Assessment of technological options and economical feasibility for cyanophycin biopolymer and high-value amino acid production

Springer Science and Business Media LLC - Tập 77 - Trang 257-267 - 2007
Hans Mooibroek1,2, Nico Oosterhuis3, Marco Giuseppin4, Marcel Toonen5, Henk Franssen6, Elinor Scott1, Johan Sanders1, Alexander Steinbüchel7
1Wageningen University and Research Centre, Chair of Valorization of Plant Production Chains, Wageningen, The Netherlands
2Department of Biobased Products, Agrotechnology and Food Sciences Group, Wageningen University and Research Centre, Wageningen, The Netherlands
3Easthouse Business Solutions B.V., Rolde, The Netherlands
4AVEBE B.A., Veendam, The Netherlands
5Wageningen University and Research Centre, Plant Breeding, Wageningen, The Netherlands
6Wageningen University and Research Centre, Molecular Biology, Wageningen, The Netherlands
7Institute for Molecular Microbiology and Biotechnology, Westfälische Wilhelms-Universität Münster, Münster, Germany

Tóm tắt

Major transitions can be expected within the next few decades aiming at the reduction of pollution and global warming and at energy saving measures. For these purposes, new sustainable biorefinery concepts will be needed that will replace the traditional mineral oil-based synthesis of specialty and bulk chemicals. An important group of these chemicals are those that comprise N-functionalities. Many plant components contained in biomass rest or waste stream fractions contain these N-functionalities in proteins and free amino acids that can be used as starting materials for the synthesis of biopolymers and chemicals. This paper describes the economic and technological feasibility for cyanophycin production by fermentation of the potato waste stream Protamylasse™ or directly in plants and its subsequent conversion to a number of N-containing bulk chemicals.

Tài liệu tham khảo

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