紫卟啉批量培养的生长和光适应模型

A. Lelekov, V. Klochkova
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引用次数: 0

摘要

该研究的重点是在各种表面辐照条件下,对线性生长的海洋红藻 Porphyridium purpureum 进行批量培养的数学建模。在开始批量培养前,紫卟啉在浊度仪中保持 3-5 天,使培养物适应给定的光照强度。在每条批次曲线上,最大特定生长率和最大生产率都是通过用适当的公式近似指数和线性生长阶段来确定的。考虑到在线性生长阶段开始时,根据 PAR 范围内的真实吸收光谱计算出的整体光吸收系数超过 50%。结果表明,随着光照强度从 15 微摩尔光子/米-2-秒-1 增加到 227 微摩尔光子/米-2-秒-1,最大比生长率从 0.31 天-1 增加到 1 天-1,最大生产力从 1.32 克 DW 米-2-天-1 增加到 16.38 克 DW 米-2-天-1。紫茎批量培养的线性生长数学模型显示,在任何光照强度下,特定生长率都由表面光照、光吸收系数和叶绿素 a 浓度决定。我们引入了减少辐照的概念--每叶绿素 a 吸收的光能。给出了特定生长率与还原辐照的线性关系。直线斜率角的正切由关键多酶复合体("代谢瓶颈")的组织决定。该复合体的参数取决于细胞的光适应程度。该研究首次确定了多酶复合体参数、光照强度和叶绿素/P700 比率之间的定量关系。
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Modeling Growth and Photoadaptation of Porphyridium purpureum Batch Culture
The work focuses on mathematical modeling of linear growth marine red algae Porphyridium purpureum batch culture under various surface irradiation. Before starting the batch culture P. purpureum was maintained for 3–5 days in turbidostat, which allowed the culture to adapt to a given light intensity. On each batch curve the maximum specific growth rate and maximum productivity are determined by approximating the exponential and linear growth phases with the appropriate equations. It is taken into account that at the beginning of the linear growth phase the integral light absorption coefficient, calculated from the true absorption spectrum in PAR range, exceeded 50 %. It is shown that with light intensity increase from 15 to 227 µmol photons m–2·s–1 the maximum specific growth rate increased from 0.31 to 1 day–1, the maximum productivity increased from 1.32 to 16.38 g DW m–2·day–1. Mathematical modeling of the linear growth of P. purpureum batch culture have showed that at any light intensity the specific growth rate is determined by the surface illumination, the light absorption coefficient and chlorophyll a concentration. The concept of reduced irradiation – the amount of absorbed light energy per chlorophyll a – was introduced. A linear dependence of the specific growth rate on reduced irradiation is given. The tangent of the angle of line slope is determined by the organization of the key multi-enzyme complex («metabolism bottleneck»). Parameters of this complex depend on the cells photoadaptation degree. For the first time a quantitative relationship between multi-enzyme complex parameters, light intensity and the chlorophyll / P700 ratio was established.
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Mathematical Biology and Bioinformatics
Mathematical Biology and Bioinformatics Mathematics-Applied Mathematics
CiteScore
1.10
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发文量
13
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