School of Food Science and Engineering, South China University of Technology, Wushan Rd. 381, Guangzhou 510641, China.
Guangdong Provincial Key Laboratory of Microbial Culture Collection and Application, State Key Laboratory of Applied Microbiology Southern China, Guangdong Institute of Microbiology, Guangdong Academy of Sciences, Guangzhou 510070, China.
Int J Mol Sci. 2021 Jan 27;22(3):1247. doi: 10.3390/ijms22031247.
The thermoacidophilic red alga has been optimizing a photosynthetic system for low-light conditions over billions of years, thriving in hot and acidic endolithic habitats. The growth of in the laboratory is very much dependent on light and substrate supply. Here, higher cell densities in under high-light conditions were obtained, although reductions in photosynthetic pigments were observed, which indicated this alga might be able to relieve the effects caused by photoinhibition. We further describe an extensive untargeted metabolomics study to reveal metabolic changes in autotrophic and mixotrophic grown under high and low light intensities. The up-modulation of bilayer lipids, that help generate better-ordered lipid domains (e.g., ergosterol) and keep optimal membrane thickness and fluidity, were observed under high-light exposure. Moreover, high-light conditions induced changes in amino acids, amines, and amide metabolism. Compared with the autotrophic algae, higher accumulations of osmoprotectant sugars and sugar alcohols were recorded in the mixotrophic . This response can be interpreted as a measure to cope with stress due to the high concentration of organic carbon sources. Our results indicate how can modulate its metabolome to maintain energetic balance and minimize harmful effects under changing environments.
嗜热嗜酸红藻在数十亿年的时间里不断优化其光合作用系统以适应低光环境,从而在高温和酸性内生栖息地中茁壮生长。在实验室中, 的生长非常依赖光照和基质供应。在这里,在高光条件下获得了更高的 细胞密度,尽管观察到光合色素减少,但这表明该藻类可能能够缓解光抑制引起的影响。我们进一步描述了一项广泛的非靶向代谢组学研究,以揭示在高光和低光强度下自养和混合营养 的代谢变化。在高光暴露下,观察到双层脂质的上调,这有助于产生更好有序的脂质区(例如麦角固醇)并保持最佳的膜厚度和流动性。此外,高光条件诱导了氨基酸、胺和酰胺代谢的变化。与自养藻类相比,混合营养 的积累了更高水平的渗透保护剂糖和糖醇。这种反应可以解释为应对由于高浓度有机碳源引起的应激的一种措施。我们的研究结果表明, 在不断变化的环境中,藻类如何调节其代谢组以维持能量平衡并最小化有害影响。