The Mar Menor coastal lagoon is subject to environmental pressures resulting from domestic and agricultural discharges. It has traditionally been described that the main source of water entering the Mar Menor—and, consequently, of pollutants—came from the Albujón River. However, the impact of groundwater flow from an aquifer, which acts as an invisible connection beneath the surface, was unknown. During the MIMOA project we deciphered that this underground connection contributes largely to mercury release to the Mar Menor. It represents 70 times more dissolved mercury than the Albujón River—specifically, nearly 1 kg per year. Using isotopic tracers, we demonstrated that the mercury released into the Mar Menor through this pathway consists mostly of mercury emitted in the past (called legacy mercury) and stored in the aquifer. Finally, the study indicates that this underground connection, reaching the coastal zone, creates conditions conducive to the formation of methylmercury by the microorganisms inhabiting this ecosystem, which thrive due to high nutrient levels and a significant lack of oxygen. These findings highlight the importance of monitoring all sources of pollution in the coastal lagoons and particularly in the Mar Menor, including groundwater, which plays a key role in transporting microorganisms, nutrients, and pollutants to coastal ecosystems. This phenomenon is consistent with what may occur in other coastal ecosystems around the world and has implications for environmental management, conservation, and food security on a global scale.
Further research is needed to determine the hotspots of methylmercury formation within the subterranean estuaries, and to deepen understanding of both the diversity of subsurface microorganisms capable of mercury methylation and the cellular processes involved. We also identified spatial variability in SGD fluxes, highlighting the need to better integrate local data into global and regional models in order to improve predictions of mercury pollution in vulnerable coastal areas.