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Mass culture and biochemical variability of the marine microalga Tetraselmis suecica Kylin (Butch) with high nutrient concentrations

机译:营养盐浓度高的海洋微藻Tetraselmis suecica Kylin(Butch)的大规模培养和生化变异性

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摘要

Mass cultures of Tetraselmis suecica were carried out with four nutrient concentrations, ranging from 2 to 16 mM of NaNO3 and salinity 35‰. An air flow of 15 l/min maintained a CO2 transference rate sufficient to keep the pH below 8.4. Using these cultural conditions equations were calculated, by a multiple non-linear least squares regression of order four, enabling predictions to be made of growth kinetics and chemical composition. Maximum cellular densities of 7.83 × 106 and 7.15 × 106 cells/ml were obtained with 8 and 16 mM of NaNO3, respectively. Growth velocity ranged between 0.53 and 0.63 doublings (dbl)/day, although 0.98 dbl/day were reached with 16 mM of NaNO3. Volume increased with nutrient concentration from 252 to 905 μm3. Protein content reached maximum values of 306 μg/ml or 59.8 pg/cell. In the logarithmic phase, protein was regulated by nutrient concentration and decreased according to this concentration. Maximum efficiency of transformation from nitrate to protein was 108%, obtained at 2 mM of NaNO3. Efficiency decreased, to 14%, when nutrient concentration increased. This fact indicates that the lowest cost of harvesting is obtained with a nutrient concentration of 2 mM NaNO3. Chlorophyll a cell reached valuesbetween 3.1 and 3.8 pg/cell in the stationary phase. There was a relationship between nutrient concentration and chlorophyll α cell in the logarithmic phase, with an increase from 2.15 pg/cell to 3.74 pg/cell. Changes in chlorophyll α level are related to nitrogen depletion. Carbohydrate/cell was constant at values of 19.84-28.68 pg/cell in the logarithmic and stationary phases and was not related to nitrogen depletion. RNA/cell ranged from 4.17 to 5.48 pg/cell, except at 2 mM of NaNO3 when it was 2.77 pg/cell, probably due to nitrogen depletion. The level of DNA/cell was constant in all the nutrient concentrations assayed and ranged from 0.1 to 1.09 pg/cell. Great variability in the chemical composition of T. suecica has been shown. Growth in mass cultures is closely coupled to changes in nutrient concentrations and variations occur in protein, chlorophyll α and RNA content, showing differences of 215%, 190% and 203%, respectively, in the stationary phase. This biochemical variability, mainly in protein content, must have a marked effect on the nutritive value of this microalga as feed in mariculture.
机译:用4种营养素浓度(从2到16 mM的NaNO3和盐度35‰)进行苏铁的大规模培养。 15 l / min的气流保持足够的CO2传输速率,以保持pH值低于8.4。利用这些文化条件,通过四阶的多个非线性最小二乘回归来计算方程,从而可以预测生长动力学和化学组成。用8和16 mM的NaNO3分别获得7.83×106和7.15×106细胞/ ml的最大细胞密度。生长速度介于0.53和0.63倍(dbl)/天之间,尽管使用16 mM的NaNO3达到0.98 dbl /天。随着营养物浓度的增加,体积从252增加到905μm3。蛋白质含量达到最大值306μg/ ml或59.8 pg /细胞。在对数期,蛋白质受营养物浓度调节,并根据该浓度降低。从硝酸盐到蛋白质的最大转化效率为108%,在2 mM的NaNO3中获得。当营养物浓度增加时,效率降低到14%。这一事实表明,当营养浓度为2 mM NaNO3时,收获成本最低。在固定相中,叶绿素a细胞的值达到3.1到3.8 pg /细胞之间。在对数期,养分浓度与叶绿素α细胞之间存在关系,从2.15 pg /细胞增加到3.74 pg /细胞。叶绿素α水平的变化与氮耗竭有关。在对数和固定相中,碳水化合物/细胞的常数恒定在19.84-28.68 pg /细胞,与氮的消耗无关。 RNA /细胞的范围为4.17至5.48 pg /细胞,除了在2 mM的NaNO3为2.77 pg /细胞时,可能是由于氮耗竭所致。在所有测定的营养物浓度中,DNA /细胞的水平是恒定的,范围是0.1至1.09 pg /细胞。已经显示出T.suecica的化学组成具有很大的可变性。大量培养的生长与养分浓度的变化紧密相关,蛋白质,叶绿素α和RNA含量也发生变化,在固定相中分别显示出215%,190%和203%的差异。这种生化差异(主要是蛋白质含量)必须对该微藻作为海水养殖饲料的营养价值具有显着影响。

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