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Engineering Curcumin Biosynthesis in Poplar Affects Lignification and Biomass Yield

Lignocellulosic biomass is recalcitrant toward deconstruction into simple sugars mainly due to the presence of lignin. By engineering plants to partially replace traditional lignin monomers with alternative ones, lignin degradability and extractability can be enhanced. Previously, the alternative mo...

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Autores principales: De Meester, Barbara, Oyarce, Paula, Vanholme, Ruben, Van Acker, Rebecca, Tsuji, Yukiko, Vangeel, Thijs, Van den Bosch, Sander, Van Doorsselaere, Jan, Sels, Bert, Ralph, John, Boerjan, Wout
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9289561/
https://www.ncbi.nlm.nih.gov/pubmed/35860528
http://dx.doi.org/10.3389/fpls.2022.943349
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author De Meester, Barbara
Oyarce, Paula
Vanholme, Ruben
Van Acker, Rebecca
Tsuji, Yukiko
Vangeel, Thijs
Van den Bosch, Sander
Van Doorsselaere, Jan
Sels, Bert
Ralph, John
Boerjan, Wout
author_facet De Meester, Barbara
Oyarce, Paula
Vanholme, Ruben
Van Acker, Rebecca
Tsuji, Yukiko
Vangeel, Thijs
Van den Bosch, Sander
Van Doorsselaere, Jan
Sels, Bert
Ralph, John
Boerjan, Wout
author_sort De Meester, Barbara
collection PubMed
description Lignocellulosic biomass is recalcitrant toward deconstruction into simple sugars mainly due to the presence of lignin. By engineering plants to partially replace traditional lignin monomers with alternative ones, lignin degradability and extractability can be enhanced. Previously, the alternative monomer curcumin has been successfully produced and incorporated into lignified cell walls of Arabidopsis by the heterologous expression of DIKETIDE-CoA SYNTHASE (DCS) and CURCUMIN SYNTHASE2 (CURS2). The resulting transgenic plants did not suffer from yield penalties and had an increased saccharification yield after alkaline pretreatment. Here, we translated this strategy into the bio-energy crop poplar. Via the heterologous expression of DCS and CURS2 under the control of the secondary cell wall CELLULOSE SYNTHASE A8-B promoter (ProCesA8-B), curcumin was also produced and incorporated into the lignified cell walls of poplar. ProCesA8-B:DCS_CURS2 transgenic poplars, however, suffered from shoot-tip necrosis and yield penalties. Compared to that of the wild-type (WT), the wood of transgenic poplars had 21% less cellulose, 28% more matrix polysaccharides, 23% more lignin and a significantly altered lignin composition. More specifically, ProCesA8-B:DCS_CURS2 lignin had a reduced syringyl/guaiacyl unit (S/G) ratio, an increased frequency of p-hydroxyphenyl (H) units, a decreased frequency of p-hydroxybenzoates and a higher fraction of phenylcoumaran units. Without, or with alkaline or hot water pretreatment, the saccharification efficiency of the transgenic lines was equal to that of the WT. These differences in (growth) phenotype illustrate that translational research in crops is essential to assess the value of an engineering strategy for applications. Further fine-tuning of this research strategy (e.g., by using more specific promoters or by translating this strategy to other crops such as maize) might lead to transgenic bio-energy crops with cell walls more amenable to deconstruction without settling in yield.
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spelling pubmed-92895612022-07-19 Engineering Curcumin Biosynthesis in Poplar Affects Lignification and Biomass Yield De Meester, Barbara Oyarce, Paula Vanholme, Ruben Van Acker, Rebecca Tsuji, Yukiko Vangeel, Thijs Van den Bosch, Sander Van Doorsselaere, Jan Sels, Bert Ralph, John Boerjan, Wout Front Plant Sci Plant Science Lignocellulosic biomass is recalcitrant toward deconstruction into simple sugars mainly due to the presence of lignin. By engineering plants to partially replace traditional lignin monomers with alternative ones, lignin degradability and extractability can be enhanced. Previously, the alternative monomer curcumin has been successfully produced and incorporated into lignified cell walls of Arabidopsis by the heterologous expression of DIKETIDE-CoA SYNTHASE (DCS) and CURCUMIN SYNTHASE2 (CURS2). The resulting transgenic plants did not suffer from yield penalties and had an increased saccharification yield after alkaline pretreatment. Here, we translated this strategy into the bio-energy crop poplar. Via the heterologous expression of DCS and CURS2 under the control of the secondary cell wall CELLULOSE SYNTHASE A8-B promoter (ProCesA8-B), curcumin was also produced and incorporated into the lignified cell walls of poplar. ProCesA8-B:DCS_CURS2 transgenic poplars, however, suffered from shoot-tip necrosis and yield penalties. Compared to that of the wild-type (WT), the wood of transgenic poplars had 21% less cellulose, 28% more matrix polysaccharides, 23% more lignin and a significantly altered lignin composition. More specifically, ProCesA8-B:DCS_CURS2 lignin had a reduced syringyl/guaiacyl unit (S/G) ratio, an increased frequency of p-hydroxyphenyl (H) units, a decreased frequency of p-hydroxybenzoates and a higher fraction of phenylcoumaran units. Without, or with alkaline or hot water pretreatment, the saccharification efficiency of the transgenic lines was equal to that of the WT. These differences in (growth) phenotype illustrate that translational research in crops is essential to assess the value of an engineering strategy for applications. Further fine-tuning of this research strategy (e.g., by using more specific promoters or by translating this strategy to other crops such as maize) might lead to transgenic bio-energy crops with cell walls more amenable to deconstruction without settling in yield. Frontiers Media S.A. 2022-07-04 /pmc/articles/PMC9289561/ /pubmed/35860528 http://dx.doi.org/10.3389/fpls.2022.943349 Text en Copyright © 2022 De Meester, Oyarce, Vanholme, Van Acker, Tsuji, Vangeel, Van den Bosch, Van Doorsselaere, Sels, Ralph and Boerjan. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
De Meester, Barbara
Oyarce, Paula
Vanholme, Ruben
Van Acker, Rebecca
Tsuji, Yukiko
Vangeel, Thijs
Van den Bosch, Sander
Van Doorsselaere, Jan
Sels, Bert
Ralph, John
Boerjan, Wout
Engineering Curcumin Biosynthesis in Poplar Affects Lignification and Biomass Yield
title Engineering Curcumin Biosynthesis in Poplar Affects Lignification and Biomass Yield
title_full Engineering Curcumin Biosynthesis in Poplar Affects Lignification and Biomass Yield
title_fullStr Engineering Curcumin Biosynthesis in Poplar Affects Lignification and Biomass Yield
title_full_unstemmed Engineering Curcumin Biosynthesis in Poplar Affects Lignification and Biomass Yield
title_short Engineering Curcumin Biosynthesis in Poplar Affects Lignification and Biomass Yield
title_sort engineering curcumin biosynthesis in poplar affects lignification and biomass yield
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9289561/
https://www.ncbi.nlm.nih.gov/pubmed/35860528
http://dx.doi.org/10.3389/fpls.2022.943349
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