Abstract
Palaemonid shrimps originate from an ancestral marine clade showing a remarkable evolutionary ability to adapt to non-marine conditions, successfully invading estuarine and limnic habitats. Macrobrachium amazonicum (A) is a freshwater (FW) species as an adult with an export strategy toward estuaries of larvae requiring salt water for their development. Over time, some populations ended up isolated in FW; recently, they have been described as a new species, M. pantanalense (P), which during its evolution has become able to complete its entire life cycle in FW, thanks to the acquisition of hyper-osmoregulation in FW from hatching, while loosing hypo-osmoregulation in salt water. The two species offer a valuable model to reconstruct the evolutionary transitions of shrimps from salt water to FW. The objective of this study was to decipher the differences in physiological and molecular adaptations to FW, thus in osmoregulation, between both species during ontogeny. We studied the comparative ontogeny of osmoregulatory organs, particularly the branchial chamber, and the localization and expression of ion transporters. During the larval phase, we found that the gill development starts earlier in P than in A. Na+/K+ ATPase (NKA) was mainly localized in gills of P and in branchiostegites of A at the same larval stages. This suggests that the high capacity to hypo-osmoregulate during the ontogeny of A originates from ionic transports in branchiostegites, while gill lamellae are not fully developed. In both species, the gill lamellae contain two associated cells types, septal and pillar cells, displaying features of ionocytes. After FW acclimation, ultrastructural differences were observed in pillar cells and in the inner epithelium of branchiostegites. These cells possess numerous deep apical microvilli, a possible adaptation to low salinities for efficient ion uptake. Regarding ion transporters involved in osmoregulation, V-H+ ATPase (VHA) was detected in pillar cells and in the inner branchiostegite epithelium. NKA and Na+/H+ exchanger (NHE-3) were localized in septal cells. Differences in VHA, NHE-3 and NKA gene expression were observed by comparing the two species at certain developmental stages. The differential distribution of these transporters between pillar and septal cells suggest that these two cells may function as a cell complex for ion absorption or secretion. In P, the capacity of all stages to hyper-regulate in FW may originate from the early development of functional gills; and the loss of hypo-regulation may originate from an absence of ion transport in branchiostegites. Finally, the excretory antennal glands produce hypotonic urine in juveniles and adults of both species in FW, thus reducing ion loss. These results illustrate evolutionary adaptations (gain and loss of functions) that have permitted the invasion of FW habitats.