Immunity plays a central role in the physiological regulation of organisms, acting as a primary defense against a wide range of pathogens and environmental stressors1. Like other vertebrates, fish have a complex, dynamic, and coordinated immune system essential for their overall health and well-being1.
Teleost fish possess both innate and adaptive immune systems, which function simultaneously to detect, respond to, and neutralize harmful invaders2. The innate immune system acts as the first line of defense, providing immediate and non-specific responses to pathogens2, while the adaptive immune system develops over time, offering a more specialized response that enables fish to recognize specific pathogens and establish immunological memory3. The fish immune system relies on specialized primary lymphoid organs (i.e., thymus and head kidney) and secondary lymphoid organs (e.g., spleen and mucosa-associated lymphoid tissues (MALT)) to support immune defense and maintain overall health4. The head kidney is the primary hematopoietic organ in teleost fish and plays a crucial role in the development and maturation of immune cells, including leukocytes5.
In recent years, significant progress has been made in studying the immune responses of several fish species2. One key area of focus has been understanding leukocyte populations and their activity. Leukocytes, also known as white blood cells, are generally classified into monocytes, lymphocytes, and granulocytes and play a crucial role in the immune defense of fish. They have phagocytic cells, which are responsible for engulfing and destroying pathogens and release bactericidal reactive oxygen species, contributing to the elimination of invading microorganisms6. Leukocytes are also involved in the inflammatory process, helping to isolate and eradicate infections while promoting tissue repair6. The abundance and activity of leukocyte populations are important indicators of immune status in animal health and disease7,8.
Some studies have demonstrated that stress factors, such as adverse environmental conditions, can alter the number and morphology of erythrocytes and the composition of circulating leukocytes9,10. For instance, as reviewed by Franke et al. (2024), it is crucial to study the immune system of fish in climate change scenarios, as environmental stressors can compromise fish immunity, increase disease susceptibility, and enhance the infectivity of certain pathogens, ultimately accelerating disease progression11. Moreover, understanding fish immunity is essential not only to advance fundamental biological research but also to support various sectors of society, such as the aquaculture industry. As aquaculture continues to expand globally, ensuring the health and welfare of farmed fish species is becoming increasingly important. Yet, fish welfare remains a relatively new area of research, and the immune responses of farmed fish still require thorough and standardized assessments. Prioritizing immune response studies is of utmost importance, as the information acquired can enhance aquaculture's sustainability and productivity through effective and tailored approaches that improve the welfare and resilience of farmed animals.
Leukocyte quantification and identification are usually performed using hematological methods, such as manual counting with Bürker, Neubauer, or Thoma hemocytometers, as well as stained blood smears7,10. To aid in the visualization and differentiation of blood cells, staining kits, such as Wright, May-Grünwald-Giemsa, and Hemacolor, are often employed7,12. However, these manual cell counting techniques are tedious, time-consuming, and prone to human error8,10. Common sources of error include inadequate mixing or dilution of the blood, staining issues, and incorrect loading of the hemocytometer chamber, all of which can lead to inaccurate cell counts12. Furthermore, manual hematological analysis requires a high level of expertise and experience to ensure the reliability and reproducibility of the results7. As the demand for precise and efficient diagnostic tools increases, the development of innovative methods that provide an in-depth understanding of the immune status of fish populations becomes an increasingly important step in advancing this field.
Flow cytometry has emerged as a powerful tool in this context, offering a high-throughput, quantitative approach to analyzing leukocyte populations and cell viability8. This modern diagnostic technology allows for the rapid detection, count, and characterization of individual cells in mixed populations with remarkable precision13. Moreover, flow cytometry allows simultaneous multiparametric measurements for both phenotypic and functional characterization. Although widely used in human clinical settings and veterinary medicine, its application in the study of fish leukocytes remains very limited8. While some research has been conducted on different fish species1,6,8,13,14,15,16,17, several critical challenges still need to be addressed. One major challenge in these analyses is the necessity to obtain suspensions of live leukocytes extracted from peripheral blood or lymphoid tissues, such as the head kidney1. Isolation of leukocytes is often difficult due to a unique characteristic of teleost fish: the presence of nucleated erythrocytes. The unintentional contamination with erythrocytes can interfere with leukocyte analysis due to their size, ovoid shape, and the presence of a nucleus1. It is, therefore, imperative to eliminate erythrocytes from leukocyte suspensions to achieve high leukocyte purity and to study the phenotypic and functional characteristics of leukocytes by flow cytometry analysis. In mammals, leukocyte isolation typically involves erythrocyte osmotic lysis or density gradient separation with Ficoll or Percoll1. However, osmotic lysis is ineffective for both marine and freshwater fish due to their nucleated erythrocytes, which cannot be properly lysed1. Instead, density gradient separation is preferred for fish as it effectively preserves cell stability over time1. Although some studies have successfully isolated leukocytes from juvenile fish, much research still focuses mainly on adult populations17. Nonetheless, early-life stages are not only more vulnerable to disease outbreaks but also smaller in size, making the sampling process more complex and challenging. Another limitation is that current methods are often restricted to a limited number of samples or replicates at a time, as evaluating leukocyte viability requires immediate processing. Delays in sample processing can adversely affect cellular viability, thereby introducing further complications into the sampling process and potentially jeopardizing the entire work.
To the best of our knowledge, none of the published methods have successfully fixed leukocyte cells for subsequent viability analysis by flow cytometry. The present study is pioneering, as it establishes an efficient method for isolating leukocytes from the head kidney of juvenile gilthead seabream (Sparus aurata), the main fish species farmed in southern European countries, using a Percoll density gradient separation methodology. We also present an improved staining-based technique that discriminates live from dead cells while identifying the major leukocyte populations (lymphocytes, monocytes, and granulocytes) through flow cytometry. The improved protocol entails cell fixation, which enables viable cell analysis up to 1-month post-procedure. The implementation of this flow cytometry protocol has the potential to significantly reduce the time and effort typically required for immune assessments, making it a valuable technique for both research and more practical applications within the aquaculture sector. The application of this methodology provides advantages for analyzing a large number of samples, preserving the cells, and allowing for delayed analysis by flow cytometry. Therefore, it might be very helpful to produce valuable insights into fish immune mechanisms and how cell viability is influenced by different environmental or experimental conditions. Moreover, this viability assay can be integrated with multiparametric phenotypic and functional characterization of specific immune cell populations. This approach enables a more comprehensive analysis of several immunological parameters, linking them directly to the corresponding cell types and providing a clearer understanding of immune responses. These findings could contribute to the development of more effective strategies, including improved approaches for disease management in aquaculture.