Literature DB >> 21298285

Quantification of lignin-carbohydrate linkages with high-resolution NMR spectroscopy.

Mikhail Balakshin1, Ewellyn Capanema, Hanna Gracz, Hou-min Chang, Hasan Jameel.   

Abstract

A quantitative approach to characterize lignin-carbohydrate complex (LCC) linkages using a combination of quantitative ¹³C NMR and HSQC 2D NMR techniques has been developed. Crude milled wood lignin (MWLc), LCC extracted from MWLc with acetic acid (LCC-AcOH) and cellulolytic enzyme lignin (CEL) preparations were isolated from loblolly pine (Pinus taeda) and white birch (Betula pendula) woods and characterized using this methodology on a routine 300 MHz NMR spectrometer and on a 950 MHz spectrometer equipped with a cryogenic probe. Structural variations in the pine and birch LCC preparations of different types (MWL, CEL and LCC-AcOH) were elucidated. The use of the high field NMR spectrometer equipped with the cryogenic probe resulted in a remarkable improvement in the resolution of the LCC signals and, therefore, is of primary importance for an accurate quantification of LCC linkages. The preparations investigated showed the presence of different amounts of benzyl ether, γ-ester and phenyl glycoside LCC bonds. Benzyl ester moieties were not detected. Pine LCC-AcOH and birch MWLc preparations were preferable for the analysis of phenyl glycoside and ester LCC linkages in pine and birch, correspondingly, whereas CEL preparations were the best to study benzyl ether LCC structures. The data obtained indicate that pinewood contains higher amounts of benzyl ether LCC linkages, but lower amounts of phenyl glycoside and γ-ester LCC moieties as compared to birch wood.

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Year:  2011        PMID: 21298285     DOI: 10.1007/s00425-011-1359-2

Source DB:  PubMed          Journal:  Planta        ISSN: 0032-0935            Impact factor:   4.116


  11 in total

1.  Quantitative 2D HSQC (Q-HSQC) via suppression of J-dependence of polarization transfer in NMR spectroscopy: application to wood lignin.

Authors:  Sami Heikkinen; Merja M Toikka; Pirkko T Karhunen; Ilkka A Kilpeläinen
Journal:  J Am Chem Soc       Date:  2003-04-09       Impact factor: 15.419

2.  Quantitative characterization of a hardwood milled wood lignin by nuclear magnetic resonance spectroscopy.

Authors:  Ewellyn A Capanema; Mikhail Yu Balakshin; John F Kadla
Journal:  J Agric Food Chem       Date:  2005-12-14       Impact factor: 5.279

3.  Structural differences between the lignin-carbohydrate complexes present in wood and in chemical pulps.

Authors:  Martin Lawoko; Gunnar Henriksson; Göran Gellerstedt
Journal:  Biomacromolecules       Date:  2005 Nov-Dec       Impact factor: 6.988

4.  Lignin modification during Eucalyptus globulus kraft pulping followed by totally chlorine-free bleaching: a two-dimensional nuclear magnetic resonance, Fourier transform infrared, and pyrolysis-gas chromatography/mass spectrometry study.

Authors:  David Ibarra; María Isabel Chávez; Jorge Rencoret; José Carlos Del Río; Ana Gutiérrez; Javier Romero; Susana Camarero; María Jesús Martínez; Jesús Jiménez-Barbero; Angel T Martínez
Journal:  J Agric Food Chem       Date:  2007-04-04       Impact factor: 5.279

5.  Effects of coumarate 3-hydroxylase down-regulation on lignin structure.

Authors:  John Ralph; Takuya Akiyama; Hoon Kim; Fachuang Lu; Paul F Schatz; Jane M Marita; Sally A Ralph; M S Srinivasa Reddy; Fang Chen; Richard A Dixon
Journal:  J Biol Chem       Date:  2006-01-17       Impact factor: 5.157

6.  Quantitative 2D HSQC NMR determination of polymer structures by selecting suitable internal standard references.

Authors:  Liming Zhang; Göran Gellerstedt
Journal:  Magn Reson Chem       Date:  2007-01       Impact factor: 2.447

7.  Elucidation of the structures of residual and dissolved pine kraft lignins using an HMQC NMR technique.

Authors:  Mikhail Yu Balakshin; Ewellyn A Capanema; Chen-Loung Chen; Hanna S Gracz
Journal:  J Agric Food Chem       Date:  2003-10-08       Impact factor: 5.279

