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Outdoor cultivation of Ulva lactuca in a recently developed ring-shaped photobioreactor: effects of elevated CO2 concentration on growth and photosynthetic performance

机译:最近开发的环形光生物反应器在最近开发的环形光生物反应器中的户外栽培:CO2浓度升高对生长和光合性能的影响

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Land-based cultivation of marine macroalgae may open up the possibility to produce high quality algal biomass as required in various application areas all year round. In this context, the potential of a recently developed ring-shaped cultivation system with algae moving in a circular way, simulating the movement pattern in a standard tank cultivation vessel was evaluated using the green alga Ulva lactuca. Plants were cultivated under outdoor conditions at ambient (37 μmol CO2 kg?1 seawater) and increased CO2 concentration (152 μmol CO2 kg?1 seawater). Biomass growth and photosynthetic performance of algae were analyzed over a test period of 7 d. Elevated CO2 concentration significantly stimulated algal growth and also helped to compensate the effects of environmental stress conditions. This was indicated by the predominant stability of photosynthetic competence and represented by maximum photosynthetic electron transport rates, efficiency of light-harvesting and photon fluence rates (PFR) saturating photosynthetic electron transport at low PFR. At high PFR, no difference in photosynthetic competence was detected between algae cultivated at the high CO2-concentration and those grown at ambient CO2. Under elevated CO2 concentrations, photochemical energy dissipation decreased more distinctly at low PFR. This may reflect a declining energy demand necessary to maintain photosynthetic capacity. Under elevated CO2, the apparent changes in the quantum yields of regulated and unregulated non-photochemical energy dissipation of PS II at high PFR possibly reflected the enhanced capacity of photoprotection under the prevailing environmental conditions.
机译:陆地培养海洋宏观格子可能会使在全年各种应用领域的要求下生产高质量的藻类生物量。在这种情况下,使用绿藻Ulva乳酸裂变评估了以圆形方式移动的最近开发的环形培养系统的电位,模拟标准罐培养容器中的运动模式。在环境温度(37μmolCO2kg≤1海水)的室外条件下培养植物并增加CO 2浓度(152μmolCO2kg≤1海水)。在7天的测试期间分析了藻类生物量和光合性能。升高的CO 2浓度显着刺激藻类生长,并有助于补偿环境压力条件的影响。这是由光合能力的主要稳定性,并通过最大的光合电子传输速率,光收获效率和光子注射率(PFR)在低PFR下饱和光合电子传输的效率。在高PFR处,在高CO 2浓度培养的藻类和环境CO2中生长的藻类之间没有检测到光合能力的差异。在升高的CO 2浓度下,光化学能量耗散在低PFR下更明显地降低。这可能反映了保持光合能力所必需的能源需求下降。在二氧化碳升高之下,在高PFR下PS II的调节和未经测量的非光化学能量耗散量的量子产量的表观变化可能反映了普遍的环境条件下的光保护能力。

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