Department of Chemical and Materials Engineering, Tunghai University, Taichung, Taiwan, ROC.
Bioresour Technol. 2012 Mar;107:539-41. doi: 10.1016/j.biortech.2011.12.134. Epub 2012 Jan 2.
The results of this study indicate that the irradiation could enhance the cells growing of Rhodotorula glutinis to 54.2 ± 1.6g/L as compared to the control (without irradiation) of 38.3 ± 1.2g/L. However, different wavelength of LEDs' (red, green, blue and white) had no significant impacts on the growth and on the lipid content. The accumulation of potential inhibitive metabolic products probably impedes growth, which restricts more biomass accumulated in the fed-batch operation with irradiation. The combining of the fed-batch operation with irradiation and microfiltration can successfully improve the growth of R. glutinis to the maximum of 72.4 ± 0.6g/L and 51.2 ± 4.9% of lipid content obtained. Conclusively, the integration process of a fed-batch operation, irradiation and microfiltration can effectively enhance cell growth in R. glutinis, without any reimbursement of lipid contents. This finding might be useful when applied to the commercialized cultivation of R. glutinis for biodiesel production.
本研究结果表明,与对照组(未辐照)的 38.3 ± 1.2g/L 相比,辐照可将红酵母细胞的生长提高到 54.2 ± 1.6g/L。然而,不同波长的 LED(红、绿、蓝和白)对生长和脂质含量没有显著影响。潜在抑制性代谢产物的积累可能会阻碍生长,从而限制了辐照下分批补料操作中更多生物质的积累。辐照与微滤相结合的分批补料操作可成功将 R. glutinis 的生长提高到最大 72.4 ± 0.6g/L 和 51.2 ± 4.9%的脂质含量。总之,分批补料操作、辐照和微滤的集成工艺可以有效地提高红酵母细胞的生长,而不会对脂质含量产生任何补偿。当应用于商业化生产生物柴油的红酵母培养时,这一发现可能是有用的。