Page 74 - Refining Biomass Residues for Sustainable Energy and Bioproducts
P. 74
48 Refining Biomass Residues for Sustainable Energy and Bioproducts
Ro ¨ttig, A., Wenning, L., Bro ¨ker, D., Steinbu ¨chel, A., 2010. Fatty acid alkyl esters: perspec-
tives for production of alternative biofuels. Appl. Microbiol. Biotechnol. 85,
1713 1733.
Ro ¨ttig, A., Zurek, P.J., Steinbu ¨chel, A., 2015. Assessment of bacterial acyltransferases for an
efficient lipid production in metabolically engineered strains of E. coli. Metab. Eng 32,
195 206.
Ro ¨ttig, A., Hauschild, P., Madkour, M.H., Al-Ansari, A.M., Almakishah, N.H., Steinbu ¨chel,
A., 2016. Analysis and optimization of triacylglycerol synthesis in novel oleaginous
Rhodococcus and Streptomyces strains isolated from desert soil. J. Biotechnol. 225,
48 56.
Rude, M.A., Schirmer, A., 2009. New microbial fuels: a biotech perspective. Curr. Opin.
Microbiol. 12, 274 281.
Rule, D.C., 1997. Direct transesterification of total fatty acids of adipose tissue, and of freeze
dried muscle and liver with boron-trifluoride in methanol. Meat Sci. 46, 23 32.
Santala, S., Efimova, E., Kivinen, V., Larjo, A., Aho, T., Karp, M., et al., 2011. Improved
triacylglycerol production in Acinetobacter baylyi ADP1 by metabolic engineering.
Microb. Cell Fact. 10, 36.
Schenk, P.M., Thomas-Hall, S.R., Stephens, E., Marx, U.C, Mussgnug, J.H., Posten, C.,
et al., 2008. Second generation biofuels: high-efficiency microalgae for biodiesel pro-
duction. Bioenergy Res. 1, 20 43.
Schirmer, A., Rude, M.A., Li, X., Popova, E., del Cardayre, S.B., 2010. Microbial biosynthe-
sis of alkanes. Science 329, 559 562.
Schuchardt, U., Ricardo, S.R., Vargas, R.M., 1998. Transesterification of vegetable oils: a
review. J. Brazil Chem. Soc. 9, 199 210.
Scott, C.C., Finnerty, W.R., 1976. Characterization of intracytoplasmic hydrocarbon inclu-
sions from the hydrocarbon-oxidizing Acinetobacter species HO1-N. J. Bacteriol. 127,
481 489.
Shah, S., Sharma, S., Gupta, M.N., 2004. Biodiesel preparation by lipase-catalyzed transester-
ification of jatropha oil. Energy Fuels 18, 154 159.
Sharma, Y.C., Singh, B., 2008. Development of biodiesel from karanja, a tree found in rural
India. Fuel 67, 1740 1742.
Shieh, C.-J., Liao, H.-F., Lee, C.-C., 2003. Optimization of lipase-catalyzed biodiesel by
response surface methodology. Bioresour. Technol. 88, 103 106.
Singer, M.E., Tyler, S.M., Finnerty, W.R., 1985. Growth of Acinetobacter sp. strain HO1-N
on n-hexadecanol: physiological and ultrastructural characteristics. J. Bacteriol. 162,
162 169.
Steen, E.J., Kang, Y., Bokinsky, G., Hu, Z., Schirmer, A., McClure, A., et al., 2010.
Microbial production of fatty-acid-derived fuels and chemicals from plant biomass.
Nature 463, 559 562.
Stephanopoulos, G., 2007. Challenges in engineering microbes for biofuels production.
Science 315, 801 804.
Sun, Z., Ramsay, J.A., Guay, M., Ramsay, B.A., 2007. Fermentation process development
for the production of medium-chain-length poly-3-hydroxyalkanoates. Appl. Microbiol.
Biotechnol. 75, 475 485.
Tao, H., Guo, D., Zhang, Y., Deng, Z., Liu, T., 2015. Metabolic engineering of microbes for
branched-chain biodiesel production with low-temperature property. Biotechnol.
Biofuels 8, 92 103.