Abstract
The respiratory physiology of summer diapausing eggs of the neustonic copepodAnomalocera patersoni, maintained under constant temperature (13 °C) and light (12 h light:12 h dark) conditions, was characterized by a bell-shaped curve, with low O2 uptake levels at the beginning of dormancy. This was followed by a steady rise in O2 consumption with maximum levels of 0.002 μl O2 embryo−1 h−1 70 d after spawning. A slow diminution in O2 uptake then occurred until Day 150 when minimum values of 0.0003 μl O2 embryo−1 h−1 were recorded, coinciding with the hatching of the first embryos. Embryos continued to hatch asynchronously up to 360 d from the moment of egg laying. When eggs were subjected to 20 °C, the respiratory activity was almost three times higher than at 13 °C, even though both respiratory curves were similar. The elevated metabolism in eggs kept at 20 °C led to death of the embryos possibly due to a total depletion of metabolic reserves. ATP content also differed at the two temperatures. Diapause eggs kept at 20 °C showed no rapid rise in ATP content as opposed to those kept at 13 °C. The results of temperature shock experiments, in which eggs were first kept at winter temperatures for several weeks, after which the temperature was raised to 20 °C for another number of weeks prior to a second period of chilling at 13 °C, showed that as long as embryos were kept at 20 °C no hatching occurred. By contrast, hatching was observed after 10 d following the resumption of winter temperatures, suggesting that low environmental temperatures are an essential prerequisite for hatching of these eggs. The type of diapause inA. patersoni differs considerably from the one described in insects and in another neustonic copepod,Pontella mediterrana. In this case, there is a U-shaped respiratory curve with greatest O2 consumption prior to the onset or upon breaking of diapause. Differences in the two types of diapause seem to involve not only differences in O2 consumption levels but also in the sequence of metabolic changes with time and the metabolic requirements during sommer and winter dormancy.
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Communicated by M. Sara, Genova
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Romano, G., Ianora, A. & Miralto, A. Respiratory physiology in summer diapause embryos of the neustonic copepodAnomalocera patersoni . Mar. Biol. 127, 229–234 (1996). https://doi.org/10.1007/BF00942107
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DOI: https://doi.org/10.1007/BF00942107