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Theoretical lessons for increasing algal biofuel: Evolution of oil accumulation to avert carbon starvation in microalgae

机译:增加藻类生物燃料的理论课程:避免微藻类中碳饥饿的石油积累演变

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Microalgae-derived oil is considered as a feasible alternative to fossil-derived oil. To produce more algal biomass, both algal population size and oil accumulation in algae must be maximized. Most of the previous studies have concentrated on only one of these issues, and relatively little attention has been devoted to considering the tradeoff between them. In this paper, we first theoretically investigated evolutionary reasons for oil accumulation and then by coupling population and evolutionary dynamics, we searched for conditions that may provide better yields. Using our model, we assume that algae allocate assimilated carbon to growth, maintenance, and carbon accumulation as biofuel and that the amount of essential materials (carbon and nitrate) are strongly linked in fixed proportions. Such stoichiometrically explicit models showed that (i) algae with more oil show slower population growth; therefore, the use of such algae results in lower total yields of biofuel and (ii) oil accumulation in algae is caused by carbon and not nitrate starvation. The latter can be interpreted as a strategy for avoiding the risk of increased death rate by carbon starvation. Our model also showed that both strong carbon starvation and moderately limited nitrate will promote total biofuel production. Our results highlight considering the life-history traits for a higher total yields of biofuel, which leads to insight into both establishing a prolonged culture and collection of desired strains from a natural environment. (C) 2015 Elsevier Ltd. All rights reserved.
机译:微藻衍生油被认为是化石衍生油的可行替代品。为了生产更多的藻类生物量,必须最大化藻类种群规模和藻类中的油脂积累。先前的大多数研究仅集中于这些问题中的一个,相对较少的注意力集中在考虑它们之间的权衡。在本文中,我们首先在理论上研究了油藏的演化原因,然后通过将种群与演化动力学耦合,寻找可以提供更高产量的条件。使用我们的模型,我们假设藻类会将同化碳分配给生物燃料的生长,维持和碳积累,并且必需物质(碳和硝酸盐)的数量以固定比例紧密关联。这样的化学计量显式模型表明:(i)含油量更高的藻类显示种群增长较慢;因此,使用这种藻类会降低生物燃料的总产量,并且(ii)藻类中的油积累是由碳而不是硝酸盐饥饿引起的。后者可以解释为避免因碳饥饿而增加死亡率的风险的策略。我们的模型还表明,强烈的碳饥饿和适度限制的硝酸盐都会促进生物燃料的总产量。我们的结果着重考虑了生命历史特征以获得更高的生物燃料总产量,从而使人们对建立长期的文化和从自然环境中收集所需的菌株都具有洞察力。 (C)2015 Elsevier Ltd.保留所有权利。

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