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90. Hou, C., Zhu, H., Li, Y.J. and Li, Y.F. (2012) Immobilized proline and its derivatives
employed in the catalysis of asymmetric organic synthesis. Progress in Chemistry , 24 (9),
1729-1741.
91. Opalka, S.M., Longstreet, A.R. and McQuade, D.T. (2011) Continuous proline catalysis
via leaching of solid proline. Beilstein Journal of Organic Chemistry , 7 , 1671-1679.
92. Konst, P.M., Turras, P.M.C.C., Franssen, M.C.R. et al. (2010) Stabilized and immobilized
bacillus subtilis arginase for the biobased production of nitrogen-containing chemicals.
Advanced Synthesis and Catalysis , 352 (9), 1493-1502.
93. Konst, P.M., Scott, E.L., Franssen, M.C.R. and Sanders, J.P.M. (2011) Acid and base
catalyzed hydrolysis of cyanophycin for the biobased production of nitrogen containing
chemicals. Journal of Biobased Materials and Bioenergy , 5 (1), 102-108.
94. Sanders, J., Scott, E., Weusthuis, R. and Mooibroek, H. (2007) Bio-refinery as the
bio-inspired process to bulk chemicals. Macromolecular Bioscience , 7 (2), 105-117.
95. Zhang, Y.X., Kumar, A., Vadlani, P.V. and Narayanan, S. (2013) Production of nitrogen-
based platform chemical: cyanophycin biosynthesis using recombinant Escherichia coli
and renewable media substitutes. Journal of Chemical Technology and Biotechnology , 88
(7), 1321-1327.
96. Spekreijse, J., Le Notre, J., van Haveren, J. et al. (2012) Simultaneous production of
biobased styrene and acrylates using ethenolysis. Green Chemistry , 14 (10), 2747-2751.
97. van Haveren, J., Scott, E.L. and Sanders, J. (2008) Bulk chemicals from biomass. Biofuels
Bioproducts and Biorefining-Biofpr , 2 (1), 41-57.
98. Lammens, T.M., Franssen, M.C.R., Scott, E.L. and Sanders, J.P.M. (2012) Availability of
protein-derived amino acids as feedstock for the production of bio-based chemicals.
Biomass and Bioenergy , 44 , 168-181.
99. Becker, E.W. (2007) Micro-algae as a source of protein. Biotechnology Advances , 25 (2),
207-210.
100. Casado, F.J., Montano, A., Spitzner, D. and Carle, R. (2013) Investigations into acrylamide
precursors in sterilized table olives: evidence of a peptic fraction being responsible for
acrylamide formation. Food Chemistry , 141 (2), 1158-1165.
101. Buhlert, J., Carle, R., Majer, Z. and Spitzner, D. (2006) Thermal degradation of peptides
and formation of acrylamide. Letters in Organic Chemistry , 3 (5), 356-357.
102. Buhlert, J., Carle, R., Majer, Z. and Spitzner, D. (2007) Thermal degradation of peptides
and formation of acrylamide, part 2. Letters in Organic Chemistry , 4 (5), 329-331.
103. Arribas-Lorenzo, G. and Morales Navas, F.J. (2012) Recent insights in acrylamide as
carcinogen in foodstuffs. Advances in Molecular Toxicology , 6 , 163-193.
104. C. Scrimgeour, Chemistry of fatty acids . In: Bailey's Industrial Oil and Fat Products (ed.
F. Shahidi), John Wiley & Sons, Chichester (2005), pp. 1-43.
105. Khot, S.N., Lascala, J.J., Can, E. et al. (2001) Development and application of triglyceride-
based polymers and composites. Journal of Applied Polymer Science , 82 (3), 703-723.
106. Guner, F.S., Yagci, Y. and Erciyes, A.T. (2006) Polymers from triglyceride oils. Progress in
Polymer Science , 31 (7), 633-670.
107. Tan, H.W., Aziz, A.R.A. and Aroua, M.K. (2013) Glycerol production and its applications
as a raw material: a review. Renewable and Sustainable Energy Reviews , 27 , 118-127.
108. Farris, R.D. (1979) Methyl-esters in the fatty-acid industry. Journal of the American Oil
Chemists Society , 56 , A770-A773.
109. Schwab, W., Fuchs, C. and Huang, F.C. (2013) Transformation of terpenes into fine
chemicals. European Journal of Lipid Science and Technology , 115 (1), 3-8.
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