Plant Cell & Environment · 2013 · 53 citations · 22 references
BiologyBiogeochemistryFourier TransformBiological Carbon FixationPlant-abiotic InteractionBotanyFitnessGrowth RateNatural SciencesPlant EcologyEcophysiologyAlgal BiologyMetabolismCarbon AllocationPhotosynthesisPlant PhysiologyHealth Sciences
Acclimation to environmental changes involves a modification of the expressed proteome and metabolome. The reproductive advantage associated with the higher fitness that acclimation provides to the new conditions more than compensates for the costs of acclimation. To exploit such an advantage, however, the duration of the perturbation must be sufficiently long relative to the growth rate. Otherwise, a selective pressure may exist in favour of responses that minimize changes in carbon allocation and resource use and do not require reversal of the acclimation after the perturbation ceases (compositional homeostasis). We hypothesize that the choice between acclimation and homeostasis depends on the duration of the perturbation relative to the length of the cell cycle. To test this hypothesis, we cultured the green alga Tetraselmis suecica at two growth rates and subjected the cultures to three environmental perturbations. Carbon allocation was studied with Fourier transform infrared (FTIR) spectroscopy; elemental stoichiometry was investigated by total reflection X-ray fluorescence (TXRF) spectroscopy. Our data confirmed that growth rate is a crucial factor for C allocation in response to external changes, with a higher degree of compositional homeostasis in cells with lower growth rate.
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Phytoplankton in a changing world: cell size and elemental stoichiometry
Zoe V. Finkel, John Beardall, Kevin J. Flynn et al. · Journal of Plankton Research · 2009 · 1.1K citations
Biology, Biogeochemistry, Cell Size +12