How Do Lignin Composition, Structure, and Cross‐Linking Affect Degradability? A Review of Cell Wall Model Studies
Top Cited Papers
- 1 May 2005
- journal article
- review article
- Published by Wiley in Crop Science
- Vol. 45 (3) , 820-831
- https://doi.org/10.2135/cropsci2004.0191
Abstract
Because of the complexity of plant cell wall biosynthesis, the mechanisms by which lignin restrict fiber degradation are poorly understood. Many aspects of grass cell wall lignification and degradation are successfully modeled by dehydrogenation polymer‐cell wall (DHP‐CW) complexes formed with primary walls of corn Zea mays L. This system was used to assess how variations in lignin composition, structure, and cross‐linking influence the hydrolysis of cell walls by fungal enzymes. Altering the normal guaiacyl, syringyl, and p‐hydroxyphenyl makeup of lignin did not influence cell wall degradability; each unit of lignin depressed cell wall degradability by two units. Plants with perturbed lignin biosynthesis often incorporate unusual precursors into lignin and one of these, coniferaldehyde, increased lignin hydrophobicity and further depressed degradability by up to 30%. In other studies, lignin formed by gradual “bulk” or rapid “end‐wise” polymerization of monolignols had markedly different structures but similar effects on degradability. Reductions in cell wall cross‐linking, via oxidative coupling of feruloylated xylans to lignin or nucleophilic addition of cell wall sugars to lignin quinone‐methide intermediates, increased the initial hydrolysis of cell walls by up to 46% and the extent of hydrolysis by up to 28%. Overall, these studies suggest that reductions in lignin concentration, hydrophobicity, and cross‐linking will improve the enzymatic hydrolysis and utilization of structural polysaccharides for nutritional and industrial purposes. In ongoing work, we are developing a DHP‐CW system for dicots and are investigating how cross‐linking and various acylated and unusual monolignols influence the formation of lignin and the degradation of cell walls by rumen microflora.Keywords
Funding Information
- Agricultural Research Service
This publication has 114 references indexed in Scilit:
- Chitosan Treatment of Wheat Seeds Induces Resistance toFusarium graminearumand Improves Seed QualityJournal of Agricultural and Food Chemistry, 1999
- Experimenting with Virtual LigninsPublished by American Chemical Society (ACS) ,1998
- Structural and chemical changes of cell wall types during stem development: consequences for fibre degradation by rumen microfloraAustralian Journal of Agricultural Research, 1997
- A Possible Mechanism for the Oxidation of Sinapyl Alcohol by Peroxidase-Dependent Reactions in the Apoplast: Enhancement of the Oxidation by Hydroxycinnamic Acids and Components of the ApoplastPlant and Cell Physiology, 1996
- Variations in anatomy and ultraviolet microspectrometry between normal and brown midrib mutant maizes possessing different rumen degradabilitiesJournal of the Science of Food and Agriculture, 1993
- Relationship of lignin and esterified phenolics to fermentation of smooth bromegrass fibreAnimal Feed Science and Technology, 1991
- Microbial degradation of normal maize and bm3 maize in the rumen observed by scanning electron microscopyJournal of the Science of Food and Agriculture, 1991
- Formation and Structure of Lignin in Monocotyledons. III. Heterogeneity of Sugarcane (Saccharum officinarumL.) Lignin with Respect to the Composition of Structural Units in Different Morphological RegionsJournal of Wood Chemistry and Technology, 1990
- Soluble phenolic monomers in forage cropsJournal of Agricultural and Food Chemistry, 1989
- Degradation of isolated grass mesophyll, epidermis and fibre cell walls in the rumen and by cellulolytic rumen bacteria in axenic cultureJournal of Applied Bacteriology, 1986