Characterization of the metabolism of the yeast Yarrowia lipolytica growing as a biofilm

被引:0
作者
Jenjitwanich, Akarawit [1 ]
Marx, Hans [1 ,2 ]
Sauer, Michael [1 ,3 ]
机构
[1] BOKU Univ, Inst Microbiol & Microbial Biotechnol, Dept Biotechnol, Muthgasse 18, A-1190 Vienna, Austria
[2] TU Wien, Inst Chem Environm & Biosci Engn, Res Area Biochem Engn Integrated Bioproc Dev, Gumpendorfer Str 1a, A-1060 Vienna, Austria
[3] OMV AG, Trabrennstr 6-8, A-1020 Vienna, Austria
来源
FEMS MICROBES | 2024年 / 5卷
关键词
Yarrowia lipolytica; microbial bioconversion; biofilm formation; trickle bed reactor; glycerol conversion; yeast immobilization; EXTRACELLULAR POLYMERIC SUBSTANCES; TROPICAL MARINE YEAST; SACCHAROMYCOPSIS-LIPOLYTICA; N-PARAFFINS; SUBSTRATE; ACID;
D O I
10.1093/femsmc/xtae026
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Yarrowia lipolytica is a well-characterized yeast with remarkable metabolic adaptability. It is capable of producing various products from different carbon sources and easily switching between planktonic and biofilm states. A biofilm represents a natural means of cell immobilization that could support continuous cultivation and production processes, such as perfusion cultivation. However, the metabolic activities of Y. lipolytica in biofilms have not yet been studied in detail. Therefore,this study aimed to compare the metabolic activities of Y. lipolytica in biofilm and planktonic states. Conventionally, a stirred tank bioreactor was used to cultivate Y. lipolytica in a planktonic state. On the other hand, a trickle bed bioreactor system was used for biofilm cultivation. The low pH at 3 was maintained to favor polyol production. The accumulation of citric acid was observed over time only in the biofilm state, which significantly differed from the planktonic state. Although the biofilm cultivation process has lower productivity, it has been observed that the production rate remains constant and the total product yield is comparable to the planktonic state when supplied with 42% oxygen-enriched air. This finding indicates that the biofilm state has the potential for continuous bioprocessing applications and is possibly a feasible option
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页数:12
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  • [1] Analysis of virulence factors and in vivo biofilm-forming capacity of Yarrowia lipolytica isolated from patients with fungemia
    Abbes, S.
    Amouri, I.
    Trabelsi, H.
    Neji, S.
    Sellami, H.
    Rahmouni, F.
    Makni, F.
    Rebai, T.
    Ayadi, A.
    [J]. MEDICAL MYCOLOGY, 2017, 55 (02) : 193 - 202
  • [2] Yeast biofilms on abiotic surfaces: Adhesion factors and control methods
    Alonso, Vanessa Pereira Perez
    Lemos, Jessica Gonsalves
    do Nascimento, Maristela da Silva
    [J]. INTERNATIONAL JOURNAL OF FOOD MICROBIOLOGY, 2023, 400
  • [3] Bioleaching of Fly Ash by the Tropical Marine Yeast, Yarrowia lipolytica NCIM 3589
    Bankar, Ashok
    Winey, Mark
    Prakash, Divya
    Kumar, Ameeta Ravi
    Gosavi, Suresh
    Kapadnis, Balu
    Zinjarde, Smita
    [J]. APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2012, 168 (08) : 2205 - 2217
  • [4] Environmental and industrial applications of Yarrowia lipolytica
    Bankar, Ashok V.
    Kumar, Ameeta R.
    Zinjarde, Smita S.
    [J]. APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2009, 84 (05) : 847 - 865
  • [5] Microbial landscapes: new paths to biofilm research
    Battin, Tom J.
    Sloan, William T.
    Kjelleberg, Staffan
    Daims, Holger
    Head, Ian M.
    Curtis, Tom P.
    Eberl, Leo
    [J]. NATURE REVIEWS MICROBIOLOGY, 2007, 5 (01) : 76 - 81
  • [6] An extracellular matrix glues together the aerial-grown hyphae of Aspergillus fumigatus
    Beauvais, Anne
    Schmidt, Christine
    Guadagnini, Stephanie
    Roux, Pascal
    Perret, Emmanuelle
    Henry, Christine
    Paris, Sophie
    Mallet, Adeline
    Prevost, Marie-Christine
    Latge, Jean Paul
    [J]. CELLULAR MICROBIOLOGY, 2007, 9 (06) : 1588 - 1600
  • [7] pH variation in medical implant biofilms: Causes, measurements, and its implications for antibiotic resistance
    Behbahani, Shayesteh Beladi
    Kiridena, Sachindra D.
    Wijayaratna, Uthpala N.
    Taylor, Cedric
    Anker, Jeffrey N.
    Tzeng, Tzuen-Rong Jeremy
    [J]. FRONTIERS IN MICROBIOLOGY, 2022, 13
  • [8] How to build a biofilm: a fungal perspective
    Blankenship, Jill R.
    Mitchell, Aaron P.
    [J]. CURRENT OPINION IN MICROBIOLOGY, 2006, 9 (06) : 588 - 594
  • [9] Biofilms: Microbial life on surfaces
    Donlan, RM
    [J]. EMERGING INFECTIOUS DISEASES, 2002, 8 (09) : 881 - 890
  • [10] Biofilm formation by a biotechnologically important tropical marine yeast isolate, Yarrowia lipolytica NCIM 3589
    Dusane, D. H.
    Nancharaiah, Y. V.
    Venugopalan, V. P.
    Kumar, A. R.
    Zinjarde, S. S.
    [J]. WATER SCIENCE AND TECHNOLOGY, 2008, 58 (06) : 1221 - 1229