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Plant biotechnology for lignocellulosic biofuel production

Journal

PLANT BIOTECHNOLOGY JOURNAL
Volume 12, Issue 9, Pages 1174-1192

Publisher

WILEY
DOI: 10.1111/pbi.12273

Keywords

biofuel; biotechnology; cell wall; lignocellulose

Funding

  1. National Natural Science Foundation of China [31370593]
  2. Southeastern Sun Grant Initiative Competitive Grants Programs
  3. National Science Foundation of USA, Plant Genome Research Program [DBI-0922391]

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Lignocelluloses from plant cell walls are attractive resources for sustainable biofuel production. However, conversion of lignocellulose to biofuel is more expensive than other current technologies, due to the costs of chemical pretreatment and enzyme hydrolysis for cell wall deconstruction. Recalcitrance of cell walls to deconstruction has been reduced in many plant species by modifying plant cell walls through biotechnology. These results have been achieved by reducing lignin content and altering its composition and structure. Reduction of recalcitrance has also been achieved by manipulating hemicellulose biosynthesis and by overexpression of bacterial enzymes in plants to disrupt linkages in the lignin-carbohydrate complexes. These modified plants often have improved saccharification yield and higher ethanol production. Cell wall-degrading (CWD) enzymes from bacteria and fungi have been expressed at high levels in plants to increase the efficiency of saccharification compared with exogenous addition of cellulolytic enzymes. In planta expression of heat-stable CWD enzymes from bacterial thermophiles has made autohydrolysis possible. Transgenic plants can be engineered to reduce recalcitrance without any yield penalty, indicating that successful cell wall modification can be achieved without impacting cell wall integrity or plant development. A more complete understanding of cell wall formation and structure should greatly improve lignocellulosic feedstocks and reduce the cost of biofuel production.

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