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and internodes of Arundo donax reed. Journal of Agriculture and Food
Chemistry 48, 817-824.
Sindhu, A., Langewisch, T., Olek, A., Multani, D. S., McCann, M. C., Vermerris, W.,
Carpita, N. C. and Johal, G. (2007). Maize Brittle stalk2 encodes a COBRA-
like protein expressed in early organ development but required for tissue
flexibility at maturity. Plant Physiology 145, 1444-1459.
Stuart, J. M., Segal, E., Koller, D. and Kim, S. K. (2003). A gene-coexpression network
for global discovery of conserved genetic modules. Science 302, 249-255.
Takabe, T. and Akazawa, T. (1981). Mechanism of glycolate transport in spinach leaf
chloroplasts. Plant Physiology 68, 1093-1097.
Takabe, K., Fujita, M., Hardarda, H. and Saiki, H. (1986). Lignification process in
Cryptomeria (Cryptomeria japonica D. Don) tracheid: Electron microscopic
observation of lignin skeleton of differentiating xylem. Research Bulletin
of the College Experiment Forests 43, 783-788Hokkaido University.
Tamasloukht, B., Wong Quai Lam, M. S., Martinez, Y., Tozo, K., Barbier, O.,
Jourda, C., Jauneau, A., Borderies, G., Balzergue, S., Renou, J. P.,
Huguet, S., Martinant, J. P. et al. (2011). Characterization of a cinna-
moyl-CoA reductase 1 (CCR1) mutant in maize: Effects on lignification,
fibre development, and global gene expression. Journal of Experimental
Botany 62, 3837-3848.
Terashima, N., Fukushima, K., He, L.-F. and Takabe, K. (1993). Comprehensive
model of the lignified plant cell wall. In Forage Cell Wall Structure and
Digestibility, (H. G. Jung, D. R. Buxton, R. D. Hatfield and J. Ralph, eds.),
pp. 247-270. ASA-CSSA-SSSA, Madison, WI.
The Brachypodium Initiative (2010). Genome sequencing and analysis of the model
grass Brachypodium distachyon. Nature 463, 763-768.
Thorstensson, E. M. G., Buxton, D. R. and Cherney, J. H. (1992). Apparent inhibi-
tion to digestion by lignin in normal and brown midrib stems. Journal of the
Science of Food and Agriculture 59, 183-188.
Truntzler, M., Barri`re, Y., Sawkins, M. C., Lespinasse, D., Betran, J., Charcosset, A.
and Moreau, L. (2010). Meta-analysis of QTLs involved in silage quality of
maize and comparison with the position of candidate genes. Theoretical and
Applied Genetics 121, 1465-1482.
Tu, Y., Rochfort, S., Liu, Z., Ran, Y., Griffith, M., Badenhorst, P., Louie, G. V.,
Bowman, M. E., Smith, K. F., Noel, J. P., Mouradov, A. and
Spangenberg, G. (2010). Functional analyses of caffeic acid O-Methyltrans-
ferase and Cinnamoyl-CoA-reductase genes
from perennial
ryegrass
(Lolium perenne). The Plant Cell 22, 3357-3373.
Usadel, B., Obayashi, T., Mutwil, M., Giorgi, F. M., Bassel, G. W., Tanimoto, M.,
Chow, A., Steinhauser, D., Persson, S. and Provart, N. J. (2009). Co-
expression tools for plant biology: Opportunities for hypothesis generation
and caveats. Plant, Cell & Environment 32, 1633-1651.
Vanholme, R., Morreel, K., Ralph, J. and Boerjan, W. (2008). Lignin engineering.
Current Opinion in Plant Biology 11, 278-285.
Vermerris, W. and Boon, J. J. (2001). Tissue-specific patterns of lignification are
disrupted in the brown midrib2 mutant of maize (Zea mays L.). Journal of
Agricultural and Food Chemistry 49, 721-728.
Vermerris, W., Sherman, D. M. and McIntyre, L. M. (2010). Phenotypic plasticity in
cell walls of maize brown midrib mutants is limited by lignin composition.
Journal of Experimental Botany 61, 2479-2490.
Vignols, F., Rigau, J., Torres, M. A., Capellades, M. and Puigdomenech, P. (1995).
The brown midrib3 (bm3) mutation in maize occurs in the gene encoding
caffeic acid O-methyltransferase. The Plant Cell 7, 407-416.
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