Plant Physiology and Biochemistry2022,Vol.1788.DOI:10.1016/j.plaphy.2022.02.018

Inhibiting tricin biosynthesis improves maize lignocellulose saccharification

Mendes, Gabriela Galvao Machado Mota, Thatiane Rodrigues Bossoni, Gabriela Ellen Barreto Marchiosi, Rogerio de Oliveira, Dyoni Matias Constantin, Rodrigo Polimeni dos Santos, Wanderley Dantas Ferrarese Filho, Osvaldo
Plant Physiology and Biochemistry2022,Vol.1788.DOI:10.1016/j.plaphy.2022.02.018

Inhibiting tricin biosynthesis improves maize lignocellulose saccharification

Mendes, Gabriela Galvao Machado 1Mota, Thatiane Rodrigues 2Bossoni, Gabriela Ellen Barreto 1Marchiosi, Rogerio 1de Oliveira, Dyoni Matias 2Constantin, Rodrigo Polimeni 1dos Santos, Wanderley Dantas 1Ferrarese Filho, Osvaldo1
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作者信息

  • 1. Univ Estadual Maringa
  • 2. Univ Ghent
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Abstract

Lignin is a technological bottleneck to convert polysaccharides into fermentable sugars, and different strategies of genetic-based metabolic engineering have been applied to improve biomass saccharification. Using maize seedlings grown hydroponically for 24 h, we conducted a quick non-transgenic approach with five enzyme inhibitors of the lignin and tricin pathways. Two compounds [3,4-(methylenedioxy)cinnamic acid: MDCA and 2,4pyridinedicarboxylic acid: PDCA] revealed interesting findings on root growth, lignin composition, and saccharification. By inhibiting hydroxycinnamoyl-CoA ligase, a key enzyme of phenylpropanoid pathway, MDCA decreased the lignin content and improved saccharification, but it decreased root growth. By inhibiting flavone synthase, a key enzyme of tricin biosynthesis, PDCA decreased total lignin content and improved saccharification without affecting root growth. PDCA was three-fold more effective than MDCA, suggesting that controlling lignin biosynthesis with enzymatic inhibitors may be an attractive strategy to improve biomass saccharification.

Key words

Biofuels/Flavone synthase/Hydroxycinnamoyl-CoA ligase/Lignin/Recalcitrant biomass/Z ea mays/LIGNIN BIOSYNTHESIS/ROOT-GROWTH/IN-SILICO/ACID/LIGNIFICATION/SUPPRESSION/DEHYDROGENASE/METABOLITES/LIGASE/VITRO

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出版年

2022
Plant Physiology and Biochemistry

Plant Physiology and Biochemistry

SCI
ISSN:0981-9428
被引量2
参考文献量58
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