Halka Lisa Marie, Nowacki Christian, Kleinschmidt Alica, Koenen Kevin, Wichmann Rolf
Laboratory of Biochemical Engineering, Department of Biochemical and Chemical Engineering, TU Dortmund University, Emil-Figge-Straße 66, 44227, Dortmund, Germany.
Laboratory of Bioprocess Engineering, Department of Biochemical and Chemical Engineering, TU Dortmund University, Emil-Figge-Straße 66, 44227, Dortmund, Germany.
AMB Express. 2018 Aug 22;8(1):132. doi: 10.1186/s13568-018-0662-8.
Fusicocca-2,10(14)-diene (FCdiene) is a diterpene which is interesting as a precursor of the anti-cancer drug fusicoccin A and therefore for pharmaceutical applications. Production of FCdiene using a genetically modified Saccharomyces cerevisiae has been previously demonstrated with batch cultivations with a product concentration up to 10 mg/L. However, it is widely known that fed-batch processes can significantly improve product titer in yeast fermentations. This study focuses on the establishment of fed-batch fermentation for FCdiene production because fed-batch cultivations using FeedBeads indicated that limiting glucose supply could increase yields of biomass (1.07 g/g instead of 0.20 g/g) and FCdiene (21.54 mg/g instead of 9.74 mg/g) in shake flask scale and may have implications for larger scale processes. We implemented a new exponential glucose feed profile in a 1.8 L stirred tank reactor. This reduced overfeeding and the consequent, ethanol production. As a result improvements in cell concentrations up to 246% could be achieved and FCdiene yield increased up to 2.8X in the first 28 h. FCdiene concentration reached 161 mg/L and 320 mg/L at 44 h. Fed-batch and batch mode were combined to examine dynamics of bi-modal cultivation where a fed-batch phase was used for biomass production and a batch phase used for FCdiene production potentially supported by ethanol consumption as reported on production of betulinic acid. The present study highlights the potential of process development improvements which increase high-value heterologous diterpene yields from S. cerevisiae.
壳梭孢-2,10(14)-二烯(FC二烯)是一种二萜类化合物,作为抗癌药物壳梭孢菌素A的前体,因此在制药应用方面具有重要意义。此前已通过分批培养证明利用基因改造的酿酒酵母生产FC二烯,产品浓度可达10 mg/L。然而,众所周知,补料分批工艺可显著提高酵母发酵中的产品滴度。本研究重点在于建立用于生产FC二烯的补料分批发酵,因为使用FeedBeads进行的补料分批培养表明,限制葡萄糖供应可提高摇瓶规模下的生物量产量(从0.20 g/g提高到1.07 g/g)和FC二烯产量(从9.74 mg/g提高到21.54 mg/g),并且可能对更大规模的工艺有影响。我们在一个1.8 L搅拌罐反应器中实施了一种新的指数葡萄糖补料曲线。这减少了过量补料以及随之产生的乙醇产量。结果,细胞浓度提高了246%,并且在最初的28小时内FC二烯产量提高了2.8倍。在44小时时,FC二烯浓度分别达到161 mg/L和320 mg/L。将补料分批和分批模式相结合,以研究双峰培养的动力学,即补料分批阶段用于生物量生产,分批阶段用于FC二烯生产,乙醇消耗可能会对此提供支持,正如桦木酸生产中所报道的那样。本研究突出了工艺开发改进的潜力,这种改进可提高酿酒酵母中高价值异源二萜的产量。