Smith Abigail Veronica, Zhu Honghui, Mats Lili, Bozzo Gale
Department of Plant Agriculture, University of Guelph, 50 Stone Road East, Guelph, ON N1G 2W1, Canada.
Guelph Research and Development Centre, Agriculture and Agri-Food Canada, 93 Stone Road West, Guelph, ON N1G 5C9, Canada.
Molecules. 2025 Jun 30;30(13):2823. doi: 10.3390/molecules30132823.
The mycelia of contain neuroprotective cyathane diterpenoids (e.g., erinacine A). There is evidence that cultivation of submerged mycelia with surfactants increases glucose uptake and biomass, but the impact on erinacine production is unknown. Here, we tested the impact of glucose and polysorbate 80 on the mycelial erinacine profiles of five strains cultivated under submergence, including those of , , and . Metabolite profiling confirmed that mycelial extracts contained 13% to 91% of the erinacines A, C and P in additive-free cultures of all strains, with the remainder secreted to the culture medium. Overall, erinacine P production was several orders of magnitude greater than that of the other erinacines, except for (DAOMC 251029), where erinacine C was most evident. (DAOMC 251017) produced the greatest concentrations of erinacines A and P. For the most part mycelial erinacine concentrations were reduced in cultures co-supplemented with glucose and polysorbate 80. This treatment caused an 83-100% reduction in the concentrations of erinacines A, C, and P in the mycelial extracts of most strains. By contrast, there was evidence that glucose and polysorbate 80 had no effect on erinacine A production within mycelia of , and erinacine P concentrations in (DAOMC 251029) and (DAOMC 251011). In most strains, the secretion of erinacines to the culture medium declined with glucose and polysorbate 80. Conversely, these additives increased the concentrations of erinacines C and P in the culture medium filtrate of (DAOMC 21467) and yielded more secreted erinacine P in (DAOMC 251029). The information provides feasible strategies to produce mycelia with unique erinacine profiles including those rich in erinacine P.
含有具有神经保护作用的紫杉烷二萜类化合物(例如,erinacine A)。有证据表明,用表面活性剂培养深层菌丝体可增加葡萄糖摄取量和生物量,但对erinacine产量的影响尚不清楚。在此,我们测试了葡萄糖和聚山梨醇酯80对在深层培养条件下培养的5种菌株的菌丝体erinacine谱的影响,包括、和的菌株。代谢物谱分析证实,在所有菌株的无添加剂培养物中,菌丝体提取物含有13%至91%的erinacine A、C和P,其余部分分泌到培养基中。总体而言,除了(DAOMC 251029)中erinacine C最为明显外,erinacine P的产量比其他erinacine高出几个数量级。(DAOMC 251017)产生的erinacine A和P浓度最高。在大多数情况下,在同时添加葡萄糖和聚山梨醇酯80的培养物中,菌丝体erinacine浓度降低。这种处理使大多数菌株的菌丝体提取物中erinacine A、C和P的浓度降低了83 - 100%。相比之下,有证据表明葡萄糖和聚山梨醇酯80对、菌丝体中的erinacine A产量以及(DAOMC 251029)和(DAOMC 251011)中的erinacine P浓度没有影响。在大多数菌株中,随着葡萄糖和聚山梨醇酯80的添加,erinacine向培养基中的分泌减少。相反,这些添加剂增加了(DAOMC 21467)培养基滤液中erinacine C和P的浓度,并在(DAOMC 251029)中产生了更多分泌型erinacine P。该信息为生产具有独特erinacine谱(包括富含erinacine P的谱)的菌丝体提供了可行的策略。