Killing Two Birds With One Stone - Strain Engineering Facilitates the Development of a Unique Rhamnolipid Production Process

被引:28
作者
Bator, Isabel [1 ,2 ]
Karmainski, Tobias [1 ,2 ]
Tiso, Till [1 ,2 ]
Blank, Lars M. [1 ,2 ]
机构
[1] Rhein Westfal TH Aachen, iAMB Inst Appl Microbiol, ABBt Aachen Biol & Biotechnol, Aachen, Germany
[2] Forschungszentrum Julich, Bioecon Sci Ctr BioSC, Julich, Germany
关键词
Pseudomonas; metabolic engineering; synthetic biology; adaptive laboratory evolution; ethanol; rhamnolipid; fermentation; biosurfactants; GRAM-NEGATIVE BACTERIA; BROAD-HOST-RANGE; PSEUDOMONAS-AERUGINOSA; ESCHERICHIA-COLI; MICROBIAL-PRODUCTION; ETHANOL OXIDATION; CLONING; CARBON; GENE; MECHANISMS;
D O I
10.3389/fbioe.2020.00899
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
High-titer biosurfactant production in aerated fermenters using hydrophilic substrates is often hampered by excessive foaming. Ethanol has been shown to efficiently destabilize foam of rhamnolipids, a popular group of biosurfactants. To exploit this feature, we used ethanol as carbon source and defoamer, without introducing novel challenges for rhamnolipid purification. In detail, we engineered the non-pathogenicPseudomonas putidaKT2440 for heterologous rhamnolipid production from ethanol. To obtain a strain with high growth rate on ethanol as sole carbon source at elevated ethanol concentrations, adaptive laboratory evolution (ALE) was performed. Genome re-sequencing allowed to allocate the phenotypic changes to emerged mutations. Several genes were affected and differentially expressed including alcohol and aldehyde dehydrogenases, potentially contributing to the increased growth rate on ethanol of 0.51 h(-1)after ALE. Further, mutations in genes were found, which possibly led to increased ethanol tolerance. The engineered rhamnolipid producer was used in a fed-batch fermentation with automated ethanol addition over 23 h, which resulted in a 3-(3-hydroxyalkanoyloxy)alkanoates and mono-rhamnolipids concentration of about 5 g L-1. The ethanol concomitantly served as carbon source and defoamer with the advantage of increased rhamnolipid and biomass production. In summary, we present a unique combination of strain and process engineering that facilitated the development of a stable fed-batch fermentation for rhamnolipid production, circumventing mechanical or chemical foam disruption.
引用
收藏
页数:16
相关论文
共 83 条
[1]   BASIC LOCAL ALIGNMENT SEARCH TOOL [J].
ALTSCHUL, SF ;
GISH, W ;
MILLER, W ;
MYERS, EW ;
LIPMAN, DJ .
JOURNAL OF MOLECULAR BIOLOGY, 1990, 215 (03) :403-410
[2]   Production of rhamnolipids by integrated foam adsorption in a bioreactor system [J].
Anic, Iva ;
Apolonia, Ines ;
Franco, Pedro ;
Wichmann, Rolf .
AMB EXPRESS, 2018, 8
[3]   Foam adsorption as an ex situ capture step for surfactants produced by fermentation [J].
Anic, Iva ;
Nath, Arijit ;
Franco, Pedro ;
Wichmann, Rolf .
JOURNAL OF BIOTECHNOLOGY, 2017, 258 :181-189
[4]  
[Anonymous], 2014, IND BOCATALYSIS
[5]   Heterologous rhamnolipid biosynthesis by P. putida KT2440 on bio-oil derived small organic acids and fractions [J].
Arnold, Stefanie ;
Henkel, Marius ;
Wanger, Janina ;
Wittgens, Andreas ;
Rosenau, Frank ;
Hausmann, Rudolf .
AMB EXPRESS, 2019, 9 (1)
[6]   SPECIFIC-PURPOSE PLASMID CLONING VECTORS .2. BROAD HOST RANGE, HIGH COPY NUMBER, RSF1010-DERIVED VECTORS, AND A HOST-VECTOR SYSTEM FOR GENE CLONING IN PSEUDOMONAS [J].
BAGDASARIAN, M ;
LURZ, R ;
RUCKERT, B ;
FRANKLIN, FCH ;
BAGDASARIAN, MM ;
FREY, J ;
TIMMIS, KN .
GENE, 1981, 16 (1-3) :237-247
[7]   Review of US and EU initiatives toward development, demonstration, and commercialization of lignocellulosic biofuels [J].
Balan, Venkatesh ;
Chiaramonti, David ;
Kumar, Sandeep .
BIOFUELS BIOPRODUCTS & BIOREFINING-BIOFPR, 2013, 7 (06) :732-759
[8]   Microbial biosurfactants production, applications and future potential [J].
Banat, Ibrahim M. ;
Franzetti, Andrea ;
Gandolfi, Isabella ;
Bestetti, Giuseppina ;
Martinotti, Maria G. ;
Fracchia, Letizia ;
Smyth, Thomas J. ;
Marchant, Roger .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2010, 87 (02) :427-444
[9]   Comparison of Three Xylose Pathways in Pseudomonas putida KT2440 for the Synthesis of Valuable Products [J].
Bator, Isabel ;
Wittgens, Andreas ;
Rosenau, Frank ;
Tiso, Till ;
Blank, Lars M. .
FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2020, 7
[10]   The revisited genome of Pseudomonas putida KT2440 enlightens its value as a robust metabolic chassis [J].
Belda, Eugeni ;
van Heck, Ruben G. A. ;
Lopez-Sanchez, Maria Jose ;
Cruveiller, Stephane ;
Barbe, Valerie ;
Fraser, Claire ;
Klenk, Hans-Peter ;
Petersen, Joern ;
Morgat, Anne ;
Nikel, Pablo I. ;
Vallenet, David ;
Rouy, Zoe ;
Sekowska, Agnieszka ;
dos Santos, Vitor A. P. Martins ;
de Lorenzo, Victor ;
Danchin, Antoine ;
Medigue, Claudine .
ENVIRONMENTAL MICROBIOLOGY, 2016, 18 (10) :3403-3424