-characterized immune system and availability of genomic data, allows for the unlocking of fish immune responses, pathogen resistance, vaccine efficacy, and overall health20. Given its importance in aquaculture, as well as in the dietary habits of Southern European populations, research on this species can directly impact farming practices, enhancing its production and sustainability while addressing environmental challenges within the industry20.
In this sense, this protocol offers several advantages and potential applications in various research areas, such as: (i) Fish immunology: Provides a precise and detailed analysis of immune cells from the head kidney of S. aurata, allowing the identification and characterization of different leukocyte populations, as well as robust assessments of their cell viability by flow cytometry; (ii) Aquaculture research: Essential to the study of farming techniques, nutrition and disease management, supporting future research aimed at reducing reliance on antibiotics and chemical treatments, thereby promoting more sustainable aquaculture practices; (iii) Ecotoxicology: Valuable in the assessment of the effects prompted by pollutants and other environmental stressors on fish immune health, providing data for environmental risk assessment and the formulation of protective regulations for aquatic ecosystems; (iv) Comparative physiology: Allows researchers to follow up on evolutionary adaptations of immune systems to various environmental challenges, providing a deeper understanding of the genetic and physiological basis of immune function; (v) Marine biology and ecology: Improve understanding of the ecological roles and interactions of S. aurata, providing insights into species distribution, habitat preferences, and the impact of environmental changes on marine biodiversity; (vi) Biomedical research: Fishes are increasingly often used as model organisms in biomedical research. Immune cell isolation and analysis can help understand cell and molecular aspects critical for drug discovery and even medicine.
For many years, the quantification and identification of leukocytes in fish relied on traditional hematological techniques, such as manual counting with Bürker, Neubauer, or Thoma hemocytometers, as well as stained blood smears10,12. Cell viability was also assessed using the trypan blue exclusion test, followed by microscopy counting15,22,23,24,25,26,27,28. While these methods have contributed to our understanding of fish immunology, they have several limitations. Manual leukocyte counting was both time-consuming and labor-intensive, and the accuracy of these techniques was often compromised by operator variability and human error, significantly affecting the consistency of results10.
In 1994, Esteban et al. revolutionized fish leukocyte analysis by introducing a technique to assess the phagocytic defense mechanism in seabass (Dicentrarchus labrax)23. In their study, leukocytes were isolated from peripheral blood, head kidney, and peritoneal exudates using Percoll density gradient centrifugation23. This methodological advancement marked a significant leap forward, enhancing the accuracy and reliability of leukocyte analysis. Following Esteban et al.'s pioneering work, subsequent studies have aimed to refine and optimize flow cytometry techniques for leukocyte analysis, focusing on various aspects such as cell population profiling6,15,16,28,29, cell viability3,6,27,28, and phagocytic activity6,23,24,27,28. Advances in isolation procedures, including the use of different gradient media (e.g., Ficoll vs. Percoll) and optimized centrifugation protocols, have improved the purity and yield of isolated leukocytes1,8,14,26. The development of advanced staining techniques and the use of fluorescent dyes, such as propidium iodide (PI) and 3,3'-Dihexyloxacarbocyanine iodide (DiOC6(3)) have enabled more accurate discrimination between viable and non-viable cells, as well as detailed characterization of leukocyte populations, respectively16,30. One of the major advantages of this technique is its ability to simultaneously distinguish between different leukocyte populations (lymphocytes, monocytes, and granulocytes) and to assess the cell viability of each population. This allows researchers to identify which populations are most affected under specific conditions, providing deeper insights into the immune response and revealing the most vulnerable leukocyte subsets. However, despite these improvements, current methods still face limitations. Most research has focused on adult fish, leaving a gap in the study of juvenile stages. Juvenile fish present unique challenges for leukocyte extraction due to their smaller size and the difficulty in obtaining high-quality samples from their proportionally smaller immune organs17. The study described here specifically addresses these issues by optimizing the protocol for juvenile fish, adjusting the cell suspension ratio, and Percoll solution to improve the quality of leukocyte extraction. Additionally, existing methods are often limited by the number of samples or replicates that can be processed at one time due to the immediate need for leukocyte viability assessment. Any delay in sample handling can adversely affect cell viability, complicating the sampling process and potentially compromising results. To overcome this limitation, this study introduces the use of a novel staining technique that allows for cell fixation and analysis up to 1-month post-fixation. This innovation provides greater flexibility in sampling schedules, allowing researchers to process and analyze samples at their convenience, significantly improving the workflow and reliability of flow cytometry assessments.
The success of this protocol relies on several critical steps, each requiring careful execution to ensure the integrity and viability of the leukocytes, which are subsequently analyzed by flow cytometry. The correct preparation of the euthanasia solution and pH adjustment are critical for effective euthanasia. Improperly prepared solutions may result in incomplete euthanasia or additional stress to the fish18. Accurate and careful dissection of the head kidney is vital to avoid contamination. Maintaining sterility and tissue integrity is crucial to obtain high-quality leukocyte samples. The density, osmolarity, and pH of the Percoll solution must be correctly adjusted for efficient leukocyte separation. Gently aspirating the leukocyte ring with a sterile pipette is critical to avoid contamination and disturbance of the gradient layers. Effective washing of cells post-collection is essential to remove Percoll residues and other impurities. Repeating the washing process ensures a clean cell pellet ready for fixation. The reactive dye should be prepared immediately before use to ensure its effectiveness, as improper handling can compromise its stability. Proper dye addition and incubation time are critical for accurately distinguishing between live and dead cells. Fixing cells with 3.7% formaldehyde is a critical step to preserve cell morphology and ensure accurate identification of dead cells. Formaldehyde concentration must be precise, and incubation times must be strictly followed to avoid inaccurate results. Washing the cells after fixation is important to remove any excess dye and formaldehyde, which could interfere with subsequent analysis. Proper storage of fixed samples and their timely analysis are necessary to maintain data accuracy. Adjusting the excitation and detection channels to match the specific dye used is essential for accurate flow cytometry results.
Despite its numerous advantages, this method has some limitations that must be considered. One key limitation is its species-specific nature, as the protocol is optimized for juvenile gilthead seabream (S. aurata), a marine fish. This means that its effectiveness may vary when applied to other fish species, particularly freshwater fish. Differences in osmotic balance between marine and freshwater species may require adjustments to the buffers used in the protocol, as the solutions suitable for saline conditions may not be appropriate for freshwater species. Additionally, differences in tissue structure, cell density, and physiological responses may require adjustments to the protocol, potentially affecting reproducibility and consistency across different species.
Another important factor is the fish maintenance prior to sample collection. Each species has specific optimal water conditions crucial for maintaining fish health and ensuring the quality of experimental results20. Variations in parameters such as temperature, salinity, and pH can affect cell viability and data quality, as suboptimal conditions may induce physiological stress that compromises cell integrity. To ensure consistent experimental results, it is important to keep all replicates under the same controlled conditions, whether optimal or intentionally suboptimal (depending on the objectives of the study).
Variability in handling and dissection techniques can also impact the quality and quantity of head kidney leukocytes, making the skill and experience of the operator a critical factor for the success of the protocol. Additionally, maintaining cell viability throughout the isolation process can be a challenge, as any delays between euthanasia and cell fixation can result in decreased viability and biased results. Immediate processing of tissues and cells is essential for maintaining high cell viability, but this requirement can be difficult to achieve consistently, especially when working with a high number of samples.