Author:
Trajano Heather L,Engle Nancy L,Foston Marcus,Ragauskas Arthur J,Tschaplinski Timothy J,Wyman Charles E
Abstract
Abstract
Background
Effective enzymatic hydrolysis of lignocellulosic biomass benefits from lignin removal, relocation, and/or modification during hydrothermal pretreatment. Phase transition, depolymerization/repolymerization, and solubility effects may all influence these lignin changes. To better understand how lignin is altered, Populus trichocarpa x P. deltoides wood samples and cellulolytic enzyme lignin (CEL) isolated from P. trichocarpa x P. deltoides were subjected to batch and flowthrough pretreatments. The residual solids and liquid hydrolysate were characterized by gel permeation chromatography, heteronuclear single quantum coherence NMR, compositional analysis, and gas chromatography–mass spectrometry.
Results
Changes in the structure of the solids recovered after the pretreatment of CEL and the production of aromatic monomers point strongly to depolymerization and condensation being primary mechanisms for lignin extraction and redeposition. The differences in lignin removal and phenolic compound production from native P. trichocarpa x P. deltoides and CEL suggested that lignin-carbohydrate interactions increased lignin extraction and the extractability of syringyl groups relative to guaiacyl groups.
Conclusions
These insights into delignification during hydrothermal pretreatment point to desirable pretreatment strategies and plant modifications. Because depolymerization followed by repolymerization appears to be the dominant mode of lignin modification, limiting the residence time of depolymerized lignin moieties in the bulk liquid phase should reduce lignin content in pretreated biomass. In addition, the increase in lignin removal in the presence of polysaccharides suggests that increasing lignin-carbohydrate cross-links in biomass would increase delignification during pretreatment.
Publisher
Springer Science and Business Media LLC
Subject
Management, Monitoring, Policy and Law,General Energy,Renewable Energy, Sustainability and the Environment,Applied Microbiology and Biotechnology,Biotechnology
Reference48 articles.
1. Mosier N, Wyman C, Dale B, Elander R, Lee YY, Holtzapple M, Ladisch M: Features of promising technologies for pretreatment of lignocellulosic biomass. Bioresour Technol. 2005, 96: 673-685. 10.1016/j.biortech.2004.06.025.
2. Raven PH, Evert RF, Eichhorn SE: Biology of plants. 2005, New York: W.H. Freeman and Company Publishers, 7
3. Fengel D, Wegener G: Wood: chemistry, ultrastructure, reactions. 1983, Berlin: Walter de Gruyter & Co
4. Kumar R, Wyman CE: Key features of pretreated lignocelluloses biomass solids and their impact on hydrolysis. Bioalcohol production: biochemical conversion of lignocellulosic biomass. Edited by: Waldon K. 2000, Oxford: Woodhead Publishing Ltd, 73-121.
5. Sannigrahi P, Ragauskas AJ, Tuskan GA: Poplar as a feedstock for biofuels: a review of compositional characteristics. Biofuels Bioprod Bior. 2010, 4: 209-226. 10.1002/bbb.206.
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