Development of a Type I-E CRISPR-Based Programmable Repression System for Fine-Tuning Metabolic Flux toward D-Pantothenic Acid in Bacillus subtilis.

IF 3.7 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS ACS Synthetic Biology Pub Date : 2024-08-16 Epub Date: 2024-07-31 DOI:10.1021/acssynbio.4c00256
Chengyao Mao, Han Zheng, Yifeng Chen, Panhong Yuan, Dongchang Sun
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Abstract

The CRISPR-based regulation tools enable fine-tuning of gene transcription, showing potential in areas of biomanufacturing and live therapeutics. However, the cell toxicity and PAM specificity of existing CRISPR-based regulation systems limit their broad application. The development of new and less-toxic CRISPR-controlled expression systems remains highly desirable for expanding the application scope of CRISPR-based tools. Here, we reconstituted the type I CRISPR-Cas system from Escherichia coli to finely tune gene expression in Bacillus subtilis. Through engineering the 5' untranslated region (UTR) of mRNAs of cas genes, we remarkably improved the efficacy of the type I CRISPRi system. The improved type I CRISPRi system was applied in engineering the D-pantothenic acid (DPA)-producing B. subtilis, which was generated by strengthening the metabolic flux toward β-alanine and (R)-pantoate via enhancing expression of key enzymes at both transcriptional and translational levels. Through controlling the expression of pdhA with the CRISPRi system for fine-tuning the metabolic flux toward DPA and the TCA cycle, we elevated the DPA titer to 0.88 g/L in shake flasks and 12.81 g/L in fed-batch fermentations without the addition of the precursor β-alanine. The type I CRISPRi system and the strategy for fine-tuning metabolic flux reported here not only enrich the CRISPR toolbox in B. subtilis and facilitate DPA production through microbial fermentation but also provide a paradigm for programming important organisms to produce value-added chemicals with cheap raw materials.

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开发基于 I-E 型 CRISPR 的可编程抑制系统,用于微调枯草芽孢杆菌对 D 泛酸的代谢通量。
基于 CRISPR 的调控工具能够对基因转录进行微调,在生物制造和活体治疗领域显示出潜力。然而,现有基于 CRISPR 的调控系统的细胞毒性和 PAM 特异性限制了其广泛应用。为了扩大基于 CRISPR 的工具的应用范围,开发新的、毒性更低的 CRISPR 控制表达系统仍然是非常可取的。在这里,我们重组了大肠杆菌的 I 型 CRISPR-Cas 系统,以精细调节枯草芽孢杆菌中的基因表达。通过对 cas 基因 mRNA 的 5' 非翻译区 (UTR) 进行工程化,我们显著提高了 I 型 CRISPRi 系统的功效。改进后的I型CRISPRi系统被应用于产生D-泛酸(DPA)的枯草芽孢杆菌的工程化研究,DPA是通过在转录和翻译水平上增强关键酶的表达来加强β-丙氨酸和(R)-泛酸的代谢通量而产生的。通过使用 CRISPRi 系统控制 pdhA 的表达以微调 DPA 和 TCA 循环的代谢通量,我们将摇瓶发酵中的 DPA 滴度提高到了 0.88 克/升,并在不添加前体物 β-丙氨酸的情况下将饲料批量发酵中的 DPA 滴度提高到了 12.81 克/升。本文报告的 I 型 CRISPRi 系统和微调代谢通量的策略不仅丰富了枯草杆菌的 CRISPR 工具箱,促进了微生物发酵生产 DPA,还为利用廉价原料生产高附加值化学品的重要生物编程提供了范例。
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来源期刊
CiteScore
8.00
自引率
10.60%
发文量
380
审稿时长
6-12 weeks
期刊介绍: The journal is particularly interested in studies on the design and synthesis of new genetic circuits and gene products; computational methods in the design of systems; and integrative applied approaches to understanding disease and metabolism. Topics may include, but are not limited to: Design and optimization of genetic systems Genetic circuit design and their principles for their organization into programs Computational methods to aid the design of genetic systems Experimental methods to quantify genetic parts, circuits, and metabolic fluxes Genetic parts libraries: their creation, analysis, and ontological representation Protein engineering including computational design Metabolic engineering and cellular manufacturing, including biomass conversion Natural product access, engineering, and production Creative and innovative applications of cellular programming Medical applications, tissue engineering, and the programming of therapeutic cells Minimal cell design and construction Genomics and genome replacement strategies Viral engineering Automated and robotic assembly platforms for synthetic biology DNA synthesis methodologies Metagenomics and synthetic metagenomic analysis Bioinformatics applied to gene discovery, chemoinformatics, and pathway construction Gene optimization Methods for genome-scale measurements of transcription and metabolomics Systems biology and methods to integrate multiple data sources in vitro and cell-free synthetic biology and molecular programming Nucleic acid engineering.
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