Li Xingkang, Liang Yuanmei, Li Kai, Jin Peng, Tang Jie, Klepacz-Smółka Anna, Ledakowicz Stanislaw, Daroch Maurycy
School of Environment and Energy, Peking University Shenzhen Graduate School, Shenzhen 518055, China.
Department School of Liquor and Food Engineering, Guizhou University, Guiyang 550025, China.
Plants (Basel). 2021 Oct 4;10(10):2101. doi: 10.3390/plants10102101.
Both low temperature and nitrogen starvation caused chlorosis of cyanobacteria. Here, in this study, for the first time, we compared the effects of low temperature, nitrogen starvation, and their combination on the photosynthesis and metabolites of a thermophilic cyanobacterium strain, E542. Under various culture conditions, the growth rates, pigment contents, and chlorophyll fluorescence were monitored, and the composition of alkanes, lipidomes, and carbohydrates were determined. It was found that low temperature (35 °C) significantly suppressed the growth of E542. Nitrogen starvation at 45 °C and 55 °C did not affect the growth; however, combined treatment of low temperature and nitrogen starvation led to the lowest growth rate and biomass productivity. Both low temperature and nitrogen starvation caused significantly declined contents of pigments, but they resulted in a different effect on the OJIP curves, and their combination led to the lowest pigment contents. The composition of fatty acids and alkanes was altered upon low-temperature cultivation, while nitrogen starvation caused reduced contents of all lipids. The low temperature did not affect carbohydrate contents, while nitrogen starvation greatly enhanced carbohydrate content, and their combination did not enhance carbohydrate content, but led to reduced productivity. These results revealed the influence of low temperature, nitrogen starvation, and their combined treatment for the accumulation of phycobiliproteins, lipids, and carbohydrates of a thermophilic cyanobacterium strain, E542.
低温和氮饥饿均会导致蓝藻细胞黄化。在本研究中,我们首次比较了低温、氮饥饿及其组合对嗜热蓝藻菌株E542光合作用和代谢产物的影响。在不同培养条件下,监测了其生长速率、色素含量和叶绿素荧光,并测定了烷烃、脂质组和碳水化合物的组成。结果发现,低温(35℃)显著抑制了E542的生长。45℃和55℃下的氮饥饿对生长没有影响;然而,低温和氮饥饿的联合处理导致了最低的生长速率和生物量生产力。低温和氮饥饿均导致色素含量显著下降,但它们对OJIP曲线产生了不同的影响,且二者组合导致色素含量最低。低温培养会改变脂肪酸和烷烃的组成,而氮饥饿会导致所有脂质含量降低。低温不影响碳水化合物含量,而氮饥饿会显著提高碳水化合物含量,二者组合并未提高碳水化合物含量,反而导致生产力下降。这些结果揭示了低温、氮饥饿及其联合处理对嗜热蓝藻菌株E542藻胆蛋白、脂质和碳水化合物积累的影响。