Efficiency of lignin biosynthesis: a quantitative analysis

被引:129
作者
Amthor, JS [1 ]
机构
[1] US DOE, Washington, DC 20585 USA
关键词
biosynthesis; coniferyl alcohol; p-coumaryl alcohol; lignin; metabolic efficiency; respiration; sinapyl alcohol;
D O I
10.1093/aob/mcg073
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Lignin is derived mainly from three alcohol monomers: p-coumaryl alcohol, coniferyl alcohol and sinapyl alcohol. Biochemical reactions probably responsible for synthesizing these three monomers from sucrose, and then polymerizing the monomers into lignin, were analysed to estimate the amount of sucrose required to produce a unit of lignin. Included in the calculations were amounts of respiration required to provide NADPH (from NADP(+)) and ATP (from ADP) for lignin biosynthesis. Two pathways in the middle stage of monomer biosynthesis were considered: one via tyrosine (found in monocots) and the other via phenylalanine (found in all plants). If lignin biosynthesis proceeds with high efficiency via tyrosine, 76.9, 70.4 and 64.3 % of the carbon in sucrose can be retained in the fraction of lignin derived from p-coumaryl alcohol, coniferyl alcohol and sinapyl alcohol, respectively. The corresponding carbon retention values for lignin biosynthesis via phenylalanine are less, at 73.2, 65.7 and 60.7 %, respectively. Energy (i.e. heat of combustion) retention during lignin biosynthesis via tyrosine could be as high as 81.6, 74.5 and 67.8 % for lignin derived from p-coumaryl alcohol, coniferyl alcohol and sinapyl alcohol, respectively, with the corresponding potential energy retention values for lignin biosynthesis via phenylalanine being less, at 77.7, 69.5 and 63.9 %, respectively. Whether maximum efficiency occurs in situ is unclear, but these values are targets that can be considered in: (1) plant breeding programmes aimed at maximizing carbon or energy retention from photosynthate; (2) analyses of (minimum) metabolic costs of responding to environmental change or pest attack involving increased lignin biosynthesis; (3) understanding costs of lignification in older tissues; and (4) interpreting carbon balance measurements of organs and plants with large lignin concentrations. (C) 2003 Annals of Botany Company.
引用
收藏
页码:673 / 695
页数:23
相关论文
共 92 条
[31]   Isolation of a cDNA from tomato coding for an unregulated, cytosolic chorismate mutase [J].
Eberhard, J ;
Bischoff, M ;
Raesecke, HR ;
Amrhein, N ;
Schmid, J .
PLANT MOLECULAR BIOLOGY, 1996, 31 (04) :917-922
[33]  
Elstner E.F., 1987, The Biochemistry of Plants: A Comprehensive Treatise, V8, P253
[34]   Leaf methanol - The simplest natural product from plants [J].
Fall, R ;
Benson, AA .
TRENDS IN PLANT SCIENCE, 1996, 1 (09) :296-301
[35]   Impacts of elevated atmospheric CO2 on litter quality, litter decomposability and nitrogen turnover rate of two oak species in a Mediterranean forest ecosystem [J].
Gahrooee, FR .
GLOBAL CHANGE BIOLOGY, 1998, 4 (06) :667-677
[36]   Molecular biology of plant laccases in relation to lignin formation [J].
Gavnholt, B ;
Larsen, K .
PHYSIOLOGIA PLANTARUM, 2002, 116 (03) :273-280
[37]  
Goodwin T.I., 1983, INTRO PLANT BIOCH
[38]  
Graham LE., 1993, ORIGIN LAND PLANTS
[39]   Downregulation of caffeic acid 3-O-methyltransferase and caffeoyl CoA 3-O-methyltransferase in transgenic alfalfa:: Impacts on lignin structure and implications for the biosynthesis of G and S lignin [J].
Guo, DJ ;
Chen, F ;
Inoue, K ;
Blount, JW ;
Dixon, RA .
PLANT CELL, 2001, 13 (01) :73-88
[40]   Energy coupling and ATP synthase [J].
Haraux, F ;
de Kouchkovsky, Y .
PHOTOSYNTHESIS RESEARCH, 1998, 57 (03) :231-251