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一种富含藻类营养素的优化培养基,用于快速生长和高三酰甘油积累。

An Algal Nutrient-Replete, Optimized Medium for Fast Growth and High Triacylglycerol Accumulation.

作者信息

Jeffers Tim L, McCombs Ryan, Schmollinger Stefan, Tirumani Srikanth, Upadhyaya Shivani, Merchant Sabeeha S, Niyogi Krishna K, Roth Melissa S

机构信息

Department of Plant and Microbial Biology University of California Berkeley California USA.

Quantitative Biosciences Institute University of California Berkeley California USA.

出版信息

Plant Direct. 2025 Sep 12;9(9):e70106. doi: 10.1002/pld3.70106. eCollection 2025 Sep.

Abstract

Microalgae are promising sources to sustainably meet the global needs for energy and products. Algae grow under different trophic conditions, where nutritional status regulates biosynthetic pathways, energy production, and growth. The green alga has strong economic potential because it co-produces biofuel precursors and the high-value antioxidant astaxanthin while accumulating biomass when grown mixotrophically. As an emerging reference alga for photosynthesis, metabolism, and bioproduction, needs a defined, optimized medium to standardize experiments during fast growth for batch cultivation. Because the interplay of glucose treatment (+Glc) and mineral deficiency influences photosynthesis, growth, and the production of lipids and astaxanthin, we designed a replete nutrient medium tailored to the cellular ionome. We combined inductively coupled plasma mass spectrometry (ICP-MS) and +Glc growth curves to determine a medium that is nutrient replete for at least 5 days of +Glc logarithmic growth. We found that there are high nutritional needs for phosphorus and sulfur during mixotrophy. Iron was the only element measured for which the cellular concentration correlated with exogenous concentration and was iteratively adjusted until the cellular ionome was consistent through the logarithmic growth phase. This -Optimized Ratio of Elements (CORE) medium supports fast growth and high biomass and lipid accumulation without causing excess nutrient toxicity. This defined, nutrient-replete standard is important for future investigations and can be adapted for other species to support high biomass for batch cultivation. The method used to develop CORE medium shows how ionomics informs replicable media design and may be applied in industrial settings to inform cost-effective biofuel production.

摘要

微藻是可持续满足全球能源和产品需求的有前景的来源。藻类在不同的营养条件下生长,其中营养状况调节生物合成途径、能量产生和生长。绿藻具有很强的经济潜力,因为它在混合营养生长时能共同产生生物燃料前体和高价值抗氧化剂虾青素,同时积累生物量。作为光合作用、代谢和生物生产的新兴参考藻类,在批量培养的快速生长过程中需要一种明确、优化的培养基来规范实验。由于葡萄糖处理(+Glc)和矿物质缺乏之间的相互作用会影响光合作用、生长以及脂质和虾青素的产生,我们设计了一种根据该细胞离子组定制的营养充足的培养基。我们结合电感耦合等离子体质谱(ICP-MS)和+Glc生长曲线来确定一种在+Glc对数生长至少5天内营养充足的培养基。我们发现混合营养期间对磷和硫有很高的营养需求。铁是所测量的唯一一种细胞浓度与外源浓度相关的元素,并经过反复调整,直到细胞离子组在对数生长期保持一致。这种元素优化比例(CORE)培养基支持快速生长、高生物量和脂质积累,而不会造成过量的营养毒性。这种明确的、营养充足的标准对于未来的研究很重要,并且可以适用于其他物种以支持批量培养的高生物量。用于开发CORE培养基的方法展示了离子组学如何为可重复的培养基设计提供信息,并且可应用于工业环境中以指导具有成本效益的生物燃料生产。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6a1f/12426764/931afb5abb7b/PLD3-9-e70106-g003.jpg

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