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A Lipid-Accumulating Alga Maintains Growth in Outdoor, Alkaliphilic Raceway Pond with Mixed Microbial Communities

机译:集脂的藻类可在带有混合微生物群落的室外嗜碱水道池中维持生长

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摘要

Algal biofuels and valuable co-products are being produced in both open and closed cultivation systems. Growing algae in open pond systems may be a more economical alternative, but this approach allows environmental microorganisms to colonize the pond and potentially infect or outcompete the algal “crop.” In this study, we monitored the microbial community of an outdoor, open raceway pond inoculated with a high lipid-producing alkaliphilic alga, Chlorella vulgaris BA050. The strain C. vulgaris BA050 was previously isolated from Soap Lake, Washington, a system characterized by a high pH (∼9.8). An outdoor raceway pond (200 L) was inoculated with C. vulgaris and monitored for 10 days and then the culture was transferred to a 2,000 L raceway pond and cultivated for an additional 6 days. Community DNA samples were collected over the 16-day period in conjunction with water chemistry analyses and cell counts. Universal primers for the SSU rRNA gene sequences for Eukarya, Bacteria, and Archaea were used for barcoded pyrosequence determination. The environmental parameters that most closely correlated with C. vulgaris abundance were pH and phosphate. Community analyses indicated that the pond system remained dominated by the Chlorella population (93% of eukaryotic sequences), but was also colonized by other microorganisms. Bacterial sequence diversity increased over time while archaeal sequence diversity declined over the same time period. Using SparCC co-occurrence network analysis, a positive correlation was observed between C. vulgaris and Pseudomonas sp. throughout the experiment, which may suggest a symbiotic relationship between the two organisms. The putative relationship coupled with high pH may have contributed to the success of C. vulgaris. The characterization of the microbial community dynamics of an alkaliphilic open pond system provides significant insight into open pond systems that could be used to control photoautotrophic biomass productivity in an open, non-sterile environment.
机译:藻类生物燃料和有价值的副产品正在开放式和封闭式种植系统中生产。在开放池塘系统中生长藻类可能是一种更经济的选择,但是这种方法允许环境微生物在池塘中定居,并可能感染或竞争藻类“作物”。在这项研究中,我们监测了一个室外的,开放的跑道池的微生物群落,该池接种了产生高脂质的碱性藻类小球藻BA050。先前已从华盛顿州Soap Lake分离出了C. vulgaris BA050菌株,该系统具有高pH(〜9.8)的特征。在室外跑道池(200 L)中接种寻常梭菌并监测10天,然后将培养物转移到2,000 L跑道池中,再培养6天。在16天的时间内结合水化学分析和细胞计数收集了社区DNA样品。 Eukarya,细菌和古细菌的SSU rRNA基因序列的通用引物用于条码测序。与寻常小球藻丰度最密切相关的环境参数是pH和磷酸盐。社区分析表明,池塘系统仍然由小球藻种群(占真核生物序列的93%)控制,但也被其他微生物定殖。细菌序列多样性随时间增加,而古细菌序列多样性在同一时期下降。使用SparCC共现网络分析,观察到寻常衣藻和假单胞菌属之间呈正相关。在整个实验过程中,这可能暗示了两种生物之间的共生关系。推定的关系与高pH值可能已促成了寻常梭状芽胞杆菌的成功。嗜碱开放池塘系统的微生物群落动力学的特征提供了对开放池塘系统的重要见解,该系统可用于控制开放,非无菌环境中光养自养生物量的生产力。

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