Citation: Bruce S Dien, Patricia J. Slininger, Cletus P. Kurtzman, Bryan R. Moser, Patricia J. O’Bryan. Identification of superior lipid producing Lipomyces and Myxozyma yeasts[J]. AIMS Environmental Science, 2016, 3(1): 1-20. doi: 10.3934/environsci.2016.1.1
[1] | Sitepu IR, Garay LA, Sestric R, et al. (2014) Oleaginous yeasts for biodiesel: Current and future trends in biology and production.Biotechnol adv 32: 1336-1360. doi: 10.1016/j.biotechadv.2014.08.003 |
[2] | Thorpe R, Ratledge C (1972) Fatty acid distribution in triglycerides of yeasts grown on glucose or n-alkanes. J Gen Microbiol 72: 151-163. doi: 10.1099/00221287-72-1-151 |
[3] | Papanikolaou S, Aggelis G (2010) Yarrowia lipolytica: A model microorganism used for the production of tailor‐made lipids.Eur j lipid sci tech 112: 639-654. |
[4] | Jin M, Slininger PJ, Dien BS, et al. (2015) Microbial lipid-based lignocellulosic biorefinery: feasibility and challenges.Trends biotechnol 33: 43-54. doi: 10.1016/j.tibtech.2014.11.005 |
[5] | Davies RJ (1992) Scale Up of Yeast Oil Technology. Industrial Applications of Single Cell Oils: AOCS Publishing. |
[6] | Ratledge C, Wynn JP (2002) The biochemistry and molecular biology of lipid accumulation in oleaginous microorganisms. Advances in Applied Microbiology: Academic Press. pp. 1-51. |
[7] | Anschau A, Xavier MC, Hernalsteens S, et al. (2014) Effect of feeding strategies on lipid production by Lipomyces starkeyi.Bioresource technol 157: 214-222. doi: 10.1016/j.biortech.2014.01.104 |
[8] | Lin J, Shen H, Tan H, et al. (2011) Lipid production by Lipomyces starkeyi cells in glucose solution without auxiliary nutrients. J biotechnol 152: 184-188. doi: 10.1016/j.jbiotec.2011.02.010 |
[9] | Tsakona S, Kopsahelis N, Chatzifragkou A, et al. (2014) Formulation of fermentation media from flour-rich waste streams for microbial lipid production by Lipomyces starkeyi. J biotechnol 189: 36-45. |
[10] | Schmer MR, Vogel KP, Varvel GE, et al. (2014) Energy potential and greenhouse gas emissions from bioenergy cropping systems on marginally productive cropland. PloS one 9. |
[11] | Fulton LM, Lynd LR, Körner A, et al. (2015) The need for biofuels as part of a low carbon energy future.Biofuels, bioprod bioref 9: 476-483. doi: 10.1002/bbb.1559 |
[12] | Perlack RD, Eaton LM, Turhollow Jr AF, et al. (2011) US billion-ton update: biomass supply for a bioenergy and bioproducts industry. |
[13] | Dien BS, Jung H-JG, Vogel KP, et al. (2006) Chemical composition and response to dilute-acid pretreatment and enzymatic saccharification of alfalfa, reed canarygrass, and switchgrass.Biomass bioenerg 30: 880-891. |
[14] | Kurtzman C, Fell JW, Boekhout T (2011) The yeasts: a taxonomic study: Elsevier. |
[15] | Liu L, Pan A, Spofford C, et al. (2015) An evolutionary metabolic engineering approach for enhancing lipogenesis in Yarrowia lipolytica.Metab eng 29: 36-45. doi: 10.1016/j.ymben.2015.02.003 |
[16] | Xie D, Jackson E, Zhu Q (2015) Sustainable source of omega-3 eicosapentaenoic acid from metabolically engineered Yarrowia lipolytica: from fundamental research to commercial production.Appl microbiol biotechnol 99: 1599-1610. doi: 10.1007/s00253-014-6318-y |
[17] | Slininger PJ, Dien BS, Kurtzman CP, et al. (submitted) Comparative Lipid Production by Oleaginous Yeasts in Hydrolyzates of Lignocellulosic Biomass and Process Strategy for High Titers Biotechnol Bioeng. |
[18] | Izard J, Limberger RJ (2003) Rapid screening method for quantitation of bacterial cell lipids from whole cells.J microbiol meth 55: 411-418. |
[19] | Knight JA, Anderson S, Rawle JM (1972) Chemical basis of the sulfo-phospho-vanillin reaction for estimating total serum lipids.Clin chem 18: 199-202. |
[20] | Wang J, Li R, Lu D, et al. (2009) A quick isolation method for mutants with high lipid yield in oleaginous yeast.World j microb biot 25: 921-925. doi: 10.1007/s11274-009-9960-2 |
[21] | Cheng Y-S, Zheng Y, VanderGheynst JS (2011) Rapid quantitative analysis of lipids using a colorimetric method in a microplate format.Lipids 46: 95-103. doi: 10.1007/s11745-010-3494-0 |
[22] | Govender T, Ramanna L, Rawat I, et al. (2012)BODIPY staining, an alternative to the Nile Red fluorescence method for the evaluation of intracellular lipids in microalgae. Bioresour technol 114: 507-511. |
[23] | Greenspan P, Fowler SD (1985) Spectrofluorometric studies of the lipid probe, nile red.J lipid res 26: 781-789. |
[24] | Sitepu I, Ignatia L, Franz A, et al. (2012)An improved high-throughput Nile red fluorescence assay for estimating intracellular lipids in a variety of yeast species.J microbiol meth 91: 321-328. |
