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首页> 外文期刊>Biotechnology and Bioengineering >Combinatorial synthetic pathway fine-tuning and comparative transcriptomics for metabolic engineering of Raoultella ornithinolytica BF60 to efficiently synthesize 2,5-furandicarboxylic acid
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Combinatorial synthetic pathway fine-tuning and comparative transcriptomics for metabolic engineering of Raoultella ornithinolytica BF60 to efficiently synthesize 2,5-furandicarboxylic acid

机译:组合合成途径对Raoultella Ornithinolytica BF60的代谢工程微调和比较转录组织,有效地合成2,5-呋喃羧酸

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The compound 5-hydroxymethylfurfural (HMF) has attracted much attention due to its versatility as an important bio-based platform chemical. Here, we engineered Raoultella ornithinolytica BF60 as a whole-cell biocatalyst for a highly efficient synthesis of 2,5-furandicarboxylic acid (FDCA) from HMF. Specifically, various expression cassettes of key genes, such as hmfH (gene encoding HMF/furfural oxidoreductase [HmfH]) and hmfo (gene encoding HMF oxidase), were designed and constructed for fine-tuning FDCA synthesis from HMF. The FDCA titer reached 108.9 mM with a yield of 73% when 150 mM HMF was used as the substrate. This yield was 16% higher than that without balancing key gene expression in FDCA synthetic pathways. Additionally, to strengthen HmfH expression at the translational level, ribosomal binding site (RBS) sequences, which were computationally designed using the RBS calculator, were assembled into HmfH expression cassettes. The HmfH expression in the presence of these sequences enhanced FDCA titer to 139.6 mM with a yield of 93%. Next, previously unknown candidate genes, such as aldR, dkgA, akR, AdhP1, and AdhP2, which encode enzymes that catalyze the reactions leading to the formation of the undesired product 2,5-bis(hydroxymethyl)furan (HMF alcohol) from HMF, were identified by RNA-sequencing-based transcriptomics. Combinatorial deletion of these five candidate genes led to an 88% reduction in HMF alcohol formation and 12% enhancement in FDCA production (175.6 mM). Finally, FDCA synthesis was further improved by the substrate pulse-feeding strategy, and 221.5 mM FDCA with an 88.6% yield was obtained. The combinatorial synthetic pathway fine-tuning and comparative transcriptomics approach may be useful for improving the biocatalysis efficiency of other industrially useful compounds.
机译:由于作为重要的生物基础平台化学品,化合物5-羟甲基糠(HMF)引起了很多关注。在这里,我们设计Raoultella Ornithinolytica BF60作为一种来自HMF的高效合成的2,5-呋喃羧酸(FDCA)的全细胞生物催化剂。具体地,设计并构建了与HMF氧化酶的HMFH(编码HMF /糠醛氧化酶[HMFH])和HMFO(基因编码的基因)的各种表达盒,以从HMF进行微调FDCA合成的设计和构建键基因的各种表达盒。 FDCA滴度达到108.9mm,当使用150mM HMF作为基质时,产率为73%。这种产率高于FDCA合成途径中的键基因表达的情况下为16%。另外,为了在平移水平下加强HMFH表达,使用RBS计算器计算设计地设计的核糖体结合位点(RBS)序列被组装成HMFH表达盒。这些序列存在下的HMFH表达增强了FDCA滴度至139.6mm,产率为93%。接下来,以前未知的候选基因,例如AlDR,DKGA,AKR,ADHP1和ADHP2,其编码催化反应的酶导致从HMF中形成不需要的产物2,5-双(羟甲基)呋喃(HMF醇) ,由基于RNA测序的转录组科鉴定。这些五个候选基因的组合缺失导致HMF醇形成的88%降低,FDCA生产中的12%增强(175.6毫米)。最后,通过底物脉冲进料策略进一步改善了FDCA合成,得到221.5mM的FDCA,得到88.6%的产率。组合合成途径微调和比较转录组学方法可用于改善其他工业上有用的化合物的生物分析效率。

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