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A microfluidic photobioreactor for simultaneous observation and cultivation of single microalgal cells or cell aggregates

机译:一种微流控光生物反应器,用于同时观察和培养单个微藻细胞或细胞聚集体

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摘要

Microalgae are an ubiquitous and powerful driver of geochemical cycles which have formed Earth’s biosphere since early in the evolution. Lately, microalgal research has been strongly stimulated by economic potential expected in biofuels, wastewater treatment, and high-value products. Similar to bacteria and other microorganisms, most work so far has been performed on the level of suspensions which typically contain millions of algal cells per millilitre. The thus obtained macroscopic parameters average cells, which may be in various phases of their cell cycle or even, in the case of microbial consortia, cells of different species. This averaging may obscure essential features which may be needed for the correct understanding and interpretation of investigated processes. In contrast to these conventional macroscopic cultivation and measuring tools, microfluidic single-cell cultivation systems represent an excellent alternative to study individual cells or a small number of mutually interacting cells in a well-defined environment. A novel microfluidic photobioreactor was developed and successfully tested by the photoautotrophic cultivation of Chlorella sorokiniana. The reported microbioreactor facilitates automated long-term cultivation of algae with controlled temperature and with an illumination adjustable over a wide range of photon flux densities. Chemical composition of the medium in the microbioreactor can be stabilised or modulated rapidly to study the response of individual cells. Furthermore, the algae are cultivated in one focal plane and separate chambers, enabling single-cell level investigation of over 100 microcolonies in parallel. The developed platform can be used for systematic growth studies, medium screening, species interaction studies, and the thorough investigation of light-dependent growth kinetics.
机译:自进化初期以来,微藻是地球化学循环的普遍而强大的驱动力,地球化学循环已经形成了地球的生物圈。最近,微藻类研究受到生物燃料,废水处理和高价值产品预期的经济潜力的强烈刺激。类似于细菌和其他微生物,迄今为止,大多数工作都是在悬浮液的水平上进行的,悬浮液通常每毫升包含数百万个藻类细胞。如此获得的宏观参数使细胞平均,其可以处于其细胞周期的不同阶段,或者就微生物群落而言,甚至可以是不同物种的细胞。这种平均可能会掩盖正确理解和解释所研究过程可能需要的基本特征。与这些常规的宏观培养和测量工具相比,微流体单细胞培养系统是在定义明确的环境中研究单个细胞或少量相互作用的细胞的绝佳选择。开发了一种新型的微流控光生物反应器,并通过自养小球藻的光自养培养成功进行了测试。报道的微生物反应器有助于在受控的温度和可在宽范围的光子通量密度范围内调节照明的情况下,对藻类进行自动长期培养。可以快速稳定或调节微生物反应器中培养基的化学组成,以研究单个细胞的反应。此外,将藻类培养在一个焦平面和独立的小室中,从而可以并行地对100多个微菌落进行单细胞水平研究。开发的平台可用于系统生长研究,培养基筛选,物种相互作用研究以及对光依赖性生长动力学的彻底研究。

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