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Saccharification Performances of Miscanthus at the Pilot and Miniaturized Assay Scales: Genotype and Year Variabilities According to the Biomass Composition

机译:芒草糖化性能的试验和小型化规模:基因型和年份变异根据生物量组成

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>HIGHLIGHTS class="unordered" style="list-style-type:disc">Biomass production and cell wall composition are differentially impacted by harvesting year and genotypes, influencing then cellulose conversion in miniaturized assay.Using a high-throughput miniaturized and semi-automated method for performing the pretreatment and saccharification steps at laboratory scale allows for the assessment of these factors on the biomass potential for producing bioethanol before moving to the industrial scale.The large genetic diversity of the perennial grass miscanthus makes it suitable for producing cellulosic ethanol in biorefineries. The saccharification potential and year variability of five genotypes belonging to Miscanthus × giganteus and Miscanthus sinensis were explored using a miniaturized and semi-automated method, allowing the application of a hot water treatment followed by an enzymatic hydrolysis. The studied genotypes highlighted distinct cellulose conversion yields due to their distinct cell wall compositions. An inter-year comparison revealed significant variations in the biomass productivity and cell wall compositions. Compared to the recalcitrant genotypes, more digestible genotypes contained higher amounts of hemicellulosic carbohydrates and lower amounts of cellulose and lignin. In contrast to hemicellulosic carbohydrates, the relationships analysis between the biomass traits and cellulose conversion clearly showed the same negative effect of cellulose and lignin on cellulose digestion. The miniaturized and semi-automated method we developed was usable at the laboratory scale and was reliable for mimicking the saccharification at the pilot scale using a steam explosion pretreatment and enzymatic hydrolysis. Therefore, this miniaturized method will allow the reliable screening of many genotypes for saccharification potential. These findings provide valuable information and tools for breeders to create genotypes combining high yield, suitable biomass composition, and high saccharification yields.
机译:>重点 class =“ unordered” style =“ list-style-type:disc”> <!-list-behavior = unordered prefix-word = mark-type = disc max-label-size = 0-> 生物量的产生和细胞壁组成受收获年份和基因型的影响不同,从而影响微型化分析中的纤维素转化。 使用高通量微型化和半自动化方法在实验室规模下进行预处理和糖化步骤可以评估这些因素,从而在产业规模之前评估生产生物乙醇的生物量潜力。 多年生禾草的广泛遗传多样性使其很适合用于在生物精炼厂生产纤维素乙醇。利用小型化和半自动化的方法,探索了属于芒草(Miscanthus×giganteus)和芒草(Miscanthus sinensis)的五种基因型的糖化潜力和年变异性,允许先进行热水处理,然后进行酶促水解。由于它们不同的细胞壁组成,所研究的基因型突出了不同的纤维素转化率。年度间的比较显示出生物量生产力和细胞壁组成的显着变化。与顽固型基因型相比,易消化的基因型包含更高含量的半纤维素碳水化合物和更低含量的纤维素和木质素。与半纤维素碳水化合物相比,生物量性状与纤维素转化率之间的关系分析清楚地表明,纤维素和木质素对纤维素消化的负面影响相同。我们开发的微型化和半自动化方法可在实验室规模使用,并且可通过蒸汽爆炸预处理和酶水解模拟中试规模的糖化工艺,因此可靠。因此,这种小型化方法将允许可靠地筛选许多基因型的糖化潜力。这些发现为育种者创造结合高产量,合适的生物量组成和高糖化产量的基因型提供了有价值的信息和工具。

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