[25] | Gao C, Xiong W, Zhang Y, et al. (2008) Rapid quantitation of lipid in microalgae by time-domain nuclear magnetic resonance. J microbiol meth 75: 437-440. doi: 10.1016/j.mimet.2008.07.019 |
[26] | Laurens LM, Quinn M, Van Wychen S, et al. (2012) Accurate and reliable quantification of total microalgal fuel potential as fatty acid methyl esters by in situ transesterification.Anal bioanal chem 403: 167-178. doi: 10.1007/s00216-012-5814-0 |
[27] | Dugar D, Stephanopoulos G (2011) Relative potential of biosynthetic pathways for biofuels and bio-based products.Nat biotechnol 29: 1074-1078. |
[28] | Ageitos JM, Vallejo JA, Veiga-Crespo P, et al. (2011) Oily yeasts as oleaginous cell factories.Appl microbiol biotechnol 90: 1219-1227. doi: 10.1007/s00253-011-3200-z |
[29] | Eroshin V, Krylova N (1983) Efficiency of lipid synthesis by yeasts.Biotechnol bioeng 25: 1693-1700. |
[30] | Davies RJ, Holdsworth JE (1992) Synthesis of lipids in yeasts: Biochemistry, physiology and production. Adv appl lipid res 1: 119-159. |
[31] | Spencer-Martins I, Van Uden N (1977) Yields of yeast growth on starch.Eur j appl microbiol biotechnol 4: 29-35. |
[32] | Spencer-Martins I, van Uden N (1979) Extracellular amylolytic system of the yeast Lipomyces kononenkoae. Eur j appl microbiol biotechnol 6: 241-250. doi: 10.1007/BF00508096 |
[33] | Spencer-Martins I, van Uden N (1982) The temperature profile of growth, death and yield of the starch-converting yeast Lipomyces kononenkoae.Zeitschrift für allgemeine Mikrobiologie 22: 503-505. doi: 10.1002/jobm.3630220710 |
[34] | Lomascolo A, Dubreucq E, Perrier V, et al. (1994) Study of lipids in Lipomyces and Waltomyces. Can j microbiol 40: 724-729. |
[35] | McElroy FA, Stewart H (1967) The lipids of Lipomyces lipofer. Can jbiochem 45: 171-178. |
[36] | Funke M, Buchenauer A, Schnakenberg U, et al. (2010) Microfluidic biolector—Microfluidic bioprocess control in microtiter plates.Biotechnol bioeng 107: 497-505. |
[37] | Dien BS, Kurtzman CG, Saha BC, et al. Screening for L-arabinose fermenting yeasts; 1996. Springer. pp. 233-242. |
[38] | Zhang G-C, Liu J-J, Kong II, et al. (2015) Combining C6 and C5 sugar metabolism for enhancing microbial bioconversion.Curr opin chem biol 29: 49-57. |
[39] | Hu C, Wu S, Wang Q, et al. (2011) Simultaneous utilization of glucose and xylose for lipid production by Trichosporon cutaneum.Biotechnol biofuels 4: 25. doi: 10.1186/1754-6834-4-25 |
[40] | Sitepu I, Selby T, Lin T, et al. (2014) Carbon source utilization and inhibitor tolerance of 45 oleaginous yeast species. Journal of industrial microbiology & biotechnology 41: 1061-1070. |
[41] | Xue YP, Jin M, Orjuela A, et al. (2015) Microbial lipid production from AFEX™ pretreated corn stover. RSC advances 5: 28725-28734. doi: 10.1039/C5RA01134E |
[42] | Leiva-Candia D, Pinzi S, Redel-Macías M, et al. (2014) The potential for agro-industrial waste utilization using oleaginous yeast for the production of biodiesel. Fuel 123: 33-42. doi: 10.1016/j.fuel.2014.01.054 |
[43] | Viljoen B, Kock J, Lategan P (1986) Long-chain fatty acid composition of selected genera of yeasts belonging to the Endomycetales.Antonie van leeuwenhoek 52: 45-51. doi: 10.1007/BF00428647 |
[44] | Sitepu IR, Sestric R, Ignatia L, et al. (2013) Manipulation of culture conditions alters lipid content and fatty acid profiles of a wide variety of known and new oleaginous yeast species.Bioresource technol 144: 360-369. doi: 10.1016/j.biortech.2013.06.047 |
[45] | Knothe G (2008) “Designer” Biodiesel: Optimizing Fatty Ester Composition to Improve Fuel Properties.Energ fuel 22: 1358-1364. doi: 10.1021/ef700639e |
[46] | Oguri E, Masaki K, Naganuma T, et al. (2012) Phylogenetic and biochemical characterization of the oil-producing yeast Lipomyces starkeyi. Antonie van leeuwenhoek 101: 359-368. doi: 10.1007/s10482-011-9641-7 |
[47] | Angerbauer C, Siebenhofer M, Mittelbach M, et al. (2008) Conversion of sewage sludge into lipids by Lipomyces starkeyi for biodiesel production.Bioresource technol 99: 3051-3056. |
[48] | Tchakouteu S, Kalantzi O, Gardeli C, et al. (2015) Lipid production by yeasts growing on biodiesel‐derived crude glycerol: strain selection and impact of substrate concentration on the fermentation efficiency. J appl microbiol 118: 911-927. doi: 10.1111/jam.12736 |
[49] | Leiva-Candia DE, Tsakona S, Kopsahelis N, et al. (2015) Biorefining of by-product streams from sunflower-based biodiesel production plants for integrated synthesis of microbial oil and value-added co-products. Bioresource technol 190: 57-65. doi: 10.1016/j.biortech.2015.03.114 |
[50] | Gong Z, Wang Q, Shen H, et al. (2012) Co-fermentation of cellobiose and xylose by Lipomyces starkeyi for lipid production. Bioresource technol 117: 20-24. doi: 10.1016/j.biortech.2012.04.063 |