Engineering Rhodosporidium toruloides with a membrane transporter facilitates production and separation of carotenoids and lipids in a bi-phasic culture

被引:0
作者
Jaslyn J.L Lee
Liwei Chen
Bin Cao
Wei Ning Chen
机构
[1] Nanyang Technological University,Advanced Environmental Biotechnology Centre, Nanyang Environment and Water Research Institute, Interdisciplinary Graduate School
[2] Nanyang Technological University,School of Chemical and Biomedical Engineering
[3] Nanyang Technological University,School of Civil and Environmental Engineering and Singapore Centre on Environmental Life Sciences Engineering
来源
Applied Microbiology and Biotechnology | 2016年 / 100卷
关键词
ABC transporter; Carotenoids; Lipids; Extraction; Separation;
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摘要
The oleaginous yeast Rhodosporidium toruloides has great biotechnological potential. It accumulates a high amount of lipids which can be used for biofuels and also produces carotenoids which are valuable in the food and pharmaceutical industry. However, the location of these two hydrophobic products in the cell membrane prohibits its efficient harvesting and separation. Here, the transporter Pdr10 was engineered into R. toruloides and cultured in two-phase media containing oil. This enabled the production and in situ export of carotenoids into the oil and concurrent separation from intracellular lipids in the cells. When Pdr10 strain was cultured in the two-phase media, carotenoids and fatty acids yield increased from 1.9 to 2.9 μg/mg and 0.07 to 0.09 mg/mg, respectively. A total of 1.8 μg/mg carotenoids was exported by Pdr10 strain, as compared to 0.3 μg/mg in the wild type. In the Pdr10 strain, the composition of carotenoids and fatty acid it produced also changed. Torulene became the major carotene produced instead of torularhodin. Also, the unsaturated fatty acid C18:2 became the dominant fatty acid produced instead of the saturated C16:0, which was similar to the grape seed oil used in the two-phase media. This indicated that oil was being consumed by the cells, which was supported by the increased intracellular glycerol levels detected by gas chromatography-mass spectrometry (GC-MS). Our approach represents an easy and greener extraction method which could serve to increase the yield and facilitate separation of carotenoids and fatty acids.
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页码:869 / 877
页数:8
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  • [1] Baumgartner K(2010)-mediated transformation for investigation of somatic recombination in the fungal pathogen Appl Environ Microbiol 76 7990-7996
  • [2] Fujiyoshi P(1959)A rapid method of total lipid extraction and purification Can J Biochem and Phys 37 911-917
  • [3] Foster GD(2007)Carotenoid profiles of yeasts belonging to the genera Can J Microbiol 53 1024-1031
  • [4] Bailey AM(2010), Biotech and Bioeng 107 76-84
  • [5] Bligh EG(2006), J Supercrit Fluids 37 151-156
  • [6] Dyer WJ(2012), and J Mass Spect 47 1113-1119
  • [7] Buzzini P(2005)Effect of biodiesel-derived waste glycerol impurities on biomass and 1,3-propanediol production of FEMS Yeast Res 5 527-543
  • [8] Innocenti M(2009) VPI 1718 J Ind Microbiol & Biotech 36 163-180
  • [9] Turchetti B(2005)Concentration of minor components in crude palm oil Biochim et Biophys Acta - Molecular Basis of Disease 1740 108-115
  • [10] Libkind D(2000)Seed oil triglyceride profiling of thirty-two hybrid grape varieties J Appl Microbiol 89 107-115