Adipic acid tolerance screening for potential adipic acid production hosts

被引:17
作者
Karlsson, Emma [1 ]
Mapelli, Valeria [1 ,2 ]
Olsson, Lisbeth [1 ]
机构
[1] Chalmers Univ Technol, Div Ind Biotechnol, Dept Biol & Biol Engn, Gothenburg, Sweden
[2] Sacco Srl, Cadorago, CO, Italy
来源
MICROBIAL CELL FACTORIES | 2017年 / 16卷
基金
瑞典研究理事会;
关键词
Adipic acid; Tolerance; Screening; CORYNEBACTERIUM-GLUTAMICUM; ESCHERICHIA-COLI; SACCHAROMYCES-CEREVISIAE; CANDIDA-TROPICALIS; BIOTECHNOLOGICAL PRODUCTION; SUBSTRATE-SPECIFICITY; LYSINE PRODUCTION; PLASMA-MEMBRANE; EXPRESSION; BACTERIA;
D O I
10.1186/s12934-017-0636-6
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: Biobased processes for the production of adipic acid are of great interest to replace the current environmentally detrimental petrochemical production route. No efficient natural producer of adipic acid has yet been identified, but several approaches for pathway engineering have been established. Research has demonstrated that the microbial production of adipic acid is possible, but the yields and titres achieved so far are inadequate for commercialisation. A plausible explanation may be intolerance to adipic acid. Therefore, in this study, selected microorganisms, including yeasts, filamentous fungi and bacteria, typically used in microbial cell factories were considered to evaluate their tolerance to adipic acid. Results: Screening of yeasts and bacteria for tolerance to adipic acid was performed in microtitre plates, and in agar plates for A. niger in the presence of adipic acid over a broad range of concentration (0-684 mM). As the different dissociation state(s) of adipic acid may influence cells differently, cultivations were performed with at least two pH values. Yeasts and A. niger were found to tolerate substantially higher concentrations of adipic acid than bacteria, and were less affected by the undissociated form of adipic acid than bacteria. The yeast exhibiting the highest tolerance to adipic acid was Candida viswanathii, showing a reduction in maximum specific growth rate of no more than 10-15% at the highest concentration of adipic acid tested and the tolerance was not dependent on the dissociation state of the adipic acid. Conclusions: Tolerance to adipic acid was found to be substantially higher among yeasts and A. niger than bacteria. The explanation of the differences in adipic acid tolerance between the microorganisms investigated are likely related to fundamental differences in their physiology and metabolism. Among the yeasts investigated, C. viswanathii showed the highest tolerance and could be a potential host for a future microbial cell factory for adipic acid.
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页数:17
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共 65 条
  • [1] Properties of yeast Saccharomyces cerevisiae plasma membrane dicarboxylate transporter
    Aliverdieva, D. A.
    Mamaev, D. V.
    Bondarenko, D. I.
    Sholtz, K. F.
    [J]. BIOCHEMISTRY-MOSCOW, 2006, 71 (10) : 1161 - 1169
  • [2] Comparative genomics of citric-acid-producing Aspergillus niger ATCC 1015 versus enzyme-producing CBS 513.88
    Andersen, Mikael R.
    Salazar, Margarita P.
    Schaap, Peter J.
    van de Vondervoort, Peter J. I.
    Culley, David
    Thykaer, Jette
    Frisvad, Jens C.
    Nielsen, Kristian F.
    Albang, Richard
    Albermann, Kaj
    Berka, Randy M.
    Braus, Gerhard H.
    Braus-Stromeyer, Susanna A.
    Corrochano, Luis M.
    Dai, Ziyu
    van Dijck, Piet W. M.
    Hofmann, Gerald
    Lasure, Linda L.
    Magnuson, Jon K.
    Menke, Hildegard
    Meijer, Martin
    Meijer, Susan L.
    Nielsen, Jakob B.
    Samson, Rob A.
    Stam, Hein
    Tsang, Adrian
    van den Brink, Johannes M.
