Abstract
AbstractCurrent studies on abiotic impacts on marine microorganisms often focus on endpoint analysis (e.g., hatching rates, survival). Here, we demonstrate that a mechanistic understanding can be obtained through real-time measurement of respiration and morphology in controlled microenvironments over extended time periods. As a demonstration, temperature and salinity are chosen to represent critical abiotic parameters that are also threatened by climate change and a target species ofArtemia, a prominent zooplankton whose reproduction can affect the marine food pyramid. Different temperatures (20, 35, and 30ºC) and salinities (0, 25, 50, and 75 ppt) are shown to significantly alter the duration of hatching stages, metabolic rates, and hatchability. Higher temperatures and moderate salinity boosted metabolic reactivation of latent cysts, while higher temperatures alone sped up the process. Hatchability is inversely related to the duration of the differentiation stage of hatching, which persisted longer at lower temperatures and salinities. Initial oxygen availability affects respiration but not hatchability owing to temperature and salinity interactions.Graphical abstract
Publisher
Cold Spring Harbor Laboratory
Reference72 articles.
1. Ahmed, S. , Rahman, M. , Islam, M. , Kamal, M. , 1997. Effect of decapsulation on viability and hatching performance of Artemia cysts at different salinity levels.
2. Fish on chips: Microfluidic living embryo array for accelerated in vivo angiogenesis assays;Sensors and Actuators B: Chemical,2013
3. Fish on chips: automated microfluidic living embryo arrays;Procedia Engineering,2012
4. Modeling the impact of zooplankton diel vertical migration on the carbon export flux of the biological pump;Global Biogeochemical Cycles,2019
5. Multi-response optimization of Artemia hatching process using split-split-plot design based response surface methodology;Scientific Reports,2017
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