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首页> 外文期刊>Journal of Biotechnology >On the dynamics and constraints of batch culture growth of the cyanobacterium Cyanothece sp ATCC 51142
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On the dynamics and constraints of batch culture growth of the cyanobacterium Cyanothece sp ATCC 51142

机译:蓝藻蓝藻sp ATCC 51142分批培养生长的动力学和限制

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摘要

The unicellular, nitrogen fixing cyanobacterium Cyanothece sp. ATCC 51142 is of a remarkable potential for production of third-generation biofuels. As the biotechnological potential of Cyanothece 51142 varies with the time of the day, we argue that it will, similarly, depend on the phase of the culture growth. Here, we study the batch culture dynamics to discover the dominant constraints in the individual growth phases and identify potential for inducing or delaying transitions between culture growth phases in Cyanothece 51142. We found that specific growth rate in the exponential phase of the culture is much less dependent on incident irradiance than the photosynthetic activity. We propose that surplus electrons that are released by water splitting are used in futile processes providing photoprotection additional to non-photochemical quenching. We confirm that the transition from exponential to linear phase is caused by a light limitation and the transition from linear to stationary phase by nitrogen limitation. We observe spontaneous diurnal metabolic oscillations in stationary phase culture that are synchronized over the entire culture without an external clue. We tentatively propose that the self-synchronization of the metabolic oscillations is due to a cell-to-cell communication of the cyanobacteria that is necessary for nitrogenase activity in nitrate depleted medium.
机译:单细胞,固氮蓝藻蓝藻。 ATCC 51142具有生产第三代生物燃料的巨大潜力。由于蓝藻51142的生物技术潜力会随着一天中的时间而变化,因此我们认为它同样取决于培养物的生长阶段。在这里,我们研究了分批培养动力学,以发现各个生长阶段的主要制约因素,并确定了诱导或延迟Cyanothece 51142中培养生长阶段之间过渡的潜力。我们发现,培养物的指数阶段的比生长速率要小得多取决于入射辐照度而不是光合作用活性。我们建议通过水分解释放的多余电子用于徒劳的过程中,以提供除非光化学猝灭外的光保护作用。我们确认从指数到线性相的转变是由光限制引起的,而从线性到固定相的转变是由氮限制引起的。我们在固定相培养中观察到自发的昼夜代谢振荡,该振荡在整个培养中同步,没有外部线索。我们初步提出,代谢振荡的自我同步是由于蓝细菌的细胞间通讯,这对于消耗硝酸盐的培养基中的固氮酶活性是必需的。

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