Xu Guangjie, Sun Chengfu
School of Pharmacy, Chengdu Medical College, Chengdu, Sichuan, China.
Scientific Research Center, Chengdu Medical College, Chengdu, 610500, China.
Planta. 2025 Jul 15;262(3):52. doi: 10.1007/s00425-025-04770-6.
Euglena gracilis possesses a dynamic inositol metabolic network, with enzyme expression varying under different growth conditions and stressors, enabling future synthetic engineering. Inositol and its phosphate derivatives play pivotal roles in energy metabolism and cellular signaling. Although inositol was detected in Euglena gracilis (E. gracilis) decades ago, the enzymatic machinery governing its metabolic conversion remains poorly characterized. In this study, we conducted a comprehensive bioinformatic analysis of inositol phosphate-metabolizing enzymes and identified 25 enzyme entries (encompassing 35 genes) in this protist. KEGG pathway mapping revealed an active inositol metabolic network in E. gracilis. Genomic structure analysis demonstrated that most of these genes are present in multiple copies across the genome. By constructing a miniaturized genomic representation of these enzymes, we investigated their transcriptional profiles under various conditions, including photo-, hetero-, and mixotrophic growth, aerobic and anaerobic environments, light and dark exposure, and treatment with ethanol, glucose, or other chemical stressors. Our findings indicate that inositol phosphate-metabolizing enzymes exhibit differential expression and dynamic regulation depending on physiological growth conditions and external stimuli. This study establishes a foundation for future catalytic characterization and synthetic engineering of inositol-related enzymes in E. gracilis.
纤细裸藻拥有一个动态的肌醇代谢网络,其酶表达在不同生长条件和应激源下会发生变化,这为未来的合成工程提供了可能。肌醇及其磷酸衍生物在能量代谢和细胞信号传导中起着关键作用。尽管几十年前就在纤细裸藻中检测到了肌醇,但控制其代谢转化的酶机制仍未得到充分表征。在本研究中,我们对肌醇磷酸代谢酶进行了全面的生物信息学分析,并在这种原生生物中鉴定出了25个酶条目(包含35个基因)。KEGG通路映射显示纤细裸藻中存在一个活跃的肌醇代谢网络。基因组结构分析表明,这些基因中的大多数在基因组中以多个拷贝存在。通过构建这些酶的小型化基因组表示,我们研究了它们在各种条件下的转录谱,包括光合、异养和混合营养生长、需氧和厌氧环境、光照和黑暗暴露以及用乙醇、葡萄糖或其他化学应激源处理。我们的研究结果表明,肌醇磷酸代谢酶根据生理生长条件和外部刺激表现出差异表达和动态调节。本研究为未来对纤细裸藻中肌醇相关酶的催化表征和合成工程奠定了基础。