Consolidated bioprocessing of cellulose to itaconic acid by a co-culture of Trichoderma reesei and Ustilago maydis

被引:49
|
作者
Schlembach, Ivan [1 ,2 ]
Tehrani, Hamed Hosseinpour [3 ]
Blank, Lars M. [3 ]
Buechs, Jochen [4 ]
Wierckx, Nick [3 ,5 ]
Regestein, Lars [1 ]
Rosenbaum, Miriam A. [1 ,2 ]
机构
[1] Hans Knoell Inst, Leibniz Inst Nat Prod Res & Infect Biol, Jena, Germany
[2] Friedrich Schiller Univ, Fac Biol Sci, Jena, Germany
[3] Rhein Westfal TH Aachen, Aachen Biol & Biotechnol ABBt, Inst Appl Microbiol iAMB, Aachen, Germany
[4] Rhein Westfal TH Aachen, AVT Biochem Engn, Aachen, Germany
[5] Forschungszentrum Julich, Inst Bio & Geosci IBG1 Biotechnol, Julich, Germany
关键词
Consolidated bioprocessing; Itaconic acid; Platform chemical; Microbial consortium; Mixed culture; Co-culture; Cellulose; Lignocellulose; Simultaneous saccharification and fermentation; Metabolic engineering; ASPERGILLUS-TERREUS; BEECH WOOD; FERMENTATION; PRETREATMENT; DEGRADATION; HYDROLYSATE; STRATEGIES; CONSORTIA; RUT-C30; ENZYMES;
D O I
10.1186/s13068-020-01835-4
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Background Itaconic acid is a bio-derived platform chemical with uses ranging from polymer synthesis to biofuel production. The efficient conversion of cellulosic waste streams into itaconic acid could thus enable the sustainable production of a variety of substitutes for fossil oil based products. However, the realization of such a process is currently hindered by an expensive conversion of cellulose into fermentable sugars. Here, we present the stepwise development of a fully consolidated bioprocess (CBP), which is capable of directly converting recalcitrant cellulose into itaconic acid without the need for separate cellulose hydrolysis including the application of commercial cellulases. The process is based on a synthetic microbial consortium of the cellulase producer Trichoderma reesei and the itaconic acid producing yeast Ustilago maydis. A method for process monitoring was developed to estimate cellulose consumption, itaconic acid formation as well as the actual itaconic acid production yield online during co-cultivation. Results The efficiency of the process was compared to a simultaneous saccharification and fermentation setup (SSF). Because of the additional substrate consumption of T. reesei in the CBP, the itaconic acid yield was significantly lower in the CBP than in the SSF. In order to increase yield and productivity of itaconic acid in the CBP, the population dynamics was manipulated by varying the inoculation delay between T. reesei and U. maydis. Surprisingly, neither inoculation delay nor inoculation density significantly affected the population development or the CBP performance. Instead, the substrate availability was the most important parameter. U. maydis was only able to grow and to produce itaconic acid when the cellulose concentration and thus, the sugar supply rate, was high. Finally, the metabolic processes during fed-batch CBP were analyzed in depth by online respiration measurements. Thereby, substrate availability was again identified as key factor also controlling itaconic acid yield. In summary, an itaconic acid titer of 34 g/L with a total productivity of up to 0.07 g/L/h and a yield of 0.16 g/g could be reached during fed-batch cultivation. Conclusion This study demonstrates the feasibility of consortium-based CBP for itaconic acid production and also lays the fundamentals for the development and improvement of similar microbial consortia for cellulose-based organic acid production.
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页数:18
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