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Application of monoclonal antibodies to investigate plant cell wall deconstruction for biofuels production

机译:单克隆抗体在研究用于生物燃料生产的植物细胞壁解构中的应用

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摘要

To better understand how hydrothermal pretreatment reduces plant cell wall recalcitrance, we applied a high throughput approach ("glycome profiling") using a comprehensive suite of plant glycan-directed monoclonal antibodies to monitor structural/extractability changes in Populus biomass. The results of glycome profiling studies were verified by immunolabeling using selected antibodies from the same toolkit. The array of monoclonal antibodies employed in these studies is large enough to monitor changes occurring in most plant cell wall polysaccharides. Results from these techniques demonstrate the sequence of structural changes that occur in plant cell walls during pretreatment-induced deconstruction, namely, the initial disruption of lignin-polysaccharide interactions in concert with a loss of pectins and arabinogalactans; this is followed by significant removal of xylans and xyloglucans. Additionally, this study also suggests that lignin content per se does not affect recalcitrance; instead, the integration of lignin and polysaccharides within cell walls, and their associations with one another, play a larger role.
机译:为了更好地了解水热预处理如何降低植物细胞壁的顽固性,我们使用了高通量方法(“糖谱分析”),该方法使用了一整套植物聚糖定向的单克隆抗体来监测胡杨生物量的结构/可萃取性变化。通过使用相同工具包中的选定抗体进行免疫标记,验证了糖原图谱研究的结果。这些研究中使用的单克隆抗体阵列足够大,可以监测大多数植物细胞壁多糖中发生的变化。这些技术的结果证明了在预处理诱导的解构过程中植物细胞壁发生的结构变化的顺序,即木质素与多糖相互作用的最初破坏与果胶和阿拉伯半乳聚糖的损失相一致;然后大量去除木聚糖和木葡聚糖。此外,这项研究还表明,木质素含量本身并不影响顽固性。取而代之的是,木质素和多糖在细胞壁内的整合以及它们之间的联系起着更大的作用。

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  • 来源
    《Energy & environmental science》 |2011年第10期|p.4332-4339|共8页
  • 作者单位

    Chemical and Environmental Engineering Department, University of California, Riverside, Riverside, CA, 92507, USA. E-mail: Charles,Center for Environmental Research and Technology, Bourns College of Engineering, University of California, Riverside, 1084 Columbia Ave,Riverside, CA, 92507, USA,BESC BioEnergy Science Center, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA;

    Complex Carbohydrate Research Center, The University of Georgia, 315 Riverbend Rd, Athens, Georgia, 30602, USA,BESC BioEnergy Science Center, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA;

    Complex Carbohydrate Research Center, The University of Georgia, 315 Riverbend Rd, Athens, Georgia, 30602, USA,BESC BioEnergy Science Center, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA;

    Complex Carbohydrate Research Center, The University of Georgia, 315 Riverbend Rd, Athens, Georgia, 30602, USA;

    Complex Carbohydrate Research Center, The University of Georgia, 315 Riverbend Rd, Athens, Georgia, 30602, USA,BESC BioEnergy Science Center, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA;

    Complex Carbohydrate Research Center, The University of Georgia, 315 Riverbend Rd, Athens, Georgia, 30602, USA,Department of Plant Biology, University of Georgia, Athens, GA, 30602,USA,BESC BioEnergy Science Center, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA;

    Chemical and Environmental Engineering Department, University of California, Riverside, Riverside, CA, 92507, USA. E-mail: Charles,Center for Environmental Research and Technology, Bourns College of Engineering, University of California, Riverside, 1084 Columbia Ave,Riverside, CA, 92507, USA,BESC BioEnergy Science Center, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA;

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