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  6. Enhanced characteristics of genetically modified switchgrass (Panicum virgatum L.) for high biofuel production
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Enhanced characteristics of genetically modified switchgrass (Panicum virgatum L.) for high biofuel production

Date Issued
May 7, 2013
Author(s)
Shen, Hui
Poovaiah, Charleson R.  
Ziebell, Angela
Tschaplinski, Timothy J.
Pattathil, Sivakumar
Gjersing, Erica
Engle, Nancy L.
Katahira, Rui
Pu, Yunqiao
Sykes, Robert
Chen, Fang
Ragauskas, Arthur J.
Mielenz, Jonathan R.
Hahn, Michael G.
Davis, Mark
Stewart, Neal  
Dixon, Richard A.
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/50490
Abstract

Background


Lignocellulosic biomass is one of the most promising renewable and clean energy resources to reduce greenhouse gas emissions and dependence on fossil fuels. However, the resistance to accessibility of sugars embedded in plant cell walls (so-called recalcitrance) is a major barrier to economically viable cellulosic ethanol production. A recent report from the US National Academy of Sciences indicated that, “absent technological breakthroughs”, it was unlikely that the US would meet the congressionally mandated renewable fuel standard of 35 billion gallons of ethanol-equivalent biofuels plus 1 billion gallons of biodiesel by 2022. We here describe the properties of switchgrass (Panicum virgatum) biomass that has been genetically engineered to increase the cellulosic ethanol yield by more than 2-fold.

Results

We have increased the cellulosic ethanol yield from switchgrass by 2.6-fold through overexpression of the transcription factor PvMYB4. This strategy reduces carbon deposition into lignin and phenolic fermentation inhibitors while maintaining the availability of potentially fermentable soluble sugars and pectic polysaccharides. Detailed biomass characterization analyses revealed that the levels and nature of phenolic acids embedded in the cell-wall, the lignin content and polymer size, lignin internal linkage levels, linkages between lignin and xylans/pectins, and levels of wall-bound fucose are all altered in PvMYB4-OX lines. Genetically engineered PvMYB4-OX switchgrass therefore provides a novel system for further understanding cell wall recalcitrance.

Conclusions

Our results have demonstrated that overexpression of PvMYB4, a general transcriptional repressor of the phenylpropanoid/lignin biosynthesis pathway, can lead to very high yield ethanol production through dramatic reduction of recalcitrance. MYB4-OX switchgrass is an excellent model system for understanding recalcitrance, and provides new germplasm for developing switchgrass cultivars as biomass feedstocks for biofuel production.

Keywords:

Switchgrass; Bioenergy; Biofuel; Feedstock; Cellulosic ethanol; PvMYB4; Transcription factor; Cell wall; Recalcitrance; Lignin; Hemicellulose; Pectin

Subjects

Switchgrass

Bioenergy

Biofuel

Feedstock

Cellulosic ethanol

PvMYB4

Transcription factor

Cell wall

Recalcitrance

Lignin

Hemicellulose

Pectin

Disciplines
Plant Sciences
Recommended Citation
Biotechnology for Biofuels 2013, 6:71 doi:10.1186/1754-6834-6-71
Embargo Date
July 10, 2013
File(s)
Thumbnail Image
Name

1752_0509_7_45.pdf

Size

1.75 MB

Format

Adobe PDF

Checksum (MD5)

d8b580f7480b12f28834c35358f3d6ad


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