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Updated: May 12, 2026

Lignin Down-regulation of Zea mays via dsRNAi and Klason Lignin Analysis
Published on: July 23, 2014
Modifying lignin to improve bioenergy feedstocks: strengthening the barrier against pathogens?
Scott E Sattler1, Deanna L Funnell-Harris
1Grain Forage and Bioenergy Research Unit, Agricultural Research Service - United States Department of Agriculture Lincoln, NE, USA ; Department of Agronomy and Horticulture, University of Nebraska at Lincoln Lincoln, NE, USA.
Abstract:
Lignin is a ubiquitous polymer present in cell walls of all vascular plants, where it rigidifies and strengthens the cell wall structure through covalent cross-linkages to cell wall polysaccharides. The presence of lignin makes the cell wall recalcitrant to conversion into fermentable sugars for bioenergy uses. Therefore, reducing lignin content and modifying its linkages have become major targets for bioenergy feedstock development through either biotechnology or traditional plant breeding. In addition, lignin synthesis has long been implicated as an important plant defense mechanism against pathogens, because lignin synthesis is often induced at the site of pathogen attack. This article explores the impact of lignin modifications on the susceptibility of a range of plant species to their associated pathogens, and the implications for development of feedstocks for the second-generation biofuels industry. Surprisingly, there are some instances where plants modified in lignin synthesis may display increased resistance to associated pathogens, which is explored in this article.
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