    Atkins, Alex
    Aerts, Andrea
    Shapiro, Harris
    Pangilinan, Jasmyn
    Salamov, Asaf
    Lou, Yigong
    Lindquist, Erika
    Lucas, Susan
    Grimwood, Jane
    Grigoriev, Igor V.
    Kubicek, Christian P.
    Martinez, Diego
    van Peij, Noel N. M. E.
    Roubos, Johannes A.
    Nielsen, Jens
    Baker, Scott E.
    [J]. GENOME RESEARCH, 2011, 21 (06) : 885 - 897
  • [3] ANRAKU Y, 1992, J EXP BIOL, V172, P67
  • [4] Engineering Escherichia coli for the production of adipic acid through the reversed β-oxidation pathway
    Babu, Thirumalaisamy
    Yun, Eun Ju
    Kim, Sooah
    Kim, Do Hyoung
    Liu, Kwang Hyeon
    Kim, Soo Rin
    Kim, Kyoung Heon
    [J]. PROCESS BIOCHEMISTRY, 2015, 50 (12) : 2066 - 2071
  • [5] Transiting from Adipic Acid to Bioadipic Acid. Part II. Biosynthetic Pathways
    Bart, Jan C. J.
    Cavallaro, Stefano
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2015, 54 (02) : 567 - 576
  • [6] Beardslee T., 2012, LIPID TECHNOL, V24, P223, DOI 10.1002/lite.201200230
  • [7] A de novo NADPH generation pathway for improving lysine production of Corynebacterium glutamicum by rational design of the coenzyme specificity of glyceraldehyde 3-phosphate dehydrogenase
    Bommareddy, Rajesh Reddy
    Chen, Zhen
    Rappert, Sugima
    Zeng, An-Ping
    [J]. METABOLIC ENGINEERING, 2014, 25 : 30 - 37
  • [8] Advanced biofuel production by the yeast Saccharomyces cerevisiae
    Buijs, Nicolaas A.
    Siewers, Verena
    Nielsen, Jens
    [J]. CURRENT OPINION IN CHEMICAL BIOLOGY, 2013, 17 (03) : 480 - 488
  • [9] Evolution of pathogenicity and sexual reproduction in eight Candida genomes
    Butler, Geraldine
    Rasmussen, Matthew D.
    Lin, Michael F.
    Santos, Manuel A. S.
    Sakthikumar, Sharadha
    Munro, Carol A.
    Rheinbay, Esther
    Grabherr, Manfred
    Forche, Anja
    Reedy, Jennifer L.
    Agrafioti, Ino
    Arnaud, Martha B.
    Bates, Steven
    Brown, Alistair J. P.
    Brunke, Sascha
    Costanzo, Maria C.
    Fitzpatrick, David A.
    de Groot, Piet W. J.
    Harris, David
    Hoyer, Lois L.
    Hube, Bernhard
    Klis, Frans M.
    Kodira, Chinnappa
    Lennard, Nicola
    Logue, Mary E.
    Martin, Ronny
    Neiman, Aaron M.
    Nikolaou, Elissavet
    Quail, Michael A.
    Quinn, Janet
    Santos, Maria C.
    Schmitzberger, Florian F.
    Sherlock, Gavin
    Shah, Prachi
    Silverstein, Kevin A. T.
    Skrzypek, Marek S.
    Soll, David
    Staggs, Rodney
    Stansfield, Ian
    Stumpf, Michael P. H.
    Sudbery, Peter E.
    Srikantha, Thyagarajan
    Zeng, Qiandong
    Berman, Judith
    Berriman, Matthew
    Heitman, Joseph
    Gow, Neil A. R.
    Lorenz, Michael C.
    Birren, Bruce W.
    Kellis, Manolis
    [J]. NATURE, 2009, 459 (7247) : 657 - 662
  • [10] Transport of carboxylic acids in yeasts
    Casal, Margarida
    Paiva, Sandra
    Queiros, Odilia
    Soares-Silva, Isabel
    [J]. FEMS MICROBIOLOGY REVIEWS, 2008, 32 (06) : 974 - 994