Sustainable Chemical Processes | |
Biomolecular assembly strategies to develop potential artificial cellulosomes | |
Geisa AL Gonçalves1  Yutaro Mori1  Noriho Kamiya2  | |
[1] Department of Applied Chemistry, Graduate School of Engineering, Kyushu University, 744, Motooka, Nishi-Ku, Fukuoka, Japan | |
[2] Center for Future Chemistry, Kyushu University, 744, Motooka, Nishi-Ku, Fukuoka, Japan | |
关键词: Multi-enzymatic system; Lignocellulose; Cellulosome; Biocatalyst; Artificial cellulosome; | |
Others : 1082508 DOI : 10.1186/s40508-014-0019-9 |
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received in 2014-04-04, accepted in 2014-09-23, 发布年份 2014 | |
【 摘 要 】
Cellulosic biomass is a sustainable source for fuels and value-added chemicals, and is available in large quantities. One of the key challenges in biomass processing is associated with the establishment of an efficient enzymatic degradation of plant cell wall. A multi-enzymatic complex, cellulosome, was identified as a highly efficient biocatalyst for the hydrolysis of cellulosic biomass in nature. Significant progress has been achieved on cellulosome production and application since its discovery, but there is still a gap for industrial use. Artificial systems are being developed by employing various pairs of proteins and scaffolds with the objective of reconstructing this natural multi-enzymatic complex for sustainable biotechnology application.
【 授权许可】
2014 Gonçalves et al.; licensee Springer.
【 预 览 】
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20141224170801500.pdf | 615KB | download | |
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Figure 1. | 99KB | Image | download |
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