A Genomics Approach to Deciphering Lignin Biosynthesis in Switchgrass

Author:

Shen Hui12,Mazarei Mitra23,Hisano Hiroshi24,Escamilla-Trevino Luis12,Fu Chunxiang24,Pu Yunqiao25,Rudis Mary R.23,Tang Yuhong12,Xiao Xirong24,Jackson Lisa12,Li Guifen12,Hernandez Tim12,Chen Fang12,Ragauskas Arthur J.25,Stewart C. Neal23,Wang Zeng-Yu24,Dixon Richard A.12

Affiliation:

1. Plant Biology Division, Samuel Roberts Noble Foundation, Ardmore, Oklahoma 73401

2. BioEnergy Science Center, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831

3. Department of Plant Sciences, University of Tennessee, Knoxville, Tennessee 37996

4. Forage Improvement Division, Samuel Roberts Noble Foundation, Ardmore, Oklahoma 73401

5. School of Chemistry and Biochemistry, Georgia Institute of Technology, Atlanta, Georgia 30332

Abstract

Abstract It is necessary to overcome recalcitrance of the biomass to saccharification (sugar release) to make switchgrass (Panicum virgatum) economically viable as a feedstock for liquid biofuels. Lignin content correlates negatively with sugar release efficiency in switchgrass, but selecting the right gene candidates for engineering lignin biosynthesis in this tetraploid outcrossing species is not straightforward. To assist this endeavor, we have used an inducible switchgrass cell suspension system for studying lignin biosynthesis in response to exogenous brassinolide. By applying a combination of protein sequence phylogeny with whole-genome microarray analyses of induced cell cultures and developing stem internode sections, we have generated a list of candidate monolignol biosynthetic genes for switchgrass. Several genes that were strongly supported through our bioinformatics analysis as involved in lignin biosynthesis were confirmed by gene silencing studies, in which lignin levels were reduced as a result of targeting a single gene. However, candidate genes encoding enzymes involved in the early steps of the currently accepted monolignol biosynthesis pathway in dicots may have functionally redundant paralogues in switchgrass and therefore require further evaluation. This work provides a blueprint and resources for the systematic genome-wide study of the monolignol pathway in switchgrass, as well as other C4 monocot species.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

Reference102 articles.

1. A coumaroyl-ester-3-hydroxylase insertion mutant reveals the existence of nonredundant meta-hydroxylation pathways and essential roles for phenolic precursors in cell expansion and plant growth;Abdulrazzak;Plant Physiol.,2006

2. The role of auxin and gibberellin in controlling lignin formation in primary phloem fibers and in xylem of Coleus blumei stems;Aloni;Plant Physiol.,1990

3. Characterization of phenylpropanoid pathway genes within European maize (Zea mays L.) inbreds;Andersen;BMC Plant Biol.,2008

4. Genetics and genomics of lignification in grass cell walls based on maize as model species;Barrière;Genes Genomes Genomics,2007

5. Improvement of wood quality for the pulp and paper industry by genetic modification of lignin biosynthesis in poplar;Baucher;Dev. Plant. Genet. Breed.,2000

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