Department of Biotechnology, Graduate School, Korea University, Seoul 02841, South Korea.
Department of Biotechnology, Graduate School, Korea University, Seoul 02841, South Korea.
J Biotechnol. 2018 Mar 20;270:12-20. doi: 10.1016/j.jbiotec.2018.01.017. Epub 2018 Jan 31.
Marine red macroalgae have received much attention as sustainable resources for producing bio-based products. Therefore, understanding the metabolic pathways of carbohydrates from red macroalgae, in fermentative microorganisms, is crucial for efficient bioconversion of the carbohydrates into bio-based products. Recently, the novel catabolic pathway of 3,6-anhydro-l-galactose (AHG), the main component of red macroalgae, was discovered in a marine bacterium, Vibrio sp. strain EJY3. However, the global metabolic network in response to AHG remains unclear. Here, the intracellular metabolites of EJY3 grown on AHG, glucose, or galactose were comparatively profiled using gas chromatography/time-of-flight mass spectrometry. The global metabolite profiling results revealed that the metabolic profile for AHG significantly differed from those for other common sugars. Specifically, the metabolic intermediate of the AHG pathway, 3,6-anhydrogalactonate, was detected during growth only in the presence of AHG; thus, the recently discovered key steps in AHG catabolism was found not to occur in the catabolism of other common sugars. Moreover, the levels of metabolic intermediates related to glycerolipid metabolism and valine biosynthesis were higher with AHG than those with other sugars. These comprehensive metabolomic analytical results for AHG in this marine bacterium can be used as the basis for having fermentative microbial strains to engineered to efficiently utilize AHG from macroalgal biomass.
海洋红藻作为生产生物基产品的可持续资源受到了广泛关注。因此,了解红藻碳水化合物在发酵微生物中的代谢途径对于碳水化合物高效生物转化为生物基产品至关重要。最近,在一种海洋细菌 Vibrio sp. strain EJY3 中发现了红藻主要成分 3,6-脱水-l-半乳糖 (AHG) 的新型分解代谢途径。然而,AHG 响应的全球代谢网络尚不清楚。在这里,使用气相色谱/飞行时间质谱法比较了 EJY3 在 AHG、葡萄糖或半乳糖上生长时的细胞内代谢物。全局代谢物分析结果表明,AHG 的代谢谱与其他常见糖的代谢谱明显不同。具体而言,AHG 途径的代谢中间产物 3,6-脱水半乳糖酸仅在存在 AHG 时才在生长过程中检测到;因此,最近发现的 AHG 分解代谢中的关键步骤不会发生在其他常见糖的分解代谢中。此外,与甘油脂质代谢和缬氨酸生物合成相关的代谢中间产物的水平在 AHG 存在时比其他糖更高。这些海洋细菌中 AHG 的综合代谢组学分析结果可作为基础,用于对发酵微生物菌株进行工程改造,以有效利用来自海藻生物质的 AHG。