Promoting cell growth and characterizing partial symbiotic relationships in the co‐cultivation of green alga Chlamydomonas reinhardtii and Escherichia coli

莱茵衣藻 淀粉 大肠杆菌 生物 光合作用 绿藻门 单作 混合营养体 食品科学 植物 生物化学 细菌 异养 藻类 基因 生态学 突变体 遗传学
作者
Ryosuke Yamada,Moe Yokota,Takuya Matsumoto,Ben Hankamer,Hiroyasu Ogino
出处
期刊:Biotechnology Journal [Wiley]
卷期号:18 (2): e2200099-e2200099 被引量:17
标识
DOI:10.1002/biot.202200099
摘要

Abstract Background By co‐culturing selected microalgae and heterotrophic microorganisms, the growth rate of microalgae can be improved even under atmospheric conditions with a low CO 2 concentration. However, the detailed mechanism of improvement of proliferative capacity by co‐culture has not been elucidated. In this study, we investigated changes in the proliferative capacity of the green alga Chlamydomonas reinhardtii by co‐culturing with Escherichia coli . Main Methods and Major Results In the co‐culture, the number of C. reinhardtii cells reached 2.22 × 10 10 cell/L on day 14 of culture. This was about 1.9 times the number of cells (1.16 × 10 10 cell/L) on day 14 compared to C. reinhardtii cells in monoculture. The starch content per cell in the co‐culture of C. reinhardtii and E. coli on the 14th day (2.09 × 10 −11 g/cell) was 1.3 times higher than that in the C. reinhardtii monoculture (1.59 × 10 −11 g/cell), and the starch content per culture medium improved 2.5 times with co‐cultivation. By analyzing the gene transcription profiles and key media components, we clarified that E. coli produced CO 2 from the organic carbon in the medium and the organic carbon produced by photosynthesis of C. reinhardtii , and this CO 2 likely enhanced the growth of C. reinhardtii . Conclusions Consequently, E. coli plays a key role in promoting the growth of C. reinhardtii as well as the accumulation of starch which is a valuable intermediate for the production of a range of useful chemicals from CO 2 .
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