Meta-analysis Driven Strain Design for Mitigating Oxidative Stresses Important in Biomanufacturing.

IF 3.7 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS ACS Synthetic Biology Pub Date : 2024-06-27 DOI:10.1021/acssynbio.3c00572
P V Phaneuf, S H Kim, K Rychel, C Rode, F Beulig, B O Palsson, L Yang
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Abstract

As the availability of data sets increases, meta-analysis leveraging aggregated and interoperable data types is proving valuable. This study leveraged a meta-analysis workflow to identify mutations that could improve robustness to reactive oxygen species (ROS) stresses using an industrially important melatonin production strain as an example. ROS stresses often occur during cultivation and negatively affect strain performance. Cellular response to ROS is also linked to the SOS response and resistance to pH fluctuations, which is important to strain robustness in large-scale biomanufacturing. This work integrated more than 7000 E. coli adaptive laboratory evolution (ALE) mutations across 59 experiments to statistically associate mutated genes to 2 ROS tolerance ALE conditions from 72 unique conditions. Mutant oxyR, fur, iscR, and ygfZ were significantly associated and hypothesized to contribute fitness in ROS stress. Across these genes, 259 total mutations were inspected in conjunction with transcriptomics from 46 iModulon experiments. Ten mutations were chosen for reintroduction based on mutation clustering and coinciding transcriptional changes as evidence of fitness impact. Strains with mutations reintroduced into oxyR, fur, iscR, and ygfZ exhibited increased tolerance to H2O2 and acid stress and reduced SOS response, all of which are related to ROS. Additionally, new evidence was generated toward understanding the function of ygfZ, an uncharacterized gene. This meta-analysis approach utilized aggregated and interoperable multiomics data sets to identify mutations conferring industrially relevant phenotypes with the least drawbacks, describing an approach for data-driven strain engineering to optimize microbial cell factories.

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元分析驱动的应变设计,用于减轻生物制造中的重要氧化应力。
随着数据集可用性的增加,利用聚合和可互操作数据类型进行荟萃分析已被证明是非常有价值的。本研究利用荟萃分析工作流程,以工业上重要的褪黑激素生产菌株为例,鉴定可提高对活性氧(ROS)胁迫的稳健性的突变。ROS 应激经常发生在培养过程中,并对菌株性能产生负面影响。细胞对 ROS 的反应还与 SOS 反应和耐 pH 值波动有关,这对大规模生物制造中菌株的稳健性非常重要。这项工作整合了 59 项实验中 7000 多个大肠杆菌适应性实验室进化(ALE)突变,从 72 种独特条件中统计出突变基因与 2 种 ROS 耐受性 ALE 条件的关联。突变基因 oxyR、fur、iscR 和 ygfZ 与 ROS 应激有显著关联,并被假定有助于改善健康状况。结合 46 项 iModulon 实验的转录组学,对这些基因的 259 个突变进行了检查。根据突变聚类和转录变化的吻合情况,选择了 10 个突变进行重新引入,以证明其对适应性的影响。在 oxyR、fur、iscR 和 ygfZ 中重新引入突变的菌株对 H2O2 和酸胁迫的耐受性增强,对 SOS 反应的耐受性降低,所有这些都与 ROS 有关。此外,研究还发现了一些新的证据,有助于了解 ygfZ 这个未定性基因的功能。这种荟萃分析方法利用聚合的、可互操作的多组学数据集来识别突变,从而以最少的缺点获得与工业相关的表型,描述了一种数据驱动的菌株工程方法,以优化微生物细胞工厂。
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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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