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双剑合璧:一种人工微生物共混物,用于将菊粉转化为聚羟基烷酸酯。

The power of two: An artificial microbial consortium for the conversion of inulin into Polyhydroxyalkanoates.

机构信息

Department of Chemical Sciences, University of Naples Federico II, Via Cinthia, 4-80126 Napoli, Italy.

Department of Biology, University of Naples Federico II, Via Cinthia, 4-80126 Napoli, Italy.

出版信息

Int J Biol Macromol. 2021 Oct 31;189:494-502. doi: 10.1016/j.ijbiomac.2021.08.123. Epub 2021 Aug 21.

Abstract

One of the major issues for the microbial production of polyhydroxyalkanoates (PHA) is to secure renewable, non-food biomass feedstocks to feed the fermentation process. Inulin, a polydisperse fructan that accumulates as reserve polysaccharide in the roots of several low-requirement crops, has the potential to face this challenge. In this work, a "substrate facilitator" microbial consortium was designed to address PHA production using inulin as feedstock. A microbial collection of Bacillus species was screened for efficient inulinase producer and the genome of the selected strain, RHF15, identified as Bacillus gibsonii, was analysed unravelling its wide catabolic potential. RHF15 was co-cultured with Cupriavidus necator, an established PHA producer, lacking the ability to metabolize inulin. A Central Composite Rotary Design (CCRD) was applied to optimise PHA synthesis from inulin by the designed artificial microbial consortium, assessing the impact of species inoculum ratio and inulin and N-source concentrations. In the optimized conditions, a maximum of 1.9 g L of Polyhydroxybutyrate (PHB), corresponding to ~80% (g/g) polymer content was achieved. The investigated approach represents an effective process optimization method, potentially applicable to the production of PHA from other complex C- sources.

摘要

聚羟基脂肪酸酯(PHA)的微生物生产面临的主要问题之一是确保可再生、非食用的生物质原料来满足发酵过程的需求。菊粉是一种多分散的果聚糖,作为几种低需求作物根系中的储备多糖积累,具有应对这一挑战的潜力。在这项工作中,设计了一种“基质促进剂”微生物联合体,以菊粉为原料生产 PHA。筛选了一种产菊粉酶的芽孢杆菌微生物集合体,并对选定的菌株 RHF15 的基因组进行了分析,揭示了其广泛的代谢潜力。将 RHF15 与缺乏代谢菊粉能力的已建立的 PHA 生产菌 Cupriavidus necator 共培养。采用中心复合旋转设计(CCRD)优化了设计的人工微生物联合体从菊粉合成 PHA 的过程,评估了物种接种比例、菊粉和 N 源浓度的影响。在优化条件下,可获得高达 1.9 g/L 的聚羟基丁酸酯(PHB),聚合物含量约为 80%(g/g)。所研究的方法代表了一种有效的过程优化方法,可能适用于其他复杂 C 源的 PHA 生产。

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