Effect-based methods, such as in vitro and in vivo bioassays, represent innovative tools for the detection of the effects of environmental chemical pollutants in living organisms and for their use as tools in environmental monitoring and risk assessment1,2,3,4. They complement the classical analytical chemical approach by overcoming some of its limitations. For instance, effect-based methods can assess the bioavailability of pollutants, their impact on organism health, and the combined toxicological effects of mixtures. These combined effects may not be predictable based solely on chemical analysis5.
In recent years, the ecotoxicology of pollutants of emerging concern (emerging pollutants) represents a field where effect-based methods can be useful tools for detecting exposure and assessing the impact on the biota1,5,6,7. Several effect-based methods use bivalve mollusks as test organisms in environmental monitoring and assessment8,9. Some characteristics make these organisms suitable for ecotoxicological studies, such as their wide distribution, their filter-feeding nature, their sessile lifestyle, the capability of bioaccumulation of a wide range of environmental pollutants and to develop detectable responses to pollutants, the possibility of working with different life stages, and to maintain under laboratory conditions7. They are highly sensitive to pollution exposure and show a variety of responses to toxic contaminants depending on species, life stage, and environmental conditions8,9,10. Therefore, several environmental guidelines use bivalve species as standardized test species10,11.
Among the bivalve mollusks, the widespread Mytilus galloprovincialis is one of the most used species in the ecotoxicological field due to its ability to develop early detectable responses to chemical pollution exposure, including metallothionein induction, antioxidant enzyme alteration, lysosomal membrane destabilization, lipid peroxidation, lipofuscin accumulation, increased micronuclei frequency, carbonic anhydrase induction12,13,14,15. Hemocytes, the immunocompetent hemolymphatic cells, are widely used to study the toxicological impacts of environmental pollutants in bivalve mollusks4,13,16,17. These cells are crucial to the organism's immune response, carrying out several important functions of cell-mediated innate immunity. These include the elimination of microbes through phagocytosis and various cytotoxic reactions, such as the release of lysosomal enzymes, anti-microbial peptides, and the production of oxygen metabolites during the respiratory burst18,19,20. Hemocytes are intrinsically motile cells21,22,23 able to migrate to the site of infection during the early stage of the organism's immune response. In general, motility is a fundamental feature that characterizes all immune cells since it enables the immunosurveillance of these cells to protect the body24. Research across various molluscan species demonstrates that hemocyte motility is a critical component of their immune response, wound healing, and interaction with pathogens. This motility is regulated by specific molecular pathways, highlighting the complexity and specialization of hemocyte functions in molluscs21,25,26,27.
Despite the fundamental importance of motility in the physiology of hemocytes, very few studies have investigated the sensitivity of hemocyte motility to environmental chemical pollutants23,28,29,30. Recently, our group characterized the spontaneous movement of Mytilus galloprovincialis hemocytes in a tissue culture-treated polystyrene 96-well microplate and examined the sensitivity of hemocyte motility to in vitro exposure to paracetamol23. M. galloprovincialis hemocytes showed a random-like cell movement based on lamellipodia and fast shape changes, as previously found in another mussel species, Mytilus edulis21,22,23,28, and already described in human immune cells31. Hemocyte motility has recently been demonstrated to be sensitive to chemical stressors23,28. Based on these previous findings, this work proposes a novel in vitro method for the rapid and sensitive assessment of the toxicity and ecotoxicity of pollutants based on evaluating the motility of M. galloprovincialis hemocytes and its alterations, through velocimetric analysis of cell motility (quantification of mean velocity, migrated distance, Euclidean distance, and directness). The method offers the possibility to in vitro screen the toxicity of several substances either in short-term assays (lasting 1-4 h) or prolonged exposure assays, lasting 24-48 h.