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RNAi‐suppression of barley caffeic acid O‐methyltransferase modifies lignin despite redundancy in the gene family

Caffeic acid O‐methyltransferase (COMT), the lignin biosynthesis gene modified in many brown‐midrib high‐digestibility mutants of maize and sorghum, was targeted for downregulation in the small grain temperate cereal, barley (Hordeum vulgare), to improve straw properties. Phylogenetic and expression...

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Autores principales: Daly, Paul, McClellan, Christopher, Maluk, Marta, Oakey, Helena, Lapierre, Catherine, Waugh, Robbie, Stephens, Jennifer, Marshall, David, Barakate, Abdellah, Tsuji, Yukiko, Goeminne, Geert, Vanholme, Ruben, Boerjan, Wout, Ralph, John, Halpin, Claire
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6381794/
https://www.ncbi.nlm.nih.gov/pubmed/30133138
http://dx.doi.org/10.1111/pbi.13001
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author Daly, Paul
McClellan, Christopher
Maluk, Marta
Oakey, Helena
Lapierre, Catherine
Waugh, Robbie
Stephens, Jennifer
Marshall, David
Barakate, Abdellah
Tsuji, Yukiko
Goeminne, Geert
Vanholme, Ruben
Boerjan, Wout
Ralph, John
Halpin, Claire
author_facet Daly, Paul
McClellan, Christopher
Maluk, Marta
Oakey, Helena
Lapierre, Catherine
Waugh, Robbie
Stephens, Jennifer
Marshall, David
Barakate, Abdellah
Tsuji, Yukiko
Goeminne, Geert
Vanholme, Ruben
Boerjan, Wout
Ralph, John
Halpin, Claire
author_sort Daly, Paul
collection PubMed
description Caffeic acid O‐methyltransferase (COMT), the lignin biosynthesis gene modified in many brown‐midrib high‐digestibility mutants of maize and sorghum, was targeted for downregulation in the small grain temperate cereal, barley (Hordeum vulgare), to improve straw properties. Phylogenetic and expression analyses identified the barley COMT orthologue(s) expressed in stems, defining a larger gene family than in brachypodium or rice with three COMT genes expressed in lignifying tissues. RNAi significantly reduced stem COMT protein and enzyme activity, and modestly reduced stem lignin content while dramatically changing lignin structure. Lignin syringyl‐to‐guaiacyl ratio was reduced by ~50%, the 5‐hydroxyguaiacyl (5‐OH‐G) unit incorporated into lignin at 10‐–15‐fold higher levels than normal, and the amount of p‐coumaric acid ester‐linked to cell walls was reduced by ~50%. No brown‐midrib phenotype was observed in any RNAi line despite significant COMT suppression and altered lignin. The novel COMT gene family structure in barley highlights the dynamic nature of grass genomes. Redundancy in barley COMTs may explain the absence of brown‐midrib mutants in barley and wheat. The barley COMT RNAi lines nevertheless have the potential to be exploited for bioenergy applications and as animal feed.
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spelling pubmed-63817942019-03-01 RNAi‐suppression of barley caffeic acid O‐methyltransferase modifies lignin despite redundancy in the gene family Daly, Paul McClellan, Christopher Maluk, Marta Oakey, Helena Lapierre, Catherine Waugh, Robbie Stephens, Jennifer Marshall, David Barakate, Abdellah Tsuji, Yukiko Goeminne, Geert Vanholme, Ruben Boerjan, Wout Ralph, John Halpin, Claire Plant Biotechnol J Research Articles Caffeic acid O‐methyltransferase (COMT), the lignin biosynthesis gene modified in many brown‐midrib high‐digestibility mutants of maize and sorghum, was targeted for downregulation in the small grain temperate cereal, barley (Hordeum vulgare), to improve straw properties. Phylogenetic and expression analyses identified the barley COMT orthologue(s) expressed in stems, defining a larger gene family than in brachypodium or rice with three COMT genes expressed in lignifying tissues. RNAi significantly reduced stem COMT protein and enzyme activity, and modestly reduced stem lignin content while dramatically changing lignin structure. Lignin syringyl‐to‐guaiacyl ratio was reduced by ~50%, the 5‐hydroxyguaiacyl (5‐OH‐G) unit incorporated into lignin at 10‐–15‐fold higher levels than normal, and the amount of p‐coumaric acid ester‐linked to cell walls was reduced by ~50%. No brown‐midrib phenotype was observed in any RNAi line despite significant COMT suppression and altered lignin. The novel COMT gene family structure in barley highlights the dynamic nature of grass genomes. Redundancy in barley COMTs may explain the absence of brown‐midrib mutants in barley and wheat. The barley COMT RNAi lines nevertheless have the potential to be exploited for bioenergy applications and as animal feed. John Wiley and Sons Inc. 2018-10-02 2019-03 /pmc/articles/PMC6381794/ /pubmed/30133138 http://dx.doi.org/10.1111/pbi.13001 Text en © 2018 The Authors. Plant Biotechnology Journal published by Society for Experimental Biology and The Association of Applied Biologists and John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Daly, Paul
McClellan, Christopher
Maluk, Marta
Oakey, Helena
Lapierre, Catherine
Waugh, Robbie
Stephens, Jennifer
Marshall, David
Barakate, Abdellah
Tsuji, Yukiko
Goeminne, Geert
Vanholme, Ruben
Boerjan, Wout
Ralph, John
Halpin, Claire
RNAi‐suppression of barley caffeic acid O‐methyltransferase modifies lignin despite redundancy in the gene family
title RNAi‐suppression of barley caffeic acid O‐methyltransferase modifies lignin despite redundancy in the gene family
title_full RNAi‐suppression of barley caffeic acid O‐methyltransferase modifies lignin despite redundancy in the gene family
title_fullStr RNAi‐suppression of barley caffeic acid O‐methyltransferase modifies lignin despite redundancy in the gene family
title_full_unstemmed RNAi‐suppression of barley caffeic acid O‐methyltransferase modifies lignin despite redundancy in the gene family
title_short RNAi‐suppression of barley caffeic acid O‐methyltransferase modifies lignin despite redundancy in the gene family
title_sort rnai‐suppression of barley caffeic acid o‐methyltransferase modifies lignin despite redundancy in the gene family
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6381794/
https://www.ncbi.nlm.nih.gov/pubmed/30133138
http://dx.doi.org/10.1111/pbi.13001
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