Significant influence of lignin on axial elastic modulus of poplar wood at low microfibril angles under wet conditions

Author:

Özparpucu Merve12,Gierlinger Notburga3ORCID,Cesarino Igor4,Burgert Ingo15,Boerjan Wout67,Rüggeberg Markus15ORCID

Affiliation:

1. Institute for Building Materials (IfB), ETH Zurich, Zurich, Switzerland

2. School of Life Sciences Weihenstephan, Wood Research Munich, Technical University of Munich (TUM), Munich, Germany

3. Institute for Biophysics, University of Natural Resources and Life Sciences Vienna (BOKU), Wien, Austria

4. Department of Botany, Institute of Biosciences, University of São Paulo, São Paulo – SP, Brazil

5. Laboratory of Cellulose and Wood Materials, EMPA, Dübendorf, Switzerland

6. Ghent University, Department of Plant Biotechnology and Bioinformatics, Ghent, Belgium

7. VIB Center for Plant Systems Biology, Ghent, Belgium

Abstract

Abstract Wood is extensively used as a construction material. Despite increasing knowledge of its mechanical properties, the contribution of the cell-wall matrix polymers to wood mechanics is still not well understood. Previous studies have shown that axial stiffness correlates with lignin content only for cellulose microfibril angles larger than around 20°, while no influence is found for smaller angles. Here, by analysing the wood of poplar with reduced lignin content due to down-regulation of CAFFEOYL SHIKIMATE ESTERASE, we show that lignin content also influences axial stiffness at smaller angles. Micro-tensile tests of the xylem revealed that axial stiffness was strongly reduced in the low-lignin transgenic lines. Strikingly, microfibril angles were around 15° for both wild-type and transgenic poplars, suggesting that cellulose orientation is not responsible for the observed changes in mechanical behavior. Multiple linear regression analysis showed that the decrease in stiffness was almost completely related to the variation in both density and lignin content. We suggest that the influence of lignin content on axial stiffness may gradually increase as a function of the microfibril angle. Our results may help in building up comprehensive models of the cell wall that can unravel the individual roles of the matrix polymers.

Funder

Agency for Innovation by Science and Technology

European Framework Project MultiBioPro

Austrian Science Fund

European Research Council

Foundation for Research of the State of São Paulo

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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