8.  Characterization of nonderivatized plant cell walls using high-resolution solution-state NMR spectroscopy.

Authors:  Daniel J Yelle; John Ralph; Charles R Frihart
Journal:  Magn Reson Chem       Date:  2008-06       Impact factor: 2.447

9.  A comprehensive approach for quantitative lignin characterization by NMR spectroscopy.

Authors:  Ewellyn A Capanema; Mikhail Y Balakshin; John F Kadla
Journal:  J Agric Food Chem       Date:  2004-04-07       Impact factor: 5.279

10.  Dissolution of beech and spruce milled woods in LiCl/DMSO.

Authors:  Zhiguo Wang; Tomoya Yokoyama; Hou-Min Chang; Yuji Matsumoto
Journal:  J Agric Food Chem       Date:  2009-07-22       Impact factor: 5.279

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  37 in total

1.  The role of weak interactions in lignin polymerization.

Authors:  Ángel Sánchez-González; Francisco J Martín-Martínez; J A Dobado
Journal:  J Mol Model       Date:  2017-02-16       Impact factor: 1.810

2.  The mechanism of xylans removal during hydrothermal pretreatment of poplar fibers investigated by immunogold labeling.

Authors:  Jing Ma; Zhe Ji; Jia C Chen; Xia Zhou; Yoon S Kim; Feng Xu
Journal:  Planta       Date:  2015-04-30       Impact factor: 4.116

3.  Structural changes of corn stover lignin during acid pretreatment.

Authors:  Geoffrey Moxley; Armindo Ribeiro Gaspar; Don Higgins; Hui Xu
Journal:  J Ind Microbiol Biotechnol       Date:  2012-04-28       Impact factor: 3.346

4.  Universal fractionation of lignin-carbohydrate complexes (LCCs) from lignocellulosic biomass: an example using spruce wood.

Authors:  Xueyu Du; Goran Gellerstedt; Jiebing Li
Journal:  Plant J       Date:  2013-03-04       Impact factor: 6.417

5.  Ptr-miR397a is a negative regulator of laccase genes affecting lignin content in Populus trichocarpa.

Authors:  Shanfa Lu; Quanzi Li; Hairong Wei; Mao-Ju Chang; Sermsawat Tunlaya-Anukit; Hoon Kim; Jie Liu; Jingyuan Song; Ying-Hsuan Sun; Lichai Yuan; Ting-Feng Yeh; Ilona Peszlen; John Ralph; Ronald R Sederoff; Vincent L Chiang
Journal:  Proc Natl Acad Sci U S A       Date:  2013-06-10       Impact factor: 11.205

6.  Patterned Deposition of Xylan and Lignin is Independent from that of the Secondary Wall Cellulose of Arabidopsis Xylem Vessels.

Authors:  Yuto Takenaka; Yoichiro Watanabe; Mathias Schuetz; Faride Unda; Joseph L Hill; Pawittra Phookaew; Arata Yoneda; Shawn D Mansfield; Lacey Samuels; Misato Ohtani; Taku Demura
Journal:  Plant Cell       Date:  2018-10-18       Impact factor: 11.277

7.  Analysis of lignin-carbohydrate and lignin-lignin linkages after hydrolase treatment of xylan-lignin, glucomannan-lignin and glucan-lignin complexes from spruce wood.

Authors:  Xueyu Du; Marta Pérez-Boada; Carmen Fernández; Jorge Rencoret; José C del Río; Jesús Jiménez-Barbero; Jiebing Li; Ana Gutiérrez; Angel T Martínez
Journal:  Planta       Date:  2014-02-15       Impact factor: 4.116

8.  Lignin-carbohydrate complexes from sisal (Agave sisalana) and abaca (Musa textilis): chemical composition and structural modifications during the isolation process.

Authors:  José C Del Río; Pepijn Prinsen; Edith M Cadena; Ángel T Martínez; Ana Gutiérrez; Jorge Rencoret
Journal:  Planta       Date:  2016-02-05       Impact factor: 4.116

9.  Selective precipitation and characterization of lignin-carbohydrate complexes (LCCs) from Eucalyptus.

Authors:  Bao-Cheng Zhao; Ji-Dong Xu; Bo-Yang Chen; Xue-Fei Cao; Tong-Qi Yuan; Shuang-Fei Wang; Adam Charlton; Run-Cang Sun
Journal:  Planta       Date:  2018-01-19       Impact factor: 4.116

Review 10.  Molecular self-organization of wood lignin-carbohydrate matrix.

Authors:  Konstantin G Bogolitsyn; Mariya A Gusakova; Anna A Krasikova
Journal:  Planta       Date:  2021-07-16       Impact factor: 4.116

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