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An Integrated Response of Trichodesmium erythraeum IMS101 Growth and Photo-Physiology to Iron CO2 and Light Intensity

机译:红毛Trichodesmium IMS101生长和光生理对铁CO2和光强度的综合响应

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摘要

We have assessed how varying CO2 (180, 380, and 720 μatm) and growth light intensity (40 and 400 μmol photons m−2 s−1) affected Trichodesmium erythraeum IMS101 growth and photophysiology over free iron (Fe′) concentrations between 20 and 9,600 pM. We found significant iron dependencies of growth rate and the initial slope and maximal relative PSII electron transport rates (rPm). Under iron-limiting concentrations, high-light increased growth rates and rPm; possibly indicating a lower allocation of resources to iron-containing photosynthetic proteins. Higher CO2 increased growth rates across all iron concentrations, enabled growth to occur at lower Fe′ concentrations, increased rPm and lowered the iron half saturation constants for growth (Km). We attribute these CO2 responses to the operation of the CCM and the ATP spent/saved for CO2 uptake and transport at low and high CO2, respectively. It seems reasonable to conclude that T. erythraeum IMS101 can exhibit a high degree of phenotypic plasticity in response to CO2, light intensity and iron-limitation. These results are important given predictions of increased dissolved CO2 and water column stratification (i.e., higher light exposures) over the coming decades.
机译:我们已经评估了变化的二氧化碳(180、380和720μatm)和生长光强度(40和400μmol光子m −2 s -1 )如何影响红霉菌IMS101在20至9,600 pM之间的游离铁(Fe')浓度下生长和光生理。我们发现了铁与生长速率,初始斜率和最大相对PSII电子传输速率(rPm)的显着相关性。在铁限制浓度下,高光下生长速率和rPm增加;可能表明对含铁的光合蛋白的资源分配较低。较高的CO2会增加所有铁浓度下的生长速率,从而使生长在较低的Fe'浓度下发生,rPm增大,并且降低了铁的半饱和生长常数(Km)。我们将这些CO2响应归因于CCM的操作以及分别在低和高CO2下消耗/保存的CO2吸收和运输的ATP。可以得出合理的结论,即红霉IMS101可以表现出对CO2,光强度和铁限制的高度表型可塑性。考虑到在未来几十年中溶解的二氧化碳和水柱分层增加(即更高的曝光量)的预测,这些结果非常重要。

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