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Biofuel

Biofuel

Articles:

12  Improving biofuel production in phototrophic microorganisms with systems biology. (Review).
http://www.future-science.com/doi/abs/10.4155/bfs.11.7

11  Enabling cellulosic diesel with microchannel technology. (Review).
http://www.future-science.com/doi/abs/10.4155/bfs.11.17

10  Microbial paths to renewable hydrogen production.(Review).
http://www.future-science.com/doi/abs/10.4155/bfs.11.6

9  Controlling accumulation of fermentation inhibitors in biorefinery recycle water using microbial fuel cells.
http://www.biotechnologyforbiofuels.com/content/2/1/7

8  Cellulose crystallinity index: measurement techniques and their impact on interpreting cellulase performance.
http://www.biotechnologyforbiofuels.com/content/3/1/10

7  Improved xylose and arabinose utilization by an industrial recombinant Saccharomyces cerevisiae strain using evolutionary engineering.
http://www.biotechnologyforbiofuels.com/content/3/1/13

6  Direct ethanol production from cellulosic materials using a diploid strain of Saccharomyces cerevisiae with optimized cellulase expression.
http://www.biotechnologyforbiofuels.com/content/4/1/8

5  Conversion of proteins into biofuels by engineering nitrogen flux. Huo Y-X et al. (2011). Nature Biotechnology 29: 346–351
http://www.nature.com/nbt/journal/v29/n4/full/nbt.1789.html#/affil-auth

4  Genetic manipulation of lignin reduces recalcitrance and improves ethanol production from switchgrass. Fu C et al. (2011). PNAS 108:3803-3808.
http://www.pnas.org/content/108/9/3803.abstract

3  Engineered Saccharomyces cerevisiae capable of simultaneous cellobiose and xylose fermentation. Ha S-J, et al, (2011). PNAS 108: 504-509.
http://www.pnas.org/content/108/2/504.abstract

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