Effective application of immobilized second generation industrial Saccharomyces cerevisiae strain on consolidated bioprocessing

IF 4.5 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Márcio D.N. Ramos , Juliana P. Sandri , Arne Claes , Bruna T. Carvalho , Johan M. Thevelein , Teresa C. Zangirolami , Thais S. Milessi
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引用次数: 1

Abstract

Integrated bioprocessing strategies can facilitate ethanol production from both cellulose and hemicellulose fractions of lignocellulosic biomass. Consolidated bioprocessing (CBP) is an approach that combines enzyme production, biomass hydrolysis and sugar fermentation in a single step. However, technologies that propose the use of microorganisms together with solid biomass present the difficulty of the recovery and reuse of the biocatalyst, which can be overcome by cell immobilization. In this regard, this work applied immobilized cells of AC14 yeast, a recombinant yeast that secretes 7 hydrolytic enzymes, in the CBP process in a successful proof-of-concept for the enzyme access to the substrate polymers. The most appropriate cell load for CBP under the conditions studied with immobilized cells was selected among three optical densities (OD) 10, 55 and 100. These experiments were performed with free cells to ensure that the results were not biased by mass limitations effects. OD 10 achieved 100% of the sugar consumption and the higher specific production of enzymes, being selected for further studies. Diffusional effects were observed with immobilized cells under static conditions. However, mass transfer limitations were mitigated under agitation, with an 18.5% increase in substrate consumption rate (from 2.7 to 3.5 g/L/h), reaching the same substrate uptake rates as free cells. In addition, immobilized cells achieved 100% hydrolysis and consumption of all substrates offered within only 12 h. Overall, this is the first report of a successful application of immobilized yeast cells in CBP processes for bioethanol production, a promising technology that can be extended to other biorefinery bioproducts.

Abstract Image

固定化第二代工业酿酒酵母菌株在联合生物加工中的有效应用。
综合生物处理策略可以促进从木质纤维素生物质的纤维素和半纤维素部分生产乙醇。联合生物加工(CBP)是一种将酶生产、生物质水解和糖发酵结合在一个步骤中的方法。然而,提出将微生物与固体生物质一起使用的技术存在生物催化剂回收和再利用的困难,这可以通过细胞固定化来克服。在这方面,本工作将AC14酵母(一种分泌7种水解酶的重组酵母)的固定化细胞应用于CBP过程,成功证明了酶进入底物聚合物的概念。在用固定化细胞研究的条件下,从三种光密度(OD)10、55和100中选择CBP研究的最合适的细胞负载。这些实验是用游离细胞进行的,以确保结果不受质量限制效应的影响。OD10实现了100%的糖消耗和更高的酶比产量,被选择用于进一步研究。在静态条件下用固定化细胞观察到扩散效应。然而,在搅拌下,传质限制得到了缓解,底物消耗速率增加了18.5%(从2.7到3.5g/L/h),达到了与游离细胞相同的底物吸收速率。此外,固定化细胞仅在12h内就实现了所有底物的100%水解和消耗。总的来说,这是第一份将固定化酵母细胞成功应用于CBP生物乙醇生产工艺的报告,这是一项很有前途的技术,可以推广到其他生物精炼生物产品中。
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来源期刊
New biotechnology
New biotechnology 生物-生化研究方法
CiteScore
11.40
自引率
1.90%
发文量
77
审稿时长
1 months
期刊介绍: New Biotechnology is the official journal of the European Federation of Biotechnology (EFB) and is published bimonthly. It covers both the science of biotechnology and its surrounding political, business and financial milieu. The journal publishes peer-reviewed basic research papers, authoritative reviews, feature articles and opinions in all areas of biotechnology. It reflects the full diversity of current biotechnology science, particularly those advances in research and practice that open opportunities for exploitation of knowledge, commercially or otherwise, together with news, discussion and comment on broader issues of general interest and concern. The outlook is fully international. The scope of the journal includes the research, industrial and commercial aspects of biotechnology, in areas such as: Healthcare and Pharmaceuticals; Food and Agriculture; Biofuels; Genetic Engineering and Molecular Biology; Genomics and Synthetic Biology; Nanotechnology; Environment and Biodiversity; Biocatalysis; Bioremediation; Process engineering.
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