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Structural Redesigning Arabidopsis Lignins into Alkali-Soluble Lignins through the Expression of p-Coumaroyl-CoA:Monolignol Transferase PMT

机译:通过p-香豆酰辅酶A:单酚转化酶PMT的表达将拟南芥木质素结构重新设计成碱溶性木质素

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摘要

Grass lignins can contain up to 10% to 15% by weight of p-coumaric esters. This acylation is performed on monolignols under the catalysis of p-coumaroyl-coenzyme A monolignol transferase (PMT). To study the impact of p-coumaroylation on lignification, we first introduced the Brachypodium distachyon Bradi2g36910 (BdPMT1) gene into Arabidopsis (Arabidopsis thaliana) under the control of the constitutive maize (Zea mays) ubiquitin promoter. The resulting p-coumaroylation was far lower than that of lignins from mature grass stems and had no impact on stem lignin content. By contrast, introducing either the BdPMT1 or the Bradi1g36980 (BdPMT2) gene into Arabidopsis under the control of the Arabidopsis cinnamate-4-hydroxylase promoter boosted the p-coumaroylation of mature stems up to the grass lignin level (8% to 9% by weight), without any impact on plant development. The analysis of purified lignin fractions and the identification of diagnostic products confirmed that p-coumaric acid was associated with lignins. BdPMT1-driven p-coumaroylation was also obtained in the fah1 (deficient for ferulate 5-hydroxylase) and ccr1g (deficient for cinnamoyl-coenzyme A reductase) lines, albeit to a lower extent. Lignins from BdPMT1-expressing ccr1g lines were also found to be feruloylated. In Arabidopsis mature stems, substantial p-coumaroylation of lignins was achieved at the expense of lignin content and induced lignin structural alterations, with an unexpected increase of lignin units with free phenolic groups. This higher frequency of free phenolic groups in Arabidopsis lignins doubled their solubility in alkali at room temperature. These findings suggest that the formation of alkali-leachable lignin domains rich in free phenolic groups is favored when p-coumaroylated monolignols participate in lignification in a grass in a similar manner.
机译:草木素可以包含按重量计高达10%至15%的对香豆酸酯。在对香豆酰辅酶A单木酚转移酶(PMT)的催化下,对单木酚进行酰化。为了研究p-香豆素化对木质化的影响,我们首先在组成型玉米(Zea mays)泛素启动子的控制下,将短枝曲霉Bradi2g36910(BdPMT1)基因引入拟南芥(Arabidopsis thaliana)中。所产生的对香豆素化作用远低于成熟草茎中的木质素,并且对茎中木质素含量没有影响。相比之下,在拟南芥肉桂酸-4-羟化酶启动子的控制下,将BdPMT1或Bradi1g36980(BdPMT2)基因导入拟南芥中,可促进成熟茎的p-香豆素化,达到草木素水平(8%至9%重量)。 ),而不会影响工厂发展。对纯化的木质素级分的分析和诊断产物的鉴定证实对香豆酸与木质素有关。在fah1(阿魏酸5-羟化酶不足)和ccr1g(肉桂酰辅酶A还原酶不足)品系中也获得了BdPMT1驱动的p-香豆素化,尽管程度较低。还发现表达 ccr1g BdPMT1-的木质素被阿魏酸化。在拟南芥成熟茎中,木质素的大量 p -香豆素化作用以木质素含量和诱导的木质素结构改变为代价,带有游离酚基的木质素单元意外增加。拟南芥木质素中游离酚基的这种较高频率在室温下使其在碱中的溶解度增加了一倍。这些发现表明,当 p -香豆基化的单木质醇以类似方式参与木质化时,有利于形成富含游离酚基的可碱浸木质素结构域。

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