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Quantitative trait loci for cell wall composition traits measured using near-infrared spectroscopy in the model C4 perennial grass Panicum hallii

机译:C4多年生草Paniccum hallii模型中使用近红外光谱法测量的细胞壁组成性状的数量性状基因座

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摘要

BackgroundBiofuels derived from lignocellulosic plant material are an important component of current renewable energy strategies. Improvement efforts in biofuel feedstock crops have been primarily focused on increasing biomass yield with less consideration for tissue quality or composition. Four primary components found in the plant cell wall contribute to the overall quality of plant tissue and conversion characteristics, cellulose and hemicellulose polysaccharides are the primary targets for fuel conversion, while lignin and ash provide structure and defense. We explore the genetic architecture of tissue characteristics using a quantitative trait loci (QTL) mapping approach in Panicum hallii, a model lignocellulosic grass system. Diversity in the mapping population was generated by crossing xeric and mesic varietals, comparative to northern upland and southern lowland ecotypes in switchgrass. We use near-infrared spectroscopy with a primary analytical method to create a P. hallii specific calibration model to quickly quantify cell wall components.
机译:背景技术源自木质纤维素植物材料的生物燃料是当前可再生能源策略的重要组成部分。生物燃料原料作物的改良工作主要集中在增加生物质产量上,而对组织质量或组成的考虑较少。植物细胞壁中发现的四个主要成分有助于植物组织的整体质量和转化特性,纤维素和半纤维素多糖是燃料转化的主要目标,而木质素和灰分则提供结构和防御作用。我们使用定量性状基因座(QTL)映射方法在Panicum hallii(模型木质纤维素草系统)中探索组织特征的遗传结构。与柳枝northern的北部高地和南部低地生态型相比,通过旱生和近中性品种的杂交产生了作图种群的多样性。我们使用具有主要分析方法的近红外光谱技术来创建哈氏疟原虫特定的校准模型,以快速量化细胞壁成分。

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