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Towards a cost-effective bioethanol process: yeast development to overcome challenges derived from lignocellulosic processing

机译:迈向具有成本效益的生物乙醇工艺:开发酵母以克服木质纤维素加工带来的挑战

摘要

The use of renewable biomass to supply the increasing energetic needs and to partially replace fossil fuels is nowadays recognized as a suitable and desirable alternative to attain a sustainable growth based on a bioeconomy. In spite of the intensive research on lignocellulose-to-ethanol production processes, second generation (2G) bioethanol is still not cost competitive and specific challenges remain. These processes are as a whole substantially more complex than initially thought as several types of biomass may be used as substrate, each with specific challenges. A range of biomass pre-treatments may be applied for biomass fractionation, each with its own specificities and leading to different inhibitor profiles. Finally, different hydrolysis/fermentation schemes may be used. The optimization of these processes has to consider the integration of all the stagesof the process and should be done together. One of the key aspects for the development of cost-effective lignocellulose-to-bioethanol processes is the engineering of the yeast strain. There is still a lack of robust and sugars-fast fermentation yeast strains for 2G bioethanol. Recently, we have screened and selected naturally robust yeast strains from industrial environments[1] and engineering some of the more promising strains with the xylose metabolic pathway[2] and inhibitor tolerance genes[3]. We will present the results of the simultaneous engineering of xylose metabolization pathway together with inhibitor tolerance in diverse robust background strains and its performance in different hydrolysates obtained from distinct types of biomass. The heterogeneous outcome of the genetic engineering in different hydrolysates show that tolerance and xylose engineering must be customized to the strain background and hydrolysate used in the process. The results obtained highlight that yeast development must not only be integrated in the process but it must also be tailor-made for each specific process.[1]Pereira et al.(2014)Bioresource Technology 161:192-199.[2]Romani et al.(2015)Bioresource Technology 179:150-158.[3]Cunha et al.(2015)Bioresource Technology 191:7-16.
机译:如今,使用可再生生物质来满足日益增长的能源需求并部分替代化石燃料已被认为是实现基于生物经济的可持续增长的合适且理想的替代方法。尽管对木质纤维素制乙醇工艺进行了深入研究,但第二代(2G)生物乙醇仍不具有成本竞争力,并且仍然存在特定挑战。这些过程总体上比最初认为的要复杂得多,因为可以使用几种类型的生物质作为底物,每种都有特定的挑战。一系列生物质预处理可用于生物质分馏,每种都有其自身的特异性并导致不同的抑制剂谱。最后,可以使用不同的水解/发酵方案。这些过程的优化必须考虑过程的所有阶段的集成,应该一起完成。开发具有成本效益的木质纤维素制生物乙醇工艺的关键方面之一是酵母菌株的工程改造。对于2G生物乙醇,仍然缺乏健壮且耐糖快速发酵的酵母菌株。最近,我们从工业环境中筛选并选择了天然强壮的酵母菌株[1],并用木糖代谢途径[2]和抑制剂耐受基因[3]工程化了一些更有希望的菌株。我们将介绍木糖代谢途径的同时工程化结果以及抑制剂在各种稳健背景菌株中的耐受性及其在从不同类型生物质获得的不同水解物中的表现。基因工程在不同水解物中的异质结果表明,必须针对菌株背景和过程中使用的水解产物对耐受性和木糖工程进行定制。获得的结果表明,酵母的开发不仅必须整合到该过程中,而且还必须针对每个特定过程进行量身定制。[1] Pereira et al。(2014)Bioresource Technology 161:192-199。[2] Romani et al。(2015)Bioresource Technology 179:150-158。[3] Cunha et al。(2015)Bioresource Technology 191:7-16。

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