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Coordinated Activation of Cellulose and Repression of Lignin Biosynthesis Pathways in Rice1[C][W][OA]

机译:水稻中纤维素的协同激活和木质素生物合成途径的抑制[C] [W] [OA]

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摘要

Cellulose from plant biomass is the largest renewable energy resource of carbon fixed from the atmosphere, which can be converted into fermentable sugars for production into ethanol. However, the cellulose present as lignocellulosic biomass is embedded in a hemicellulose and lignin matrix from which it needs to be extracted for efficient processing. Here, we show that expression of an Arabidopsis (Arabidopsis thaliana) transcription factor, SHINE (SHN), in rice (Oryza sativa), a model for the grasses, causes a 34% increase in cellulose and a 45% reduction in lignin content. The rice AtSHN lines also exhibit an altered lignin composition correlated with improved digestibility, with no compromise in plant strength and performance. Using a detailed systems-level analysis of global gene expression in rice, we reveal the SHN regulatory network coordinating down-regulation of lignin biosynthesis and up-regulation of cellulose and other cell wall biosynthesis pathway genes. The results thus support the development of nonfood crops and crop wastes with increased cellulose and low lignin with good agronomic performance that could improve the economic viability of lignocellulosic crop utilization for biofuels.
机译:植物生物质中的纤维素是从大气中固定下来的最大的可再生碳能源,可以转化为可发酵的糖,用于生产乙醇。然而,作为木质纤维素生物质存在的纤维素被嵌入半纤维素和木质素基质中,需要从中提取纤维素以进行有效处理。在这里,我们表明拟南芥(Arabidopsis thaliana)转录因子SHINE(SHN)在水稻(Oryza sativa)(一种草皮模型)中的表达导致纤维素增加34%,木质素含量减少45%。水稻AtSHN品系还表现出木质素组成的变化,与改善的消化率相关,而不会影响植物的强度和性能。通过对水稻中全球基因表达的详细系统级分析,我们揭示了SHN调控网络,该调控网络可协调木质素生物合成的下调以及纤维素和其他细胞壁生物合成途径基因的上调。因此,这些结果支持了纤维素和低木质素含量增加,具有良好农艺性能的非粮食作物和农作物废弃物的开发,可以改善木质纤维素作物利用生物燃料的经济可行性。

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