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果糖基生物质生物炼制中的基础科学问题

The Basic Scientific Problem in Fructose-based Biomass Biorefinery
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摘要 果聚糖是继蔗糖、淀粉之后,植物中第三大储藏性碳水化合物,是果糖的天然来源。利用富含果聚糖的生物质资源,开展基于果糖平台的生物炼制,是一个充满前景并具有挑战性的课题。深入研究基于果糖基生物质生物炼制中的基础科学问题,将有助于推动果糖基生物质生物炼制产业的发展,从而对我国的能源安全、粮食安全、生态安全以及和谐社会的建立产生积极的影响。 As a third storage carbohydrate in plants, Fmctans are the natural source of fructose. Establishing and developing fructose-based biomass biorefinery industry is a challenging subject with bright future. An in-depth study on fructose-based biorefinery is needed. It will prompt the development of fructose-based biomass biorefinery. Furthermore, it will have a positive impact on nation' s energy safety, food safety, ecology safety and harmonious society.
出处 《中国基础科学》 2009年第5期75-77,共3页 China Basic Science
基金 中科院知识创新重要方向项目(KSCX2-YW-G-012)
关键词 果糖 生物质 生物炼制 fructose biomass biorefinery
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参考文献5

  • 1黄英明,高振,黄和,韦萍.生物炼制——实现可持续发展的新型工业模式[J].生物加工过程,2006,4(3):1-8. 被引量:13
  • 2Seda Karasu Yal?in,Zekiye Ye?im ?zba?. Determination of Growth and Glycerol Production Kinetics of a Wine Yeast Strain Saccharomyces cerevisiae Kalecik 1 in Different Substrate Media[J] 2005,World Journal of Microbiology and Biotechnology(6-7):1303~1310
  • 3Siqing Liu,Badal Saha,Michael Cotta. Cloning, expression, purification, and analysis of mannitol dehydrogenase gene mtlK from Lactobacillus brevis[J] 2005,Applied Biochemistry and Biotechnology(1-3):391~401
  • 4Katarzyna Szambelan,Jacek Nowak,Zbigniew Czarnecki. Use of Zymomonas mobilis and Saccharomyces cerevisiae mixed with Kluyveromyces fragilis for improved ethanol production from Jerusalem artichoke tubers[J] 2004,Biotechnology Letters(10):845~848
  • 5R. Marchal,D. Blanchet,J. P. Vandecasteele. Industrial optimization of acetone-butanol fermentation: a study of the utilization of Jerusalem artichokes[J] 1985,Applied Microbiology and Biotechnology(2):92~98

二级参考文献30

  • 1张强,周永春,张俊祥.工业生物技术为我国提供历史性战略机遇[J].国际技术经济研究,2006,9(2):1-5. 被引量:2
  • 2[1]Zeng A P,Biebl H.Bulk chemicals from biotechnology:the case of 1,3-propanediol production and the new trends[ J ].Adv Biochem Eng Biotechnol,2002,74:239-259.
  • 3[2]Birgit K,Patrick R G,Michael K.Biorefineries-industrial processes and products[ M ].Weinheim Germany:WILEY-VCH GmbH & Co KGaA,2006.
  • 4[3]Werpy P T,Petersen G.Top value added chemicals from biomass[ EB/OL].[ 2004-08-06].http://www1.eere.energy.gov/biomass/pdfs/35523.pdf.
  • 5[4]Ragauskas A J.The path forward for biofuels and biomaterials[J].Science,2006,311:484-489.
  • 6[5]Bungay R R.Biomass refining[J].Science,1982,218:643-646.
  • 7[6]Birgit K,Michael K.Principles of biorefineries[ J ].Appl Microbiol Biotechnol,2004,64:137-145.
  • 8[7]Biomaas R&D Technical Advisory Committee.Vision for bioenergy and biobased products in the United States[ EB/OL].[ 2002-10-01 ].http://www.climatevision.gov/sectors/electricpower/pdfs/bioenergy-vision.pdf.
  • 9[8]California Biomass Collaborative.Biomass in California:Challenges,Opportunities,and Potentials for Sustainable Management and Development[ EB/OL ].[ 2005-06 ].http://www.energy.ca.gov/2005-publications/CEC-500-2005-160/CEC-500-2005-160.PDF.
  • 10[9]European Parliament and Council.The promotion of the use of biofuels or other renewable fuels for transport (Directive 2003/30/EC)[J].Official Journal of the European Union,2003,17(5):42-46